DOE-HDBK-1113-2008, Radiological Safety Training for Uranium Facilities
Functional areas: Radiological Safety Training, Uranium Facilities
This Handbook describes a recommended implementation process for additional training as outlined in DOE-STD-1098-99, Radiological Control (RCS). Its purpose is to assist those individuals, Department of Energy (DOE) employees, Managing and Operating (M&O) contractors, and Managing and Integrating (M&I) contractors identified as having responsibility for implementing the training recommended by the RCS.
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Section 1
DOE HDBK-1113-2008
April 2008
DOE HANDBOOK
RADIOLOGICAL SAFETY TRAINING FOR
URANIUM FACILITIES
U.S. Department of Energy FSC 6910
Washington, D.C. 20585
DISTRIBUTION STATEMENT A. Approved for public release; distribution is unlimited.
NOT MEASUREMENT
SENSITIVE
DOE-HDBK-1113-2008
ii
This document is available on the
Department of Energy
Technical Standards Program
Web Site at
http://www.hss.energy.gov/nuclearsafety/techstds/
DOE-HDBK-1113-2008
iii
Foreword
This Handbook describes a recommended implementation process for additional training as outlined in
DOE-STD-1098-99, Radiological Control (RCS). Its purpose is to assist those individuals, Department of
Energy (DOE) employees, Managing and Operating (M&O) contractors, and Managing and Integrating
(M&I) contractors identified as having responsibility for implementing the training recommended by the
RCS. This training may also be given to workers in uranium facilities to assist in meeting their job-
specific training requirements of 10 CFR 835. In particular, this material may be useful for developing
and providing the facility specific portion of the General Employee Radiological Training, Radiological
Worker Training, and Radiological Control Technician Training.
The Handbook contains recommended training materials consistent with DOE standardized core
radiological training material. These training materials consist of the following documents:
Program Management Guide - This document contains detailed information on how to use the
Handbook material.
Instructor’s Guide - This document contains a lesson plan for instructor use, including notation of key
points for inclusion of facility-specific information.
Student’s Guide - This document contains student handout material and also should be augmented by
facility-specific information.
Overhead Transparencies - This document contains overhead transparencies that may be used to
augment classroom presentation.
This Handbook was produced in Word format and has been formatted for printing on an HP 4M (or
higher) LaserJet printer. The Overhead Transparencies were produced in Microsoft PowerPoint 4.0.
Copies of this Handbook may be obtained from either the DOE Radiation Safety Training Home Page
Internet site (http://www.hss.energy.gov/radiation/RST/rstmater.htm) or the DOE Technical Standards
Program Internet site (http://www.hss.energy.gov/NuclearSafety/techstds/standard/standard.html).
Documents downloaded from the DOE Radiation Safety Training Home Page Internet site may be
manipulated using the software noted above.
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DOE-HDBK-1113-2008
(Part 1 of 4)
Radiological Safety Training for Uranium Facilities
Program Management Guide
Coordinated and Conducted
For the
Office of Health, Safety and Security
U.S. Department of Energy
DOE-HDBK-1113-2008
ii
Table of Contents
Page
Introduction…………………………………………………………………………... 1
Purpose and Scope …………………………………………………………….. 1
Management Guide Content…………………………………………………… 1
Training Goal…………………………………………………………………... 1
Organizational Relationships and Reporting Structure………………………… 1
Instructional Materials Development………………………………………………… 2
Section 2
Target Audiences………………………………………………………………. 2
Prerequisites……………………………………………………………………. 2
Training Materials……………………………………………………………… 3
Training Delivery………………………………………………………………. 3
Exemptions…………………………………………………………………….. 3
Training Program Standards and Policies……………………………………… 4
Qualifications of Instructors …………………………………………………... 4
Technical Qualifications ………………………………………………………. 4
Instructional Capability and Qualifications……………………………………. 6
Selection of Instructors………………………………………………………… 8
Test Administration……………………………………………………………. 8
Program Records and Administration………………………………………….. 11
Training Program Development/Change Requests…………………………….. 11
Audit (internal and external)…………………………………………………… 11
Evaluating Training Program Effectiveness………………………………….... 11
Course-Specific Information…………………………………………………………. 12
Purpose…………………………………………………………………………. 12
Course Goal……………………………………………………………………. 12
Target Audience………………………………………………………………... 12
Course Description …………………………………………………………….. 12
Prerequisites……………………………………………………………………. 12
Length………………………………………………………………………….. 12
Test Bank………………………………………………………………………. 13
Retraining ……………………………………………………………………… 13
Instructor Qualification………………………………………………………… 13
Materials Checklist…………………………………………………………….. 14
Bibliography…………………………………………………………………………. 15
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DOE-HDBK-1113-2008
1
Introduction
Purpose and Scope This program management guide provides guidance for proper
implementation of training as outlined in DOE-STD-1098-99,
Radiological Control (RCS). The guide is meant to assist those
individuals, Department of Energy (DOE) employees, Managing
and Operating (M&O) contractors, and Managing and
Integrating (M&I) contractors identified as having responsibility
for implementing the training recommended by the RCS.
Facilities should determine the applicability of this material to
support existing programs meant to comply with the training
required by 10 CFR 835. Facilities are encouraged to revise
these materials as appropriate.
Management Guide Content The management guide is divided into the following sections:
o Introduction.
o Instructional Materials Development.
o Training Program Standards and Policies.
o Course-Specific Information.
Training Goal The goal of this training program is to provide a baseline
knowledge for those individuals completing the training.
Completion of the training provides personnel with the
information necessary to perform their assigned duties at a
predetermined level of expertise.
Organizational Relationships The DOE Office of Worker Safety and Health Policy
and Reporting Structure (DOE HS-11) is responsible for approving and maintaining the
training materials. The establishment of a comprehensive and
effective contractor site radiological safety training program is
the responsibility of line management and their subordinates.
The training function can be performed by a separate training
organization, but the responsibility for quality and effectiveness
rests with the line management.
Instructional Materials Development Next
DOE-HDBK-1113-2008
2
Instructional Materials Development
Target Audience Course instructional materials were developed for specific
Section 3
employees who are responsible for knowing or using the
knowledge or skills for each course. With this in mind, the
participant should never ask the question, "Why do I need to
learn this?" However, this question is often asked when the
participant cannot apply the content of the program. It is the
responsibility of management to select and send workers to
training who need the content of the program. When workers can
benefit from the course, they can be motivated to learn the
content and apply it on their jobs. Care should be taken to read
the course descriptions along with the information about who
should attend. Participants and DOE facilities alike will not
benefit from workers attending training programs unsuitable for
their needs.
Prerequisites A background and foundation of knowledge facilitates the
trainee in learning new knowledge or skills. It is much easier to
learn new material if it can be connected or associated to what
was previously learned or experienced. Curriculum developers
who have been involved in preparing instructional materials for
the additional standardized training know this and have
established what is referred to as "prerequisites" for each course.
Certain competencies or experiences of participants were also
identified as necessary prior to participants attending a course.
Without these competencies or experiences, participants would
be at a great disadvantage and could be easily discouraged and
possibly fail the course. It is not fair to the other participants, the
unprepared participant, and the instructor to have this
misunderstanding.
Continued on Next Page
DOE-HDBK-1113-2008
3
Instructional Materials Development (continued)
Training Materials Training materials for the training program consist of a program
management guide, an instructor’s guide, a student’s guide, and
overhead transparencies. This material is designed to be
supplemented with updated or facility-specific information.
Supplemental material and training aids may be developed to
address facility-specific radiological concerns and to suit
individual training styles. References are cited in each lesson
plan and may be used as a resource in preparing facility-specific
information and training aids.
Each site is responsible for establishing a method to differentiate
the facility-specific information from the standardized lesson
plan material. When additional or facility-specific information is
added to the text of the lesson plan material, a method should be
used to differentiate site information from standardized material.
Training Delivery Sites are encouraged to expand and enhance the training
materials through advanced training technologies. Computer-
based training and multimedia are samples of such technologies.
Exemptions Qualified personnel can be exempted from training if they have
satisfactorily completed training programs (i.e., facility, college
or university, military, or vendor programs) comparable in
instructional objectives, content, and performance criteria.
Documentation of the applicable and exempted portions of
training should be maintained.
Training Program Standards and Policies Next
DOE-HDBK-1113-2008
4
Training Program Standards and Policies
Qualification of Instructors The technical instructor plays a key role in the safe and efficient
Section 4
operation of DOE facilities. Workers must be well qualified and
have a thorough understanding of the facility's operation, such as
processing, handling, and storage of materials, and maintenance
of equipment. Workers must know how to correctly perform
their duties and why they are doing them. They must know how
their actions influence other worker's responsibilities. Because
workers' actions are so critical to their own safety and the safety
of others, their trainers must be of the highest caliber. The
technical instructor must understand thoroughly all aspects of the
subjects being taught and the relationship of the subject content
to the total facility. Additionally, the instructor must have the
skills and knowledge to employ the instructional methods and
techniques that will enhance learning and successful job
performance. While the required technical and instructional
qualifications are listed separately, it is the combination of these
two factors that produces a qualified technical instructor.
The qualifications are based on the best industry practices that
employ performance-based instruction and quality assurances.
These qualifications are not intended to be restrictive, but to help
ensure that workers receive the highest-quality training possible.
This is only possible when technical instructors possess the
technical competence and instructional skills to perform assigned
instructional duties in a manner that promotes safe and reliable
DOE facility operations.
Technical Qualifications Instructors must possess technical competence (theoretical and
practical knowledge along with work experience) in the subject
areas in which they conduct training. The foundation for
determining the instructor's technical qualifications is based on
two factors:
o The trainees being instructed.
o The subject being presented.
The following is an example of a target audience, the subject
being taught, and instructor technical qualifications.
Continued on Next Page
DOE-HDBK-1113-2008
5
Training Program Standards and Policies (continued)
Technical Qualifications
(continued)
Methods for verifying the appropriate level of technical
competence may include the review of prior training and
education, observation and evaluation of recent related job
performance, and oral or written examination. Other factors that
may be appropriate for consideration include DOE, NRC, or
other government license or certification; vendor or facility
certification; and most importantly, job experience. To maintain
technical competence, a technical instructor should continue to
perform satisfactorily on the job and participate in continuing
technical training.
Continued on Next Page
TARGET
AUDIENCE
SUBJECT
BEING
TAUGHT
INSTRUCTOR
QUALIFICATIONS
Uranium facilities
personnel, visitors,
DOE employees
Uranium hazards and
safety training
Demonstrated knowledge and
skills in radiation protection,
above the level to be achieved by
the trainees, as evidenced by
previous training/education and
through job performance.
DOE-HDBK-1113-2008
6
Training Program Standards and Policies (continued)
Instructional Capability and Qualifications of instructional capability should be based
Qualifications on demonstrated performance of the instructional tasks for the
Section 5
specific course requirements and the instructor's position.
Successful completion of instructor training and education
programs, as well as an evaluation of on-the-job performance, is
necessary for verification of instructional capability.
Instructional capability qualification should be granted at the
successful completion of an approved professional development
program for training instructors. The program should contain
theory and practice of instructional skills and techniques, adult
learning, planning, conducting, and evaluating classroom,
simulator, laboratory, and on-the-job training activities as
applicable to the facility or position.
Illustrated talks, demonstrations, discussions, role playing, case
studies, coaching, and individual projects and presentations
should be used as the principal instructional methods for
presenting the instructional training program. Each instructional
method should incorporate the applicable performance-based
principles and practices. Every effort should be made to apply
the content to actual on-the-job experience or to simulate the
content in the classroom/laboratory. The appropriate
methodology required to present the instructional content will
indicate a required level of instructional qualification and skill.
Current instructors' training, education, and job performance
should be reviewed to determine their training needs for
particular courses. Based on this review, management may
provide exemptions based on demonstrated proficiency in
performing technical instructor's tasks.
Continued on Next Page
DOE-HDBK-1113-2008
7
Training Program Standards and Policies (continued)
Instructional Capability and Through training or experience, technical instructors
Qualifications (continued) should be able to:
o Review instructional materials and modify to fully meet the
needs of the training group.
o Arrange the training facility (classroom/laboratory or other
instructional setting) to meet the requirements for the
training sessions.
o Effectively communicate, verbally and non-verbally, lessons
to enhance learning.
o Invoke student interaction through questions and student
activity.
o Respond to students’ questions.
o Provide positive feedback to students.
o Use appropriate instructional materials and visual aids to
meet the lesson objectives.
o Administer performance and written tests.
o Ensure evaluation materials and class rosters are maintained
and forwarded to the appropriate administrative personnel.
o Evaluate training program effectiveness.
o Modify training materials based on evaluation of training
program.
Continued on Next Page
* Stein, F., Instructor Competencies: the Standards. International Board of
Standards for Training, Performance and Instruction, 1992.
DOE-HDBK-1113-2008
8
Training Program Standards and Policies (continued)
Selection of Instructors Selection of instructors should be based on the technical and
instructional qualifications specified in the Course-Specific
Information section of this guide. In addition to technical and
instructional qualifications, oral and written communication
skills, and interpersonal skills, should be included in the process
of selecting and approving instructors.
Since selection of instructors is an important task, those who
share in the responsibility for ensuring program effectiveness
should:
o Interview possible instructors to ensure they understand
Section 6
the importance of the roles and responsibilities of
technical instructors and are willing to accept and fulfill
their responsibilities in a professional manner.
o Maintain records of previous training, education, and
work experience. Procedures for program evaluation will
include documentation of providing qualified instructors
for generic and facility-specific training programs.
Test Administration A test bank of questions for each course that has an exam should
be developed and content validated. As the test banks are used,
statistical validation of the test bank should be performed to fully
refine the questions and make the tests as effective as possible.
The questions contained in the test bank are linked directly to the
objectives for each course. In this way, trainee weaknesses can
be readily identified and remedial procedures can be put into
place. The test outcomes can also be used to document
competence and the acquisition of knowledge.
Continued on Next Page
DOE-HDBK-1113-2008
9
Training Program Standards and Policies (continued)
Test Administration The test banks should also be used by the instructors to
(continued) identify possible weaknesses in the instruction. If numerous
trainees fail to correctly answer a valid set of questions for an
objective, the instruction for that objective needs to be reviewed
for deficiencies.
Written examinations may be used to demonstrate satisfactory
completion of theoretical classroom instruction. The following
are some recommended minimal requirements for the test banks
and tests:
o Tests are randomly generated from the test bank.
o Test items represent all objectives in the course.
o All test bank items are content validated by a subject matter
expert.
o Test banks are secured and are not released either before or
after the test is administered.
o Trainees should receive feedback on their test performance.
o Test banks should undergo statistical analyses.
o For the first administrations of tests, a minimum of 80%
should be required for a passing score. As statistical analyses
of test results are performed, a more accurate percentage for
a passing score should be identified.
Test administration is critical in accurately assessing the trainee's
acquisition of knowledge being tested. Generally the following
rules should be followed:
Continued on Next Page
DOE-HDBK-1113-2008
10
Training Program Standards and Policies (continued)
Test Administration
(continued)
o Tests should be announced at the beginning of the training
sessions.
o Instructors should continuously monitor trainees during
examinations.
o All tests and answers should be collected at the conclusion
of each test.
o No notes can be made by trainees concerning the test items.
o No talking (aside from questions) should be allowed.
o Answers to questions during a test should be provided, but
answers to test items should not be alluded to or otherwise
provided.
o Where possible, multiple versions of each test should be
produced from the test bank for each test administration.
o After test completion, trainees may turn in their materials
and leave the room while other trainees complete their tests.
o Trainee scores on the tests should be held as confidential.
Continued on Next Page
DOE-HDBK-1113-2008
11
Training Program Standards and Policies (continued)
Program Records and Training records and documentation shall meet the
Administration requirements of 10 CFR 835.704
Section 7
Training Program All requests for program changes and revisions should
Development/Change be sent to DOE using the “Document Improvement
Requests Proposal (DOE F1300.3) form provided with each DOE
Standard.
Audit (internal and external) Internal verification of training effectiveness should be
accomplished through senior instructor or supervisor observation
of practical applications and discussions of course material. All
results should be documented and maintained by the
organization responsible for Radiological Control training. The
additional standardized training program materials and processes
should be evaluated on a periodic basis by DOE-HQ. The
evaluation should include a comparison of program elements
with applicable industry standards and requirements.
Evaluating Training Program Verification of the effectiveness of Radiological Control
Effectiveness training should be accomplished per DOE-HDBK-1130-98,
Radiological Worker Training, Program Management Guide. In
addition, DOE has issued guidelines for evaluating the
effectiveness of radiological training through the DOE
Operations Offices and DOE Field Offices. For additional
guidance, refer to DOE STD 1070-94, “Guide for Evaluation of
Nuclear Facility Training Programs.”
Course-Specific Information Next
DOE-HDBK-1113-2008
12
Course-Specific Information
Purpose This section of the program management guide is to assist those
individuals assigned responsibility for implementing the
Radiological Safety Training for Uranium Facilities.
Course Goal Upon completion of this training, the student will have a basic
understanding of the characteristics of uranium and the
precautions needed for working in an uranium facility, which
typically would include uranium fuel cycle facilities or areas
contaminated with or storing uranium, or sites involved in
cleanup programs.
Target Audience Individuals who have been assigned duties in uranium facilities.
These individuals, depending on their job responsibilities,
typically would include Radiological Workers. Depending on the
facility, portions of the material may be applicable to General
Employees and/or Radiological Control Technicians.
Course Description This course illustrates and reinforces the skills and knowledge
needed to provide personnel with an understanding of the
characteristics of uranium and the precautions needed for
working in a DOE uranium facility. This course is developed in
accordance with Article 662 of the RCS. The course material
may be useful in developing and providing the facility specific
portion of existing standardized core training, especially
Radiological Worker Training.
Prerequisites This training material is designed to augment the DOE
Radiological Worker core training. This course includes
Radiological Worker training material but is not intended to
replace Radiological Worker training. It is recommended that
students complete Radiological Worker II training prior to
receiving this course, if their job responsibilities require such
training. Otherwise, Radiological Worker I training is
recommended as a prerequisite.
Length 4 - 8 hours (depending on facility-specific information).
Continued on Next Page
DOE-HDBK-1113-2008
13
Course-Specific Information (continued)
Test Bank On a site-by-site basis.
Retraining Retraining is not required for this course unless it is used to meet
Section 8
10 CFR 835 training requirements. In that case, retraining every
two years is required. Since some of the content is determined on
a facility-specific basis, retraining should also be provided as
facility specific information changes.
Instructor Qualifications Instructors of this course have a major role in making it
successful and meeting the specified objectives. Instructors must
have related experience and be technically competent. In this
course it is imperative that the instructor have the background
and experience of working in a uranium facility. Instructors must
be able to relate their own work experience to the workers in an
uranium facility. Instructors must be able to answer specific
questions and use a variety of instructional material to meet the
objectives.
Education: Minimum of B.S. degree in Health Physics or
related discipline is preferred.
Certification: Certification by American Board of Health
Physics (ABHP) or National Registry of
Radiation Protection Technologists (NRRPT)
is preferred.
Experience: At least five years of applied radiological
protection experience in an operating
radiological facility is preferred. Experience in
radiological protection at the applicable
uranium facility, such as completion of all
qualification requirements for the senior-level
radiation protection technician position at the
trainees’ facility, or a similar facility, is
preferred. The areas of experience should
include:
Continued on Next Page
DOE-HDBK-1113-2008
14
Course-Specific Information (continued)
Instructor Qualification
(continued)
o Radiological controls associated with uranium.
o Conducting surveys and monitoring at uranium facilities.
o Intimate knowledge of Federal regulations and guidance.
o Knowledge of best nuclear industry practices pertaining
to radiological protection in uranium facilities.
Through training or experience, technical instructors should be
able to effectively communicate, verbally and non-verbally,
lessons to enhance learning.
Materials Checklist The following checklist should be used to ensure all training
materials are available. All materials are provided in Word
format except for the overhead transparencies, which are
provided in Microsoft PowerPoint 4.0 format.
o Program Management Guide.
o Instructor's Guide.
o Student's Guide.
o Overhead Transparencies.
The following checklist should be used before training is
provided to ensure equipment is available and working.
o Overhead projector.
o Screen.
o Flip chart.
o Markers.
Bibliography Next
DOE-HDBK-1113-2008
15
Bibliography: DOE standards, handbooks, and technical standards lists (TSLs). The following
DOE standards, handbooks, and TSLs form a part of this document to the extent
specified herein.
U.S. Department of Energy, Guidelines for Evaluation of Nuclear Facility Training Programs,
DOE -STD 1070-94, Washington, D.C. 1994.
U.S. Department of Energy, Guide to Good Practices for Training and Qualification of
Instructors, DOE-HDBK-1001-96, Washington, D.C., 1996.
U.S. Department of Energy, Personnel Selection, Qualification, Training and Staffing
Requirements at DOE Reactors and Non-Reactor Nuclear Facilities, DOE Order 5480.20A
(Change 1).
U.S. Department of Energy, Radiological Control, DOE-STD-1098-99, Washington, D.C., 1999.
U.S. Department of Energy, Radiation Protection of the Public and the Environment, DOE Order
5400.5 (Change 2).
U.S. Department of Energy, Rich, B. L. et. al, Health Physics Manual of Good Practices for
Uranium Facilities, EGG-2530, UC-41, 1988.
Section 9
Title 10, Code of Federal Regulations, Part 835, Occupational Radiation Protection (2007).
Los Alamos National Laboratory, Nuclear Criticality Safety Guide, LA-12808, 1996.
DOE-HDBK-1113-2008
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DOE-HDBK-1113-2008
(Part 2 of 4)
Radiological Safety Training for Uranium Facilities
Instructor's Guide
Office of Health, Safety and Security
U.S. Department of Energy
DOE-HDBK-1113-2008
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DOE-HDBK-1113-2008
iii
Table of Contents
COURSE MATERIALS............................................................................................................1
I. MODULE 101 - Properties of Uranium ..........................................................................5
II. MODULE 102 - The Nuclear Fuel Cycle......................................................................17
III. MODULE 103 - External Dose Control ........................................................................32
IV. MODULE 104 - Internal Dose Control .........................................................................38
V. MODULE 105 - Criticality Safety.................................................................................58
VI. MODULE 106 - Emergency Response for Uranium Incidents .....................................66
VII. MODULE 107 - Course Summary ................................................................................67
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DOE-HDBK-1113-2008
1
COURSE MATERIALS
Course Goal: Upon completion of this training, the student will have a basic
understanding of the characteristics of uranium and the
precautions needed for working in an uranium facility, which
typically would include uranium fuel facilities or areas
contaminated with or storing uranium, or sites involved in
cleanup programs.
Target Audience: Individuals who have been assigned duties in uranium facilities.
These individuals, depending on their job responsibilities,
typically would include Radiological Workers. Depending on the
facility, portions of the material may be applicable to General
Employees and/or Radiological Control Technicians.
Description: This course illustrates and reinforces the skills and knowledge
needed to provide personnel with an understanding of the
characteristics of uranium and the precautions needed for
working in a DOE uranium facility. This course is developed in
accordance with Article 662 of the RCS. The course material
may be useful in developing and providing the facility specific
portion of existing standardized core training, especially
Radiological Worker Training.
Prerequisites: This training material is designed to augment the DOE
Radiological Worker core training. This course includes
Radiological Worker training material but is not intended to
replace Radiological Worker training. It is recommended that
students complete Radiological Worker II training prior to
receiving this course, if their job responsibilities require such
training. Otherwise, Radiological Worker I training is
recommended as a prerequisite.
Length: 4-8 hours (depending on facility-specific information).
Terminal Objective and Enabling Objectives Next
DOE-HDBK-1113-2008
2
Terminal Objective: At the end of this training, the student will have a basic
understanding of the characteristics of uranium and the
precautions needed for working in an uranium facility, which
typically would include uranium fuel facilities or areas
contaminated with or storing uranium, or sites involved in
cleanup programs.
Section 10
Enabling Objectives:
EO1 Describe the physical, radioactive, toxicological, and
chemical properties and biological effects of uranium.
EO2 Identify the sources and uses of uranium.
EO3 Identify the various processes involved in the nuclear
fuel cycle.
EO4 Identify the radiological concerns of external exposure to
uranium.
EO5 Describe the measures taken to control external exposure
to uranium.
EO6 Identify the modes of entry into the body for uranium.
EO7 Describe the measures taken to control intakes of
uranium, including special radiological surveys and
techniques, instruments, and release of materials.
EO8 Describe the criticality safety control measures for
uranium, including inventory control measures.
EO9 Identify criticality monitoring techniques used with
uranium.
EO10 Understand the facility-specific emergency response
procedures involving uranium incidents.
Training Aids Next
DOE-HDBK-1113-2008
3
Training Aids: Overhead transparencies (may be supplemented or substituted
with updated or facility-specific information).
Equipment Needs: • Overhead projector
• Screen
• Flip chart or white board
• Markers
Student Materials: Student’s Guide
Printouts of Overhead Transparencies
Bibliography: DOE standards, handbooks, and technical standards lists
(TSLs). The following DOE standards, handbooks, and TSLs
form a part of this document to the extent specified herein.
U.S. Department of Energy, Guidelines for Evaluation of
Nuclear Facility Training Programs, DOE -STD 1070-94,
Washington, D.C. 1994.
U.S. Department of Energy, Guide to Good Practices for
Training and Qualification of Instructors, DOE-HDBK-1001-96,
Washington, D.C., 1996.
U.S. Department of Energy, Personnel Selection, Qualification,
Training and Staffing Requirements at DOE Reactors and Non-
Reactor Nuclear Facilities, DOE Order 5480.20A (Change 1).
U.S. Department of Energy, Radiological Control, DOE-STD-
1098-99, Washington, D.C., 1999.
U.S. Department of Energy, Radiation Protection of the Public
and the Environment, DOE Order 5400.5 (Change 2).
U.S. Department of Energy, Rich, B. L. et. al, Health Physics
Manual of Good Practices for Uranium Facilities, EGG-2530,
UC-41, 1988.
Title 10, Code of Federal Regulations, Part 835, Occupational
Radiation Protection (2007).
Los Alamos National Laboratory, Nuclear Criticality Safety
Guide, LA- 12808.
Lesson Summary Next
DOE-HDBK-1113-2008
4
LESSON SUMMARY
Introduction:
Welcome students to the course.
Introduce self to the participants and establish rapport.
Define logistics:
o Safety briefing - exits.
o Restrooms.
o Hours.
o Breaks.
o Sign-in sheets.
o Test accountability (if applicable).
o End-of-course evaluation.
Remind the participants that they need to have completed Radiological Worker training prior to or in
conjunction with this course. They should be familiar with terms like rem, contamination, etc.
Terminal Objective:
At the end of this course, the student should demonstrate a basic understanding of the characteristics of
uranium and radiological precautions necessary for working at a uranium facility.
State Enabling Objectives.
COURSE CONTENT
Briefly review the content of the course, noting the logical sequence (“flow”). State that as you present
the material to be covered, you will relate it to the circumstances that the students can expect to find in the
facility workplace and procedures. (You will be inserting facility-specific uranium information.)
Section 11
MODULE 101 - Properties of Uranium
MODULE 102 - The Nuclear Fuel Cycle
MODULE 103 - External Dose Control
MODULE 104 - Internal Dose Control
MODULE 105 - Criticality Safety
MODULE 106 - Emergency Response for Uranium Incidents
MODULE 107 - Course Summary
This training should be used to supplement the Radiological Worker training materials for personnel
working at or having access to DOE uranium facilities. This training is multi-faceted, and different
sections can be applied to various target groups.
Lesson Plan and Instructor’s Notes Next
DOE-HDBK-1113-2008
Module 101 Properties of Uranium
Lesson Plan Instructor’s Notes
5
I. MODULE 101 - Properties of
Uranium
A. Objective
EO1 Describe the physical, radioactive,
toxicological, and chemical properties
and biological effects of uranium.
B. Physical Properties
Uranium can be encountered as a solid,
liquid, or gas, depending on its chemical
form and surrounding conditions. Each of
these physical forms has particular
hazards. Sometimes, changing the form
of uranium can lead to radioactive decay
products accumulating or becoming
concentrated in a particular location, such
as on the surface of a liquid. The result
can be an apparent increase in the
radioactivity.
1. Solid
The solid forms of uranium are
generally the most stable
configurations. The shiny, silvery
metal form is rarely seen except in a
workshop when it is being
machined. After machining, the
surface oxidizes, typically within
hours, to a hard, black surface.
After some time, depending on
temperature, humidity, and alloy,
the surface may change color and
begin to flake. Orange or yellow
colored surfaces are usually more
flaky and soluble. In these forms,
contamination can be more easily
spread, inhaled, and absorbed into
the body.
Show OT-1
Show OT-2
Show OT-3
Show OT-4
Provide a facility
specific example
of uranium in a
solid form.
DOE-HDBK-1113-2008
Module 101 Properties of Uranium
Lesson Plan Instructor’s Notes
6
2. Liquid
Uranium melts at 1133°C, so
molten uranium is unusual, except
in a foundry. It has often been
observed that the radioactivity
appears to increase when uranium is
melted. This is because radioactive
decay products, such as radium and
thorium, float to the surface. The
density of radium is 5 g/cm3,
compared with 19 g/cm3 for
uranium; therefore, radium floats in
molten uranium.
Uranium in contact or solution with
water is common. The primary
hazards associated with a uranium
solution are criticality (for enriched
uranium) and spills. Water
decreases the quantity of enriched
uranium required for criticality.
This topic will be discussed in
Module 105 – Criticality Safety.
3. Airborne Powder
A spill of any radioactive solution
is a concern. As the solution
evaporates, it leaves behind a
radioactive residue, or powder, that
can easily become airborne.
Airborne uranium may be inhaled
and absorbed into the bloodstream
through the lungs.
4. Gas
Another form of uranium that is an
inhalation hazard is the volatile
UF6, becoming a gas above 56°C.
However, most uranium daughters
are not volatile, and so can
Provide a facility
specific
example of
uranium in liquid
form.
Provide a facility
specific example
of uranium in
airborne powder
form.
Provide a facility
specific example
of uranium in
gaseous form.
DOE-HDBK-1113-2008
Module 101 Properties of Uranium
Lesson Plan Instructor’s Notes
7
Section 12
accumulate in storage cylinders.
When the volatile UF6 is extracted,
the nonvolatile daughters remain in
the cylinder, resulting in the
buildup of residual radioactivity.
However, in the case of uranium-
232 (232U), uranium-235 (235U), and
uranium-238 (238U), each of these
uranium isotopes has a radon
daughter. Radon is a gas at all but
very low temperatures; therefore, if
the radon escapes, the subsequent
daughters can accumulate in closed
or poorly ventilated areas.
In some situations, pressure from
volatilized UF6 gas can build up in
small volumes such as a sealed
container or a pipe run between two
valves. Line breaks and leaks will
cause a release of the UF6. UF6
reacts in moist air to produce
hydrogen fluoride (HF) gas. This
gas is extremely corrosive and can
severely damage the eyes, skin and
lungs. Also, as the escaping UF6
gas cools, it becomes particulate,
which may have a suffocating effect
on any nearby workers.
Another reason for pressure buildup
is alpha particles emitted in
radioactive decay eventually
becoming inert helium gas. The
amount is only significant for high
specific activity forms of uranium.
For example, a sample of 99%
uranium- 233 (233U) with 1%
232U creates approximately its own
volume of helium gas every year.
Sealed containers must include
adequate gas space or be fitted with
pressure release valves. Once the
DOE-HDBK-1113-2008
Module 101 Properties of Uranium
Lesson Plan Instructor’s Notes
8
pressure is relieved, the low-
pressure helium gas is harmless.
Hydrogen gas is generated from uranium
in water, and this may also produce a
pressure buildup situation. Because the
hydrogen buildup may also be a fire
hazard, it is discussed later in this
module in the Chemical Properties
section.
C. Radioactive Properties - Uranium in its
pure metal form is a silvery, gray metal
and is the heaviest naturally occurring
element. There are 18 separate isotopes
of uranium. Isotopes are elements that
have the same number of protons, but
different numbers of neutrons. For
example, 235U has 92 protons with 143
neutrons and 238U has 92 protons with
146 neutrons.
Uranium is radioactive. Partially because
of its size, the nucleus of a uranium atom
is unstable. It reduces its size either by
alpha particle emission or by nuclear
fission, in which the uranium nucleus
splits, primarily, into two smaller fission
products. Both processes release energy,
which can be helpful or harmful
depending on how they are controlled.
All isotopes of uranium are fissionable,
which means they can be fissioned by
fast neutrons. Two isotopes, 233U and
235U, are fissile, which means they can
also be fissioned by slow (thermal)
neutrons. A fissile material can be
involved in a criticality accident,
resulting in the release of a lethal amount
of radiation. Criticality is discussed in
more detail in Module 105- Criticality
Safety.
Show OT-5
DOE-HDBK-1113-2008
Module 101 Properties of Uranium
Lesson Plan Instructor’s Notes
9
The primary isotopes of uranium are all
long-lived alpha emitters. However,
several other radionuclides can be
radiologically significant at uranium
facilities, depending on the history of the
uranium materials and the processing.
These other radionuclides include the
following beta emitters: 234Th, 234mPa,
231Th, and 99Tc. The degree of
enrichment also affects the controls that
are required for external radiation
exposure because of the increase in the
amount of gamma-emitting 235U that is
present. The uranium daughter products
may also include some low energy
gamma and x-ray radiation. For example,
the daughter products of 232U represent
a potential gamma emission hazard.
Section 13
Although there are several isotopes of
uranium, only three exist naturally, and
all three are radioactive. See the table
below for half-lives and natural percent
abundance for important uranium
isotopes in the nuclear fuel cycle.
DOE-HDBK-1113-2008
Module 101 Properties of Uranium
Lesson Plan Instructor’s Notes
10
ISOTOPE HALF-
LIFE
NAT
ABUND
IMPORTANCE
232U
70 y
0%
An unwanted byproduct of 233U
production in a breeder reactor.
Due to its much shorter half-life,
232U contributes most of the
radioactivity in samples of 233U.
233U
1.6 x 10 5 y
0%
Manufactured by irradiating 232Th
with neutrons. It is a criticality
hazard because it is fissile.
234U
2.5 x 105 y
0.0055%
A decay product of 238U. It is
concentrated with 235U during
enrichment. Highly enriched
uranium contains about 1% 234U.
Most of the radioactivity of
enriched uranium is from the
234U.
235U
7.1 x 108 y
~0.7%
Fissile with slow neutrons;
therefore, it is of primary interest
for reactors and weapons. If not
handled safely, an accumulation
of 235U could become critical.
236U
2.3 x 107 y
0%
Some 235U is converted to 236U in
reactors. It is also present in
reprocessed reactor fuel.
238U
4.5 x 109 y
~99.3%
The most abundant uranium
isotope. It is fissionable with fast
neutrons; however, it is not fissile
(i.e., with thermal neutrons) so it
is not a criticality hazard.
DOE-HDBK-1113-2008
Module 101 Properties of Uranium
Lesson Plan Instructor’s Notes
11
As uranium goes through radioactive
decay, it produces other radioactive
elements known as radioactive decay
products (also called progeny or daughter
products). These radioactive decay
products are also radioactive and have to
be taken into account for radiological
protection purposes.
Both alpha and beta particles are emitted
as part of decay series. For example,
238U decays by alpha emission to
234Th; 234Th decays by beta emission to
234mPa; and so on, until stable 206Pb is
finally reached.
1. Decay Series
Uranium has two naturally
occurring decay series: the
“actinium” series, which has 235U
as its parent; and the “uranium”
series, which has 238U as its
parent. Many of our everyday
encounters with radioactivity come
from these decay series; examples
are radon gas and radium.
There are also man-made isotopes
of uranium - 232U and 233U. These
radionuclides and their decay
products must be considered in the
implementation of a radiological
control program at a facility where
these uranium nuclides are present.
2. Criticality
Uranium is a fissionable material, which
means it can undergo nuclear fission.
Nuclear fission is a process in which a
very heavy, unstable atom splits in two,
or “fissions”. When an atom fissions, one
Show OT-6
Show OT-7
Discuss decay products
resulting in radiological
concerns at your facility.
Refer to the Health
Physics Manual of Good
Practices for Uranium
Facilities for specific
technical information on
different isotopes of
uranium.
DOE-HDBK-1113-2008
Module 101 Properties of Uranium
Lesson Plan Instructor’s Notes
12
large atom primarily becomes two
smaller atoms, between one and seven
neutrons are given off which may cause
fission in nearby atoms), and a great deal
of energy is given off as radiation and in
other forms, such as kinetic energy of the
fission fragments. The radiation created
could result in the creation of radiological
areas, such as High or Very High
Radiation Areas. Nuclear criticality
associated with uranium will be
discussed in greater detail later in the
lesson.
Section 14
D. Chemical Properties
Uranium is chemically reactive. It burns
in air like magnesium; it is toxic like
lead; and it forms a large variety of
chemical compounds. All the isotopes of
uranium have the same chemical
reactivity, and all can be made into the
many different physical and chemical
forms discussed in this section.
1. Fire
Uranium is a metal that will sustain
a burning reaction (similar to a
magnesium flare). The potential for
a fire is greatest when the uranium
is in a finely divided form, such as
milling chips or filings. In this
form, uranium can undergo
spontaneous ignition. Uranium
metal is often machined to provide
a useful end product, and milling
chips and filings are unavoidable
byproducts.
Precautions must be taken to
prevent chips and filings from
igniting. One precaution is
submersing the chips and filings in
water or a mineral oil. Storage in
Show OT-8
DOE-HDBK-1113-2008
Module 101 Properties of Uranium
Lesson Plan Instructor’s Notes
13
water produces hydrogen gas due to
a chemical reaction. To prevent the
hydrogen gas from reaching an
explosive concentration, and to
prevent a pressure buildup,
containers must be vented.
Incidents have occurred where
container lids have been blown off
by unexpected gas pressure buildup.
The use of water or oil baths for
collecting and storing chips needs
to be evaluated for criticality safety
concerns before put into practice.
Once uranium starts to burn, it is
extremely difficult to extinguish.
None of the typical extinguishing
methods, such as water, carbon
dioxide, or halon, is effective in
fighting uranium fires. In fact,
halon may be explosive and
produce toxic fumes if used directly
on the fire.
Normally, small fires may be put
out by using MET-L-X powder,
which is a mixture of sodium
chloride (table salt) and potassium
carbonate (baking powder). When
spread over the burning metal in
significant quantities, MET-L-X
starves the fire of oxygen.
Larger fires, such as with storage
drums, are more difficult to
extinguish. Submersion in water
will eventually work once the metal
cools down. However, continuous
water addition is necessary to make
up for losses due to boiling and
evaporation.
2. Toxicological/Biological Effects
The principal entry of uranium into
The Chernobyl
explosion
resulted in a
graphite reactor
core fire that
burned for days.
Show OT-9
DOE-HDBK-1113-2008
Module 101 Properties of Uranium
Lesson Plan Instructor’s Notes
14
the human system is due to either
inhalation or ingestion. Inhalation
occurs either from release of
volatile uranium compound or from
suspension of volatile uranium-
laden aerosols. Ingestion can occur
when the uranium is introduced into
water for consumption or the food
chain by plant uptake. When
uranium is either ingested or
inhaled, it is removed from the
body with a biological half-life
varying between 6 and 5000 days,
depending on which organ has
become contaminated. Uranium
tends to concentrate in the kidneys
and the bones. Additionally, if
inhaled, the lungs are exposed.
Internal exposure to uranium is
controlled by limiting the ingestion
and inhalation of this element.
These methods, along with
measurement techniques, are
discussed in Module 104.
Most heavy metals, such as
uranium, are toxic to humans
depending on the amount
introduced into the body. For short-
term (acute) exposures, the
toxicological effects are the primary
concern, and acute exposures to
significant amounts of uranium may
result in kidney damage. However,
as the enrichment of the uranium in
the 235U isotope increases, so too do
the effects of radiation exposure in
relation to toxicological effects.
Section 15
Past industrial experience has
proven that if there is a long-term
exposure of small amounts of
uranium (chronic exposure), the
radiological effects are the primary
biological concern. In fact, for
DOE-HDBK-1113-2008
Module 101 Properties of Uranium
Lesson Plan Instructor’s Notes
15
chronic exposures, a development
of tolerance against the
toxicological effects may occur.
The principal radiological hazard
associated with uranium is due to
the relatively high energy alpha
particles its radionuclides and
daughters emit. A chronic exposure
to these radionuclides result in an
increased risk of cancer, typically in
the bones, kidney, and lungs, since
these are the organs where uranium
is deposited.
3. Chemical Reactivity
The chemistry of uranium is
complicated. For example, uranium
forms several oxides: UO, UO2
UO3, and UO4. In general, a sample
of uranium oxide will include a
mixture of several of these. For
example, U3O8 is sometimes written
as (UO2)•2(UO3).
The lower oxidation states, UO2
and U3O8, tend to be dark brown or
black. The higher oxidation states,
UO3 and UO4, are generally orange
or yellow, especially in solution or
if water or crystallization are
present (e.g., UO4•2H2O).
Furthermore, the higher oxides
usually flake of more easily and are
usually more soluble in water.
Being flaky, they are more easily
inhaled. Being more soluble, they
are more easily absorbed into the
body.
Uranyl compounds, such as uranyl
nitrate, or UO2(NO3)2, are chemical
forms of uranium that are often
found in solution with water. They
are generally yellow in color and
Show OT-10
Show OT-10 again
DOE-HDBK-1113-2008
Module 101 Properties of Uranium
Lesson Plan Instructor’s Notes
16
are used in criticality experiments.
Uranium reacts readily with air and
water. For example, when uranium
is machined, small chips catch fire
from the heat of the machining
process. Shavings placed in water
react to produce hydrogen gas. The
surfaces quickly oxidize to a hard
black coating that is at first
protective; however, under adverse
conditions, it corrodes and flakes.
Uranium also reacts with hydrogen
or tritium gas to form uranium
hydride (UH3). Uranium “beds” are
commonly used to store tritium.
Uranium hexafluoride (UF6) reacts
in moist air to produce hydrogen
fluoride (HF) gas, which is
extremely corrosive and can
severely damage the lungs if
breathed. Inhalation of HF has
resulted in fatalities following UF6
releases.
The chemical form of uranium is
dependent on its intended use and
its stage of production. For
example, UF6 is used during the
enrichment process, and UO2 is
used as nuclear fuel. When
handling uranium compounds, the
possibility of chemical reactions
must not be overlooked.
DOE-HDBK-1113-2008
Module 102 The Nuclear Fuel Cycle
Lesson Plan Instructor’s Notes
17
II. MODULE 102 - The Nuclear Fuel Cycle
A. Objectives
EO2 Identify the sources and uses of
uranium.
EO3 Identify the various processes involved
in the nuclear fuel cycle.
B. Importance of Uranium
Uranium is a naturally occurring element used
primarily for producing energy with nuclear
reactors and developing nuclear weapons. It is
also used for armor plating (depleted
uranium), radiation shielding, and
counterweights.
Historically, uranium was used for hundreds
of years to color glass and as a glaze for tile
and pottery. Bright orange “Fiesta-ware”
dinner plates were prized for their color
without any awareness of their radioactivity.
These plates are no longer produced, but are
now collectors’ items among those in the
nuclear industry and others. Typically, the
dose rate is about 5 mrem/hr (0.05 mSv/hr) on
contact with these plates.
Section 16
The original discovery of radioactivity
involved uranium. In 1896, Henri Becquerel
discovered that uranium would cause
photographic film to become fogged because
of radioactive emissions. Some of these
emissions were even more penetrating that the
“X rays” that Wilhelm Roentgen had
discovered a year earlier.
Show OT-12
Show OT-13
DOE-HDBK-1113-2008
Module 102 The Nuclear Fuel Cycle
Lesson Plan Instructor’s Notes
18
Module 102 The Nuclear Fuel Cycle
Later investigators, such as Marie Curie,
isolated other radioactive elements from
uranium ores. These elements are produced
from the radioactive decay of uranium. The
radioactive emission of an alpha particle causes
uranium to change into thorium. Thorium goes
on to decay to other elements, and so on, until a
stable element such as lead is reached.
Radium and radon are the two most well-
known radioactive decay products of uranium.
Radium was once used for luminous instrument
dials and other products. Radon is a heavy
radioactive gas that can accumulate in
buildings and mines. Typically, these
radioactive decay products are more hazardous
than the uranium itself.
The importance of uranium increased
dramatically with the discovery of nuclear
fission in 1938, the production of plutonium in
1940, and the construction of the first reactor in
1942 under the direction of Enrico Fermi.
These accomplishments led to the Manhattan
Project, in which uranium was enriched at Oak
Ridge or converted into plutonium at Hanford.
These products were used to assemble the first
atomic bombs at Los Alamos in 1945.
After the end of World War II in 1945, the
importance of uranium remained high.
Production of uranium and plutonium for
“atomic” or “nuclear” weapons continued
throughout the Cold War. In addition, nuclear
reactors were built for the propulsion of naval
submarines and ships, and for the commercial
production of electricity. Now, most of the
world’s production of uranium is used for
nuclear reactors.
DOE-HDBK-1113-2008
Module 102 The Nuclear Fuel Cycle
Lesson Plan Instructor’s Notes
19
C. Sources of Uranium
Uranium is found in the earth's crust and is
mined as ore. The average concentration is 2
parts per million (ppm) in the crust and less
than 2 parts per billion (ppb) in the oceans.
During the 1960's and 1970's, a program titled
the Natural Uranium Resource Exploration was
funded by the government to identify the
locations of desirable uranium ore throughout
the United States. It was determined that the
most desirable locations of uranium are in the
Colorado Plateau, the Wyoming Basin, and the
flanks of the Black Hills in South Dakota. In
those locations, the uranium concentration is
much higher than 2 ppm. Uranium is also
found on the African Continent. The ore is
removed from either shallow open pits (less
than 300-foot, or100 m, depths) or underground
mines (greater than 300-foot depths). The
typical uranium content of the ore is 0.15 - 0.3
percent and is in the form of U3O8, which is
called "yellowcake.” Uranium is also found in
secondary minerals in the following forms:
complex oxides, silicates, phosphates, and
vanadates.
D. Uranium Operations and Processes
Uranium processing is dependent upon the
desired product, but it generally involves the
following cycle:
• mining and milling,
• conversion,
• enrichment,
• fabrication,
• use,
• waste disposal/storage, and
• decontamination and decommissioning.
Show OT-14
Show OT-15
Show OT-16
Section 17
Discuss the use
of uranium at
your site as it is
described in this
section of the
lesson plan.
DOE-HDBK-1113-2008
Module 102 The Nuclear Fuel Cycle
Lesson Plan Instructor’s Notes
20
Module 102 The Nuclear Fuel Cycle
1. Uranium Mining and Milling
After removal from the mine, the uranium
ore is milled to extract the yellowcake.
This involves the following process:
a. The ore is crushed, ground, and mixed
with water to prepare for chemical
processing.
b. The crushed ore and water mixture is
mixed with chemicals to separate the
yellowcake from the ore. This
separation process is called
"leaching.” The resultant products
include a slurry of yellowcake ready
for additional processing and a
mixture of low-grade crushed rock
and sand called "mill tailings.”
Only about 3 percent of the actual
material removed from the mine ends
up a yellowcake, which means that
millions of tons of mill tailings are
leftover.
Show OT-17
DOE-HDBK-1113-2008
Module 102 The Nuclear Fuel Cycle
Lesson Plan Instructor’s Notes
21
Yellowcake contains 70-90% by
weight of uranium oxides. The
leftover mill tailings are a concern
because they still contain some of the
uranium ore . Additional hazards exist
due to the chemicals added. It is
estimated that the uranium milling in
the United States left approximately
138 million tons of mill tailings
covering about 3,000 acres of land.
c. The yellowcake slurry is then purified
by either ion exchange or solvent
extraction.
d. Following purification, the
yellowcake slurry is dried, forming a
concentrated yellowcake compound
that contains 75 – 98 percent uranium.
The yellow color is caused by the
addition of leaching chemicals and
their eventual removal during the
drying step. The final color can range
from yellow to orange to black
depending on the chemicals used and
the drying temperature.
The final color is a good indicator of
solubility, and thus of biological
effects if uranium in this form is taken
into the body. Less soluble uranium
compounds tend both to remain in the
body longer and to be darker in color.
More soluble uranium compounds are
removed from the body more quickly
by normal body functions, and tend to
be lighter in color.
DOE-HDBK-1113-2008
Module 102 The Nuclear Fuel Cycle
Lesson Plan Instructor’s Notes
22
2. Conversion
At this stage in the nuclear fuel cycle, the
yellowcake is converted into uranium
hexafluoride (UF6) for enrichment. This
is accomplished by:
a. Conversion of yellowcake to pure
uranium trioxide (UO3), called
"orange oxide" or "orange salt,” by
solvent extraction and follow-up
drying.
b. Conversion of UO3 to uranium
dioxide UO2.
c. Conversion of UO2 to uranium
tetrafluoride (UF4) by
hydrofluorination (addition of
hydrogen fluoride gas). This product
is called "green salt.”
d. Reacting the UF4 with fluorine gas
(F2) to form uranium hexafluoride
(UF6), which is a volatile form ready
for enrichment. The UF6 is a solid at
room temperature but readily
becomes a gas when heated above
56°C.
Show OT-18
DOE-HDBK-1113-2008
Module 102 The Nuclear Fuel Cycle
Lesson Plan Instructor’s Notes
23
3. Enrichment
The enrichment process is necessary to
increase the percentage of the 235U
isotope in the uranium to make it suitable
for reactor fuel. Natural uranium contains
0.7% 235U. Typically, enriched uranium
contains 2-4% 235U. Other uses may
require much higher concentrations up to,
or even greater than, 90% 235U. Depleted
uranium, which is left over after the
enrichment process, has an abundance of
about 0.2% 235U.
Section 18
The methods used to enrich uranium
include:
a. Gaseous Diffusion
Gaseous diffusion is based on
principles of gas laws. The UF6 gas is
forced through converters by large
compressors. The converters contain
many tubes made of a special barrier
material that is porous. The 235UF6
molecules are lighter than the 238UF6
molecules and bounce against the
porous barrier more frequently. The
235UF6 has a greater chance of
passing through the barrier, resulting
in a slightly richer 235U content. It
may take as many as a thousand
passes to obtain the desired degree of
enrichment.
Show OT-19
DOE-HDBK-1113-2008
Module 102 The Nuclear Fuel Cycle
Lesson Plan Instructor’s Notes
24
b. Laser Processes
The Atomic Vaporization Laser
Isotope Separation (AVLIS) involves
vaporization, selective ionization of
one isotope, and subsequent electrical
separation. Currently, no DOE
production plants exist which use this
technology.
c. Nozzle Separation
The nozzle separation process is
based on the different speeds of 235U
and 238U compounds when they are
injected through a nozzle into a small
chamber.
d. Centrifugal Separation
Centrifugal separation is based on
heavier compounds migrating to the
outside when spun at a high rate of
speed. The uranium left over from the
enrichment process is mostly 238U,
with a reduced amount of 235U
(usually 0.2% by weight). This
byproduct is called "depleted
uranium" and has additional uses such
as radiation shielding, armor plating,
and ammunition.
During World War II, uranium work
was secret and code names were used
for the different forms of uranium.
Natural uranium was named
“Tuballoy,” a name that grew out of a
cover story that the Allies were
investigating alloys for high-quality
tubing.
DOE-HDBK-1113-2008
Module 102 The Nuclear Fuel Cycle
Lesson Plan Instructor’s Notes
25
Highly enriched uranium was then
named “Oralloy” for “Oak Ridge
Alloy,” sometimes abbreviated to
“Oy.” Depleted uranium was once
called depletalloy, but more
commonly was called “D-38” since it
consists mostly of 238U. These
historical names are sometimes still
used within the DOE complex.
4. Fabrication
The last step in the nuclear fuel cycle is
changing the enriched uranium into an
appropriate form for fabrication. The
fabrication process differs depending on
the application. For fabrication of fuel
elements, the process generally includes
the following steps.
a. Uranium dioxide (UO2) is produced
by reacting UF6 with water and then
with a hydroxide salt.
b. The resulting precipitate is dried to
form "orange oxide," which is
reduced with hydrogen to form UO2
powder.
c. The UO2 powder is compacted into
cylindrical pellets that are loaded into
thin walled tubes made of either
stainless steel or an alloy of zirconium
called "zircalloy.”
DOE-HDBK-1113-2008
Module 102 The Nuclear Fuel Cycle
Lesson Plan Instructor’s Notes
26
d. Helium, an inert gas, is pumped into
the tubes, which are then capped. A
cluster of these tubes separated by
spacers forms a reactor fuel assembly.
Fabrication of other materials, such as
weapons parts, may also include materials
made with uranium.
5. Uses
The primary goal of the uranium fuel
cycle process is to yield enriched
uranium. This product can be used for:
• power reactors,
• research reactors,
• nuclear weapons, and
• naval propulsion reactors.
There are also a number of uses for
uranium metal depleted in the 235U
isotope, such as:
Section 19
• radiation shielding,
• armor-piercing bullets,
• catalysts for chemical reactions,
• armor plating, and
• counter weights.
Show OT-20
Show OT-21
DOE-HDBK-1113-2008
Module 102 The Nuclear Fuel Cycle
Lesson Plan Instructor’s Notes
27
Depleted uranium typically is cast into
ingots or billets, and then shipped to
production facilities for appropriate
reshaping.
6. Reprocessing
Reprocessing of spent nuclear fuel is no
longer performed in this country. This
information is provided for the purpose of
describing how the process worked at
applicable facilities.
Uranium was used in plutonium
production reactors. Uranium fuel and
targets were coated with aluminum or
zirconium metal and placed in the reactor.
As they were irradiated with neutrons, a
small fraction of the uranium was
converted to plutonium. The irradiated
fuel was then removed from the reactor,
but the plutonium and uranium had to be
separated from the fission products
created during irradiation.
PUREX, a chemical process for
plutonium and uranium extraction from
irradiated nuclear fuel, was developed to
accomplish this separation. This
reprocessing was accomplished as
follows:
a. Excess metal was mechanically
removed to expose the fuel material.
b. The fuel was leached with acid to
remove it from the cladding.
c. The uranium and other elements were
separated by solvent extraction
(chemical separation).
d. The uranium was converted back to
UF6 for enrichment.
Show OT-22
DOE-HDBK-1113-2008
Module 102 The Nuclear Fuel Cycle
Lesson Plan Instructor’s Notes
28
7. Waste Disposal and Storage
Due to the remaining radioactive
properties, the nuclear fuel cycle
byproducts must be controlled and/or
disposed. These byproducts can be
divided into two categories—low-level
waste (LLW) and high-level waste
(HLW).
a. LLW
The RCS glossary defines low-level
waste (LLW) as “Waste that contains
radioactivity and is not classified as
high-level waste, transuranic waste,
spent nuclear fuel, or byproduct
material as defined in Section 11e(2)
of the Atomic Energy Act, as
amended. Test specimens of
fissionable material irradiated only for
research and development and not for
production of power or plutonium
may be classified as low-level waste
provided the concentration of
transuranic activity is less than 100
nCi/g.” LLW could be in the form of
liquids, solids, or gasses. Liquid waste
is usually processed to remove
radioactive material and then recycled
or disposed.
Show OT-23
DOE-HDBK-1113-2008
Module 102 The Nuclear Fuel Cycle
Lesson Plan Instructor’s Notes
29
Solids may be volume-reduced by
incineration or compaction. Soluble
forms in liquid may be solidified to
isolate radioactive contents.
Gases are either changed to a solid
form and disposed of as a solid or
compressed and stored as gases.
These gases may be released after
sufficient time has elapsed for decay
of the radioactive component of the
gas.
b. HLW
High-level waste (HLW) is defined in DOE M
435.1-1 as “The highly radioactive waste
material resulting from the reprocessing of spent
nuclear fuel, including liquid waste produced
directly in reprocessing and any solid material
derived from such liquid waste that contains
fission products in sufficient concentrations; and
other highly radioactive material that is
determined, consistent with existing law, to
require permanent isolation”.
DOE-HDBK-1113-2008
Module 102 The Nuclear Fuel Cycle
Lesson Plan Instructor’s Notes
Section 20
30
HLW comes primarily from the
reprocessing of spent fuel. It is
typically in liquid form, and it is
collected and stored in tanks. The
liquid waste is then solidified
(stabilized) for disposal. All HLW is
ultimately to be disposed of by deep
burial.
8. Decontamination and Decommissioning
of Uranium Facilities
Uranium and its byproducts from the
nuclear fuel cycle may present health
risks due to radioactivity or chemical
properties. Past and present DOE uranium
facilities and their surrounding areas may
contain contamination from uranium or
its byproducts. DOE recognizes that they
have a responsibility to restore these
potentially contaminated facilities and
surrounding areas to a non-hazardous
condition. To accomplish this, several
“remediation” programs are in place and
others are developing.
One cleanup program is:
Uranium Mill Tailings Remedial
Action
(UMTRA) Program
Show OT-24
DOE-HDBK-1113-2008
Module 102 The Nuclear Fuel Cycle
Lesson Plan Instructor’s Notes
31
This program is intended to cleanup
uranium mill sites and associated
“vicinity properties.” It covers 24 mill
sites and more than 4,800 properties
throughout the Nation. The goals of
the program are to reduce radon
release from mill tailings to
acceptable levels by burial, and to
restore affected land and
facilities/structures to unrestricted
use.
Each cleanup project presents different types
and levels of hazards to workers.
Additionally, general safety hazards become
a significant factor due to the types of
processes and equipment used to remove the
uranium-contaminated materials. Usually
these projects require some level of structural
decontamination and soil remediation.
DOE-HDBK-1113-2008
32
Module 103 External Dose Control
III. MODULE 103 - External Dose Control
A. Objectives
EO4 Identify the radiological concerns of
external exposure to uranium.
EO5 Describe the measures taken to control
external exposure to uranium.
B. Alpha External Dose
Because of the relatively short range of alpha
particles in dense matter, alpha radiation poses
little external dose hazard. The most energetic
alphas produced by naturally occurring
radionuclides will barely penetrate the dead
layer of skin on the human body. Little living
tissue will be affected when the alpha source is
external to the skin.
C. Beta External Dose
Beta doses to the skin, extremities, and the lens
of the eye can be limiting in facilities which
process unshielded depleted, natural, or low-
enrichment uranium. Processes which separate
and sometimes concentrate beta-emitting
uranium daughters are not uncommon in DOE
uranium facilities. Control of exposure is
complicated by the fact that considerable
contact work takes place in facilities which
process uranium metal.
Show OT-25
Highlight the
specific external
exposure
hazards and
controls at your
facility.
Show OT-26
DOE-HDBK-1113-2008
33
Module 103 External Dose Control
Lesson Plan Instructor’s
Notes
Several uranium radioactive decay
products are beta emitters. Normally,
most of these betas are shielded by the
surrounding material or material worn as
personal protective clothing (such as
Tyvek). A primary radionuclide of
concern is protactinium-234 in its
metastable state (234mPa), a daughter of
238U which produces a very high energy
beta particle that can travel up to 20 feet
in air. Significant beta radiation is also
emitted from 234Th (also a daughter of
238U) and 231Th (a daughter of 235U).
Typically, these are shielded with ½-inch
of plastic.
Section 21
D. Gamma and X-Ray External Dose
Although beta dose from unshielded
uranium presents the most common
radiation problem, storage of large
quantities of uranium can create low-level
gamma radiation fields (less than 5
mrem/hr). Such fields can create external
exposure problems, particularly when
significant numbers of people are
working in adjacent areas.
In addition to gamma emissions from the
uranium decay chains (238U and 235U),
recycled fuel materials introduced back
into the enrichment process will result in
higher gamma radiation fields because of
228Th, a gamma-emitting daughter of
232U with a relatively short half-life (1.9
yr).
Larger sources of gamma radiation may
exist from specific uranium processes,
including unflushed UF6 cylinders.
Gamma radiation emitted from residual
Discuss all other
beta emitters of
importance at
your facility.
Show OT-27
DOE-HDBK-1113-2008
34
Module 103 External Dose Control
Lesson Plan Instructor’s
Notes
materials can result in gamma radiation
fields of several hundred millirem per
hour. This problem can be controlled by
flushing empty cylinders to remove
residual material.
E. Neutron External Dose
As uranium is processed in the fuel cycle,
it is often chemically bonded to fluorine
to create compounds such as UF4 and
UF6. When uranium atoms in these
compounds decay, they emit alpha
particles that are sometimes captured by
the neighboring fluorine atoms. The
resulting atom is unstable and may emit a
neutron to gain back its stability. The
neutrons emitted can result in neutron
radiation fields between 4 and 8 mrem/h.
The probability of spontaneous fission is
small; therefore exposure is not expected.
However, if fission does occur, such as in
a reactor or from experiments, the neutron
radiation is typically contained. Neutron
radiation that is not contained is usually
the result of a criticality accident, which
generates potentially fatal doses of
gamma radiation.
F. External Dose Measurements
The radiation from uranium that affects
external dose includes beta, gamma, X-
ray and neutron irradiation. An effective
external exposure control program for
uranium requires a variety of radiation
detection instruments that are responsive
to these forms of radiation. Radiation
surveys should be performed on a routine
basis and during events, tasks,
procedures, or situations that are likely to
Show OT-28
DOE-HDBK-1113-2008
35
Module 103 External Dose Control
Lesson Plan Instructor’s
Notes
cause radiological conditions to change.
There are two general categories of
measurement used for external exposure
associated with uranium, portable survey
instruments and personnel dosimeters.
Gamma radiation from uranium is
normally not the controlling problem. For
example, the contact beta radiation field
from depleted uranium is approximately
240 millirem per hour, while the contact
gamma radiation field is less than 10
millirem per hour. However, significant
gamma fields can exist in areas where
large quantities of uranium are stored,
such as a storage area for uranium
contaminated soil. The accuracy and
precision of survey instruments used for
measurement of beta radiation fields
depend on many factors which must be
addressed, such as energy response and
geometry factors. Accordingly, these
surveys are typically conducted by
Radiological Control personnel. Neutron
fields from enriched uranium fluoride
compounds can also add to this area of
concern. Depending on the magnitude of
neutron fields generated, periodic neutron
dose rate measurements are made,
typically by Radiological Control
personnel.
Section 22
Personnel dosimeters produce the data
which becomes the formal or “legal”
record of personnel exposure,
thermoluminescent dosimeters, used in
most DOE uranium facilities, provides
the most accurate and precise means of
measuring doses received by workers.
Discuss the
facility specific
methods for
measuring
external
exposure and
dose.
DOE-HDBK-1113-2008
36
Module 103 External Dose Control
Lesson Plan Instructor’s
Notes
G. External Dose Reduction and Control
Techniques
1. External Dose Control Program
The primary purpose of an external dose
control program is to control dose to the
individual radiation worker to below
regulatory limits and administrative levels
and ensuring that doses are As Low As
Reasonably Achievable (ALARA). In all
cases at DOE facilities, dose received by
an individual shall not exceed the limits
specified in Title 10 of the Code of
Federal Regulations, Part 835 (10 CFR
835).
The elements of an external dose control
program include:
• detecting and characterizing the beta,
gamma, X-ray, and neutron radiation
fields;
• measuring and/or quantifying these
radiation fields;
• measuring personnel exposure; and
• determining external exposure control
practices.
2. General External Dose Control Practices
These general principles should be
applied to control external dose from
uranium:
• minimizing time in the radiation field,
• maximizing the distance from the
radiation source,
• using shielding to reduce the radiation
field, and
• reducing the amount of radioactive
material being used.
Show OT-29
DOE-HDBK-1113-2008
37
Module 103 External Dose Control
Lesson Plan Instructor’s
Notes
3. Specific Beta Dose Control Principles
Surfaces emitting beta radiation are easily
shielded with plastic or other light
element materials. Use of denser
materials for shielding of high-energy
beta radiation may produce
bremsstrahlung X-rays and should be
avoided.
Beta dose to the lens of the eye can be
reduced by using safety glasses. Safety
glasses are commonly worn for industrial
safety concerns in areas where uranium is
handled. Heavy rubber or leather gloves
are effective in reducing the skin dose to
the hand, but their use must be balanced
against other safety concerns, such as
hazards from machinery or loss of manual
dexterity.
Industrial safety concerns in a uranium facility
may be more hazardous to personnel than
exposure to radiation. Professional radiological
control personnel evaluate the process in the
workplace to ensure workers receive the
maximum overall protection from all hazards,
not only radiological hazards. This is generally
done in cooperation with industrial safety and
industrial hygiene personnel.
Show OT-30
DOE-HDBK-1113-2008
38
Module 104 Internal Dose Control
Lesson Plan Instructor’s
Notes
IV. MODULE 104 - Internal Dose Control
A. Objectives
EO6 Identify the modes of entry into the
body for uranium.
EO7 Describe the measures taken to
control intakes of uranium, including
special radiological surveys and
techniques, instruments, and release
of materials.
B. Internal Exposure to Uranium
As discussed in Module 101, the primary
biological hazard is the potential for uranium
to be taken into the body. This exposure may
result in heavy metal poisoning, including
kidney damage (for acute exposures), or an
increased cancer risk (for chronic exposures).
Uranium may enter the body through
inhalation, ingestion, absorption through the
skin, or injection into the bloodstream, such
as from contamination of an open wound.
Section 23
The most common route of entry is
inhalation, but much of the material inhaled
does not stay in the lungs. The lungs and
related air passages constantly work to
remove all the dust we breathe, including
dust that contains uranium. The dust expelled
from the lungs but not exhaled is swallowed,
so some of the inhaled uranium ends up in the
digestive tract.
Show OT-31
Highlight the
specific internal
exposure
hazards and
controls at your
facility.
Show OT-32
DOE-HDBK-1113-2008
39
Module 104 Internal Dose Control
Lesson Plan Instructor’s
Notes
The amount of uranium retained in the
lungs depends a great deal on the size of
the particle breathed. The smallest
particles tend to be exhaled or absorbed
into the bloodstream, while the largest
particles are usually removed before they
reach the lung. Uranium retained in the
lungs may remain there or be absorbed
into the bloodstream. Part of the uranium
passing through the digestive tract may
also be absorbed in the bloodstream.
Uranium in the bloodstream is either
transferred to various organs or excreted
via the urine.
The enrichment of the uranium in its
235U isotope also plays a role in
determining whether the radiological or
the chemical effects are the limiting
factor. For acute exposures, chemical
toxicity is limiting up to 39% enrichment.
Beyond 39%, the effective dose becomes
limiting. For chronic exposures, chemical
toxicity is more limiting up to 1.3%
enrichment. Beyond 1.3%, the effective
dose becomes limiting.
C. Internal Dose Measurements
Once in the body, the presence of
uranium can be detected using indirect
radioactivity measurements, direct
radioactivity measurements, or both.
At one time, it was not possible to detect
internal uptakes of uranium or certain
other radioactive materials at levels
below the point at which the annual limit
for exposure (5 rem) was received. Any
measurable intake of uranium was
therefore considered to be unacceptable.
Improved analytical and calculational
techniques have now made it possible to
Highlight the
internal
exposure
measurements
used at your
facility.
DOE-HDBK-1113-2008
40
Module 104 Internal Dose Control
Lesson Plan Instructor’s
Notes
measure uranium concentrations
resulting in exposures of about 10
mrem with a reasonable degree of
accuracy. The estimation of low-level
internal exposure to uranium is no
longer a matter for inordinate
concern.
1. Indirect or In Vitro Measurement
Bodily processes will, to some degree,
eliminate uranium taken into the
body. How effective the body is at
eliminating the uranium, and how
long the process takes, depends upon
individual metabolism and the
chemical form of the uranium. For
example, uranium hexafluoride
contains uranium that is chemically
bound to fluorine and is more easily
eliminated than uranium metal or
uranium dioxide.
Indirect measurements are made by
sampling material eliminated by the
body for the presence of uranium. It is
possible to analyze both feces and
urine for the presence of uranium, but
due to the ease of collection and
handling, the most common method
used is urinalysis.
2. Direct or In Vivo Measurement
Direct measurements are performed
using whole body counters or lung
counters. These instruments detect
gamma and X-rays emitted from
radioactive material inside the body.
For example, the 235U and uranium-
234 (234U) isotopes of uranium
present in enriched uranium emit X-
rays that can be detected.
DOE-HDBK-1113-2008
41
Module 104 Internal Dose Control
Lesson Plan Instructor’s
Section 24
Notes
Alpha and beta radiation emitted by
material inside the body is shielded by
body tissue and cannot be detected.
Direct measurement is useful for
detecting uranium that is not easily
eliminated by the body. This method
may also be used to estimate an
internal dose. Because of the very low
energy and intensity of gamma
radiation emitted from depleted
uranium, direct measurements are not
effective in detecting depleted
uranium in the body.
D. Internal Dose Reduction and Control
Techniques
The hierarchy for minimization of
internal dose is given in the RCS, Article
316. Engineering controls should be the
primary method of minimizing airborne
contamination and internal exposure to
workers, where practicable.
Administrative controls, including access
controls and specific work practices,
should be used as the secondary method
to minimize internal exposure. If the
potential for airborne radioactivity still
exists after engineering and
administrative controls have been applied,
respiratory protection should be
considered. Other specific controls, such
as stay times, worker safety, comfort, and
efficiency, are also discussed in Article
316.
DOE-HDBK-1113-2008
42
Module 104 Internal Dose Control
Lesson Plan Instructor’s
Notes
The internal exposure resulting from
uranium entering the body can be
properly controlled by appropriate facility
and equipment design, contamination
control procedures, and protective
clothing. A bioassay monitoring program
to determine the amount of uranium taken
into the body is also an integral part of
internal exposure control.
1. Contamination Control Philosophy
The control of contamination in the
work place is a significant part of the
overall radiological protection
program at uranium facilities. Proper
contamination control will:
• limit internal exposure by
minimizing the ingestion,
inhalation, absorption, and
injection of uranium;
• limit external dose from uranium
and its radioactive decay products;
and
• prevent the spread of radioactive
materials into uncontrolled areas.
2. Contamination Control Methods
Because uranium is relatively less
hazardous than some other radioactive
materials, such as plutonium, some
people can develop an overly relaxed
attitude to uranium; in effect saying,
“It’s only uranium.”
Care must be taken to avoid this
attitude, and to control uranium
contamination in compliance with
regulations, policies, and procedures.
Show OT-33
Show OT-34
DOE-HDBK-1113-2008
43
Module 104 Internal Dose Control
Lesson Plan Instructor’s
Notes
Uranium contamination can be
effectively controlled by:
• an evaluation of activities likely to
generate or spread contamination,
• use of containment devices to
confine contamination as close to
the source as possible,
• control and monitoring of airborne
contamination as it is generated,
• minimizing the size and number
of contaminated areas by using
effective decontamination
methods,
• control of movement of
equipment and personnel into and
out of contaminated areas,
• use of personal protective
equipment, and
• effective contamination
monitoring.
a. Evaluation of Work Activities
Work activities that involve the
destruction of surfaces, such as
grinding, machining, filing, or
cutting, can easily create and
spread contamination. Operations
such as welding, burning,
heating, etc. can alter the physical
and/or chemical state of uranium
compounds that are on the
surfaces of equipment. Work
activities such as these should be
evaluated and steps taken to
minimize the spread of surface
contamination, personnel
contamination, and airborne
contamination. If possible,
alternative methods for
completing the task should be
considered.
Section 25
DOE-HDBK-1113-2008
44
Module 104 Internal Dose Control
Lesson Plan Instructor’s
Notes
b. Use of Containment Devices
Whenever activities that may
generate loose contamination
are planned, consideration
should be given to using
containment devices to control
the contamination to an area as
close to the source as possible.
Such devices include glovebags,
gloveboxes, and tents.
c. Control and Monitoring of
Airborne Contamination
Uranium contamination is
relatively dense (heavy) so it is
not easily stirred up into the air
and quickly settles out when
disturbed. Therefore, it is
unlikely that significant airborne
contamination will result from
normal activities (such as
walking) in areas contaminated
with uranium. It is possible for
airborne contamination to result
from activity that vigorously
disturbs the surface, such as
sweeping, grinding, welding,
and direct, high-volume air
flow.
Show OT-35
DOE-HDBK-1113-2008
45
Module 104 Internal Dose Control
Lesson Plan Instructor’s
Notes
Failure to control airborne
contamination could result in
inhalation of the contamination
and spread of contamination to
other areas.
Control of airborne
contamination should include:
• an evaluation of activities
that are likely to cause
contamination to become
airborne,
• engineered controls such as
installed or portable
ventilation with High
Efficiency Particulate Air
filtration systems (HEPA
systems) to remove
contamination from the air at
a point as close to the source
as possible,
• physical barriers (e.g., pipes,
gloveboxes, etc) and
pressure differential zones,
• use of alternate work
activities or equipment that
is less likely to generate
airborne contamination,
• air sampling to track
airborne contamination
levels, and
• using respiratory protection
to minimize internal dose of
the worker.
Monitoring for airborne
contamination can take several
forms:
Discuss the
airborne
contamination
limits and
monitoring
methods in use
at your facility.
DOE-HDBK-1113-2008
46
Module 104 Internal Dose Control
Lesson Plan Instructor’s
Notes
• long-term, low-volume air
samples that provide an
average of the airborne
concentration over a given
time;
• short-duration, high-volume
air samples taken in the
breathing zone of a worker
during work activities likely
to generate airborne
contamination;
• low-volume (about 2 liters
per minute) breathing zone
samples from personal air
monitors; and [Note: A liter
is approximately the same
volume as a quart. Use the
concept of a 2-liter soda
bottle to describe the
quantity.]
• continuous air monitors that
track airborne contamination
levels over time and can be
set to alarm if a specified
level is reached.
It is important that air samples
represent the actual airborne
contamination levels breathed
by the worker so that accurate
intakes may be estimated. Air
monitoring is also used to detect
loss of containment. It is
important to ensure sample
volumes and methods allow
detection of airborne
contamination levels below the
level of concern.
Airborne
contamination
measurements
may be
described in
terms of
Derived Air
Concentrations
(DACs) in order
to compare with
regulatory
limits. One
DAC is the
airborne
concentration
that equals the
Annual Limit on
Intake divided
by the volume
of air breathed
by an average
worker for a
working year of
2000 hours
(assuming a
breathing
volume of 2400
m3. DAC values
are found in
Appendices A
and C of 10
CFR 835. The
Annual Limit on
Intake is the
amount of
radioactive
material taken
into the body of
an adult worker
by inhalation or
ingestion in a
year that would
Section 26
DOE-HDBK-1113-2008
47
Module 104 Internal Dose Control
Lesson Plan Instructor’s
Notes
d. Minimization of Contamination
Areas
Loose contamination on work
surfaces can result in contamination
of shoes, clothing, and skin and
thereby result in the potential for
tracking of contamination into
uncontrolled areas.
This potential can be reduced by:
• minimizing the size and
number of contamination
areas,
• using disposable work
surfaces (such as covering a
bench top with plastic) when
performing work that is
likely to generate
contamination, and
• promptly decontaminating
work surfaces (good
housekeeping).
e. Control of Movement of
Equipment and Personnel
The risk of spreading contamination
to an uncontrolled area is directly
related to the amount of equipment
moved and the number of personnel
exiting the contamination area. The
risk of spreading contamination can
be reduced by minimizing the
movement of equipment and tools
into and out of contaminated areas by
using dedicated tools and equipment,
and by performing as many work
activities as practical outside
contaminated areas.
result in a
committed
effective dose of
5 rems or a
committed
equivalent dose
of 50 rems to
any individual
organ or tissue.
DOE-HDBK-1113-2008
48
Module 104 Internal Dose Control
Lesson Plan Instructor’s
Notes
Besides reducing the spread of
contamination, these practices
save money by:
• reducing the number of
personnel requiring training,
• reducing the cost of
decontaminating and
surveying tools and
equipment,
• reducing the cost of
protective clothing used, and
• minimizing the production
of radioactive waste.
f. Protective Equipment
i. Protective Clothing
Use of protective clothing
(PC) in contaminated areas
will minimize the potential
for skin contamination and
ingestion of uranium. The
choice of PC garments will
be based on the type of job
and the form of
contamination hazards.
Protective clothing should
not be worn in uncontrolled
areas such as lunch rooms.
Show OT-36
Discuss your
facility specific
protective
clothing
requirements.
DOE-HDBK-1113-2008
49
Module 104 Internal Dose Control
Lesson Plan Instructor’s
Notes
Protective clothing
commonly worn in the
nuclear industry can also
provide beta dose reduction.
Gloves are especially helpful
in reducing beta dose to the
hands while handling
uranium. Contamination
build-up inside work gloves
has lead to unacceptable
hand doses in some
facilities. Reuse of leather or
cloth gloves should be
reviewed carefully because
of such buildup. Workers
should wear thin, protective
gloves inside the heavy
gloves.
ii. Respiratory Protection
Respiratory protection
equipment is used to provide
protection from airborne
hazards that may be
encountered in the work
environment. Respirator use
is based on the level of
airborne contamination
known to exist or expected
to be produced from the
work to be performed.
DOE-HDBK-1113-2008
50
Module 104 Internal Dose Control
Lesson Plan Instructor’s
Notes
Respiratory protection may
also be required for hazards
present in an area other than
radioactive airborne
contamination. Health and
safety groups should
coordinate the use of
respiratory protection
requirements based on all
hazards present. If a worker
finds a conflict in respiratory
protection requirements, he
or she should not enter the
work area until the conflict
is resolved and the
appropriate respiratory
protection equipment is
available.
g. Special Radiological Surveys
Section 27
and Techniques for
Contamination Monitoring
i. Alpha Monitoring
As workers at a uranium facility,
you will likely perform self-
monitoring for the presence of
radioactive contamination.
If you recall from the general
characteristics of uranium, it
primarily decays by emitting an
alpha particle. Many uranium
decay products also decay by
emitting alpha particles.
Highlight the
personal
contamination limits
and monitoring
techniques in use at
your facility. Refer
the students to and
discuss the guidance
specified in the RCS
Appendix 3D.
DOE-HDBK-1113-2008
51
Module 104 Internal Dose Control
Lesson Plan Instructor’s
Notes
Alpha particles are highly
charged and will only travel
about 2 inches in air. Alpha
particles are also stopped by
the dead layer of skin. This
means that alpha particles
external to the body are not a
health concern. It also means
that alpha particles are hard
to detect because the
detector must be close to the
source of the material
emitting the alpha particle.
There are many detector
types available for detecting
alpha contamination. Two of
the most commonly used
types are scintillation
detectors and gas
proportional counters. A thin
window Geiger-Mueller
(GM) detector, such as a
pancake probe, will also
detect a small portion of the
alpha radiation emitted.
DOE-HDBK-1113-2008
52
Module 104 Internal Dose Control
Lesson Plan Instructor’s
Notes
ii. Beta-Gamma Monitoring
Proportional counters and
GM detectors are well suited
for detecting beta-gamma
radiation emitted by
radioactive decay products
in the uranium chain. Beta-
gamma radiation travels
further than alpha radiation
and is easier to detect. For
natural, depleted, and lower
levels of enriched uranium,
the ability to measure
uranium by detecting the
beta-gamma radiation from
the uranium and its
radioactive decay products is
about five times more
sensitive than by alpha
monitoring alone.
Many surfaces that could be
contaminated are porous. If
the uranium contamination
is in the pores of the material
or the surface of the material
is wet, the alpha radiation
will be blocked. Under these
circumstances, beta-gamma
monitoring is the only means
of detecting the
contamination.
DOE-HDBK-1113-2008
53
Module 104 Internal Dose Control
Lesson Plan Instructor’s
Notes
iii. Monitoring Techniques
When performing personnel
monitoring it is very
important to keep the
detector (i.e., the probe)
close to the surface being
monitored and to move the
detector slowly. If the
detector is not held close to
the surface being monitored,
the alpha particles may not
reach the detector. If the
detector is moved too
quickly across the surface,
the electronics in the
instrument will not have
time to respond to indicate
the amount of radioactive
contamination present.
The general method for
personnel scanning for alpha
contamination is to scan at
approximately 2 inches/sec
at a distance of
approximately ¼ inch. For
personnel scanning for beta
contamination, it is
recommended to scan at 2
inches/sec at a distance of ½
inch. However, the surface
being surveyed (i.e., soil,
building surfaces,
equipment, personnel), the
scanning speed, and the
instrument response time
will determine the level of
contamination that can be
detected.
Discuss surface
monitoring
techniques based on
the audience makeup.
For example, general
employees or
radiation workers
may only be
concerned with
personnel surveys,
while radiological
control technicians
may be concerned with
equipment and
building surface
surveys as well as
personnel surveys.
Section 28
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54
Module 104 Internal Dose Control
Lesson Plan Instructor’s
Notes
Failing to survey properly
can have the same results as
not surveying at all.
Contamination may go
undetected and may be
tracked out of the
radiological area. Once
outside the radiological area,
the contamination may be
transferred from surface to
surface. This transfer of
contamination could result
in uranium ending up inside
your body, the body of a
coworker, or even the bodies
of your family members and
friends. The potential for
spreading undetected
contamination should always
be kept in mind when
performing self-monitoring.
iv. Interference from Radon
One of the problems encountered
when monitoring for contamination
is interference from radon and its
decay products.
DOE-HDBK-1113-2008
55
Module 104 Internal Dose Control
Lesson Plan Instructor’s
Notes
Radon is a radioactive gas
that occurs naturally in the
environment. It decays by
alpha emission in the first of
a series of very short half-
life radionuclides that decay
by alpha or beta-gamma
emission.
There is a simple,
inexpensive alternative to
determine if the
contamination is due to
radon. The effective half-life
for radon radioactive decay
products is about 30
minutes, compared with the
millions of years it takes for
uranium to decay. The
simple way to determine if
contamination is due to
radon is to wait and see if it
goes away. The sample is
recounted after the radon has
an opportunity to decay to
lower levels. The count rates
are compared, and if the
count rates are significantly
different, radon is the most
likely reason for the higher
initial count rate.
h. Special Radiological Surveys
and Techniques for Release of
Materials with the Potential for
Uranium Contamination
Highlight the
radioactive
contamination limits
used for
release of materials
and equipment at your
facility.
DOE-HDBK-1113-2008
56
Module 104 Internal Dose Control
Lesson Plan Instructor’s
Notes
The alpha contamination
detection problems mentioned in
monitoring personnel for
contamination also apply to
monitoring material. An added
problem is that uranium
contamination may be located in
areas not accessible to survey.
DOE requires that materials
used in Contamination Areas,
High Contamination Areas, and
Airborne Radioactivity Areas
that are being released for
unrestricted use have accessible
surfaces surveyed. Materials
with inaccessible surfaces
having a potential for internal
contamination shall not be
released without evaluating the
material on a case-by-case basis
to ensure internal contamination
does not exist.
DOE values for release of uranium
contaminated materials are higher
than DOE values for release of
materials contaminated with some
other radioactive nuclides found in
the DOE system, such as plutonium.
The difference in these values is due
to the relative health risk from
exposure to uranium contamination
compared with these other nuclides.
Release of materials with the potential
for uranium contamination shall only
be performed by personnel who are
trained and authorized to do so. The
site radiological control organization is
responsible for designating and
training these individuals.
Also discuss the
facility specific
methods for surveying
such equipment. Refer
to DOE Order
5400.5 (as
applicable).
Emphasize that this
training alone does not
qualify individuals to
survey and release
materials.
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Module 104 Internal Dose Control
Lesson Plan Instructor’s
Section 29
Notes
i. Bioassay Monitoring
Bioassay monitoring, or measuring
the amount of radioactivity inside the
body, can also be a way of
determining if there has been a loss
of control of uranium contamination.
For example, if a person who works
in an area with a relatively low
airborne radioactivity concentration
and shows an intake consistent with
a higher airborne radioactivity
concentration, there may have been a
previously undetected loss of
airborne contamination control.
Routine bioassay monitoring will
assist in making these
determinations.
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58
Module 105 Criticality Safety
Lesson Plan Instructor’s Notes
V. MODULE 105 - Criticality Safety
A. Objectives
EO8 Describe the criticality safety
control measures for uranium,
including inventory control
measures.
EO9 Identify criticality monitoring
techniques used with uranium.
B. Explanation of Criticality
Uranium is a fissionable material, which
means that it can undergo nuclear fission.
Nuclear fission is a process in which a
very heavy unstable atom primarily splits
in two, or "fissions”. When an atom
fissions, one large atom primarily
becomes two smaller atoms, between one
and seven neutrons are given off, and a
great deal of energy in radiation and other
forms, such as the kinetic energy of the
fission fragments, is released.
Some unstable atoms, such as 235U,
undergo a small amount of fission
without any outside influences. This
small amount of spontaneous fission does
not present a significant hazard on its
own, but the neutrons from this fission
may be absorbed by other fissionable
atoms. When an atom of fissionable
material absorbs a neutron, the already
unstable atom gains additional energy
and becomes even more unstable. One
way the unstable atom can get rid of its
excess energy is through fission.
Show OT-37
NOTE: The
training material
in this module is
not a substitute
for criticality
safety training.
Show OT-38
Energy given off
during fission is
approximately
200 MeV.
DOE-HDBK-1113-2008
59
Module 105 Criticality Safety
Lesson Plan Instructor’s
Notes
When neutrons from one fission cause fission
in another atom, it is called a chain reaction. If
the chain reaction is self-sustaining, we call this
criticality. Criticality is a self-sustaining
nuclear chain reaction. This is an obvious
radiation hazard because of the amount of
energy given off as gamma radiation and other
forms.
C. Factors Affecting Criticality
Criticality depends on several factors, including
the enrichment of the material, the shape of the
material, and surrounding materials, that may
help or hinder fission. Several factors which
affect the occurrence and magnitude of a
criticality:
1. Quantity of Fissile Material
When dealing with criticality, a common
question is “How much material can I work
with and still be safe?” There is some
amount of the fissile material needed to
have a criticality. This amount is called the
“critical mass.”
2. Geometry
To avoid a criticality event, the fissile
material must not be placed in a shape, or
geometry, that is favorable to criticality. In
general, the lower the surface-to-volume
ratio is, the greater the opportunity for
criticality.
For example: a
solid sphere,
such as a billiard ball,
has a much lower
surface-to-volume ratio
than a thin rectangular
shape, such as a piece
of paper.
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Module 105 Criticality Safety
Lesson Plan Instructor’s
Notes
3. Reflectors
Section 30
Sometimes, neutrons that are emitted from
the fissile material may run into or
otherwise interact with an atom outside the
fissile material and be "bounced back" or
"reflected" into the fissile material.
Materials such as water, graphite (a form of
carbon), and beryllium are good at
reflecting neutrons. If the uranium material
is surrounded by these reflector materials,
criticality is easier to obtain. Accordingly, it
is undesirable to store fissile material where
there is potential for these materials to be
present.
4. Moderators
Another factor that affects criticality is the speed
of the neutrons from fission. Neutrons that are
traveling at about the same speed as the atoms in
surrounding materials are more easily absorbed
by fissile materials. Materials that slow the
neutrons are known as moderators. Examples of
good moderators include water and graphite.
For an example of moderation, consider 235U.
This uranium isotope absorbs slow neutrons
(also called “thermal” neutrons; these neutrons
travel at the same speed as their surroundings)
with a rather high probability for absorption.
However, 238U only absorbs fast neutrons
(those neutrons with high energies that travel
faster than their surroundings). Normally fast
neutrons are quickly moderated to lower
energies, so that 238U will not go critical under
normal conditions. The fast neutrons must be
moderated, or slowed, to allow 235U to go
critical.
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Module 105 Criticality Safety
Lesson Plan Instructor’s
Notes
5. Neutron Absorbers (Poisons)
If neutron absorbers are present (i.e., atoms
and molecules with relatively high neutron
absorption coefficients), these materials
will remove neutrons from being available
to begin or sustain criticality. Boron is an
example of a frequently used neutron
absorber, or “poison”.
6. Concentration or Density of Fissile
Material
As the concentration or density of fissile
material increases, the opportunity for
criticality increases because of an increased
likelihood of neutron interaction with the
fissile material.
7. Enrichment
Enrichment is the separation of isotopes.
With uranium, enrichment is typically
referred to as increasing the percentage (by
weight) of the 235U isotope in material to
greater than that found in natural uranium.
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62
Module 105 Criticality Safety
Lesson Plan Instructor’s
Notes
Obviously, the enrichment of uranium plays
an important role in criticality because the
amount of fissile material available for
criticality is greater. For example, the
higher the enrichment of 235U (i.e., the
concentration of 235U in relation to other
uranium isotopes), the greater the
opportunity for criticality.
8. Volume
The volume of material in which fissile
material is in solution can also play an
important role in preventing criticality. For
a given concentration or density of fissile
material, the amount of fissile material will
increase as the volume increases.
9. Interaction
Neutron interaction in an array of
containers of fissile material depends on
geometric factors, including size, shape,
and separation of the containers, as well as
the size and shape of the array itself.
Materials that may surround or be
intermingled with the containers are also
important. A close-packed array may
become critical if flooded with water,
which will thermalize neutrons. Also, a less
closely-packed array may become critical if
the water is removed, allowing less neutron
absorption to take place.
Section 31
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63
Module 105 Criticality Safety
Lesson Plan Instructor’s
Notes
D. Safety Policies and Controls
Achieving criticality involves bringing together
many factors that promote a sustained nuclear
chain reaction. To avoid criticality, one should
be aware of the conditions that would promote
a criticality for the particular materials they
encounter, and avoid those conditions that
promote criticality.
1. General Criticality Safety Principles
Some things done to promote criticality
safety include:
• analyzing work environments to assess
the risk of criticality and eliminate
likely criticality concerns;
• using carefully planned and approved
procedures;
• providing specific training for those
personnel working in areas where fissile
materials are present; and
• implementing system design features
that are favorable to criticality safety.
These features include:
- using containers with a size and
geometry that will not allow
criticality,
- designing piping systems to prevent
buildup of uranium and prevent
criticality,
- using materials known as poisons to
absorb neutrons and prevent them
from being absorbed by the uranium
atoms,
- controlling material that surrounds
containers or systems containing
uranium, and
- controlling uranium inventories.
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Module 105 Criticality Safety
Lesson Plan Instructor’s
Notes
2. Controlling Uranium Inventories
One method to prevent a criticality is
controlling uranium inventories. Inventory
control involves knowing where the
uranium is at the facility and the level of
enrichment of the uranium. Uranium
enriched in 235U or the presence of 233U
is of concern for criticality; therefore, these
are materials of concern for inventory
control. Criticality is a concern for 238U if
fast neutrons are present.
Loss of control of fissile material presents a
threat to criticality safety at the facility and,
in a worst case scenario, to national
security. It is no secret that groups
throughout the world are striving to become
nuclear powers. Even the appearance of a
loss of inventory control must be avoided to
keep the public trust and assure continued
operations of DOE programs. For these
reasons, inventories of fissile material are
closely monitored.
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Module 105 Criticality Safety
Lesson Plan Instructor’s
Notes
3. Facility-Specific Criticality Safety Controls
Provide facility-specific information.
E. Criticality Monitoring Techniques
Provide facility-specific information.
Insert a presentation
of facility specific
criticality safety
controls and
procedures.
Discuss criticality
monitoring techniques
implemented at your
facility. As
appropriate, discuss the
requirements and use
of criticality alarm
systems and nuclear
accident dosimeters,
including personal
accident dosimeters.
Reference and discuss
10 CFR 835.1304, as
appropriate.
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66
Module 106 Emergency Response
Lesson Plan Instructor’s
Notes
VI. MODULE 106 - Emergency Response for
Uranium Incidents
A. Objective
EO10 Understand the facility-specific
emergency response procedures
involving uranium incidents.
B. Facility-Specific Emergency Response
Information
As discussed previously, uranium and chemical
compounds containing uranium may represent
radiological, fire, chemical, and criticality
concerns. Prompt, appropriate emergency
response in unusual situations involving
uranium is vital to worker and public safety.
Show OT-39
Section 32
Insert a discussion on
facility specific
emergency policies
and procedures.
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67
Module 107 Course Summary
Lesson Plan Instructor’s
Notes
VII. MODULE 107 - Course Summary
This training course provides a basic
understanding of the characteristics of uranium
and the general precautions and controls
needed for working in a uranium facility. After
this course, participants should be aware of the
following basic concepts:
• physical properties of uranium
• radioactive properties of uranium
• chemical properties of uranium
• toxicological properties and biological
effects of uranium on the body
• sources of uranium
• uranium operations and processes
• external dose measurements
• external dose reduction and control
techniques
• internal dose measurements
• internal dose reduction and control
techniques
• factors affecting criticality
• criticality safety policies and controls
• emergency response for uranium incidents
at your facility
The modules included in this training provide a
base of general knowledge to better understand
facility-specific procedures and training.
Show OT-40
Show OT-41
(Part 3 of 4)
Radiological Safety Training for Uranium Facilities
Student’s Guide
Coordinated and Conducted
for the
Office of Health, Safety and Security
U.S. Department of Energy
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DOE-HDBK-1113-2008
iii
TABLE OF CONTENTS
I. MODULE 101 – Properties of Uranium…………………………....1
II. MODULE 102 – The Nuclear Fuel Cycle…………………………..11
III. MODULE 103 – External Dose Control…………………………... 22
IV. MODULE 104 – Internal Dose Control…………………………… 28
V. MODULE 105 – Criticality Safety………………………………… 41
V1. MODULE 106 – Emergency Response for Uranium Incidents….. 47
VII. MODULE 107 – Course Summary................................................... 48
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DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 101 – Properties of Uranium
1
I. MODULE 101 - Properties of Uranium
A. Objective
EO1 Describe the physical, radioactive, toxicological, and chemical properties and
biological effects of uranium.
B. Physical Properties
Uranium can be encountered as a solid, liquid, or gas, depending on its chemical form and
surrounding conditions. Each of these physical forms has particular hazards. Sometimes,
changing the form of uranium can lead to radioactive decay products accumulating or
becoming concentrated in a particular location, such as on the surface of a liquid. The result
can be an apparent increase in the radioactivity.
1. Solid
The solid forms of uranium are generally the most stable configurations. The shiny,
silvery metal form is rarely seen except in a workshop when it is being machined. After
machining, the surface oxidizes, typically within hours, to a hard, black surface.
After some time, depending on temperature, humidity, and alloy, the surface may
change color and begin to flake. Orange or yellow colored surfaces are usually more
flaky and soluble. In these forms, contamination can be more easily spread, inhaled,
and absorbed into the body.
DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 101 – Properties of Uranium
2
2. Liquid
Uranium melts at 1133°°C, so molten uranium is unusual, except in a foundry. It has
often been observed that the radioactivity appears to increase when uranium is melted.
Section 33
This is because radioactive decay products, such as radium and thorium, float to the
surface. The density of radium is 5 g/cm3, compared with 19 g/cm3 for uranium;
therefore, radium floats in molten uranium.
Uranium in contact or solution with water is common. The primary hazards associated
with a uranium solution are criticality (for enriched uranium) and spills. Water
decreases the quantity of enriched uranium required for criticality. This topic will be
discussed in Module 105 - Criticality Safety.
3. Airborne Powder
A spill of any radioactive solution is a concern. As the solution evaporates, it leaves
behind a radioactive residue, or powder, that can easily become airborne. Airborne
uranium may be inhaled and absorbed into the bloodstream through the lungs.
4. Gas
Another form of uranium that is an inhalation hazard is the volatile UF6, becoming a
gas above 56°C. However, most uranium daughters are not volatile, and so can
accumulate in storage cylinders. When the volatile UF6 is extracted, the nonvolatile
daughters remain in the cylinder, resulting in the buildup of residual radioactivity.
However, in the case of uranium-232 (232U), uranium-235 (235U), and uranium-238
(238U), each of these uranium isotopes has a radon daughter. Radon is a gas at all but
very low temperatures; therefore, if the
DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 101 – Properties of Uranium
3
radon escapes, the subsequent daughters can accumulate in closed or poorly ventilated
areas.
In some situations, pressure from volatilized UF6 gas can build up in small volumes
such as a sealed container or a pipe run between two valves. Line breaks and leaks will
cause a release of the UF6. UF6 reacts in moist air to produce hydrogen fluoride (HF)
gas. This gas is extremely corrosive and can severely damage the eyes, skin and lungs.
Also, as the escaping UF6 gas cools, it becomes particulate, which may have a
suffocating effect on any nearby workers.
Another reason for pressure buildup is alpha particles emitted in radioactive decay
eventually becoming inert helium gas. The amount is only significant for high specific
activity forms of uranium. For example, a sample of 99% uranium-233 (233U) with 1%
232U creates approximately its own volume of helium gas every year. Sealed
containers must include adequate gas space or be fitted with pressure release valves.
Once the pressure is relieved, the low-pressure helium gas is harmless.
Hydrogen gas is generated from uranium in water, and this may also produce a pressure
buildup situation. Because the hydrogen buildup may also be a fire hazard, it is
discussed later in this module in the Chemical Properties section.
C. Radioactive Properties
Uranium in its pure metal form is a silvery, gray metal and is the heaviest naturally
occurring element. There are 18 separate isotopes of uranium. Isotopes are elements that
have the same number of protons, but different numbers of neutrons. For example, 235U
has 92 protons with 143 neutrons and 238U has 92 protons with 146 neutrons.
Uranium is radioactive. Partially because of its size, the nucleus of a uranium atom is
unstable. It reduces its size either by alpha particle emission or by nuclear fission, in which
DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 101 – Properties of Uranium
4
the uranium nucleus splits, primarily, into two smaller fission products. Both processes
Section 34
release energy, which can be helpful or harmful depending on how they are controlled.
All isotopes of uranium are fissionable, which means they can be fissioned by fast
neutrons. Two isotopes, 233U and 235U, are fissile, which means they can also be
fissioned by slow (thermal) neutrons. A fissile material can be involved in a criticality
accident, resulting in the release of a lethal amount of radiation. Criticality is discussed in
more detail in Module 105 – Criticality Safety.
The primary isotopes of uranium are all long-lived alpha emitters. However, several other
radionuclides can be radiologically significant at uranium facilities, depending on the
history of the uranium materials and the processing. These other radionuclides include the
following beta emitters: 234Th, 234mPa, 231Th, and 99Tc. The degree of enrichment also
affects the controls that are required for external radiation exposure because of the increase
in the amount of gamma-emitting 235U that is present. The uranium daughter products
may also include some low-energy gamma and x-ray radiation. For example, the daughter
products of 232U represent a potential gamma-emission hazard.
Although there are several isotopes of uranium, only three exist naturally, and all three are
radioactive. See the table below for half-lives and natural percent abundance for important
uranium isotopes in the nuclear fuel cycle.
DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 101 – Properties of Uranium
5
As uranium goes through radioactive decay, it produces other radioactive elements
known as radioactive decay products (also called progeny or daughter products). These
radioactive decay products are also radioactive and have to be taken into account for
radiological protection purposes.
Both alpha and beta particles are emitted as part of decay series. For example, 238U
decays by alpha emission to 234Th; 234Th decays by beta emission to 234mPa; and so
on, until stable 206Pb is finally reached.
ISOTOPE HALF-
LIFE
NAT
ABUND
IMPORTANCE
232U
70 y
0%
An unwanted byproduct of
233U production in a breeder
reactor. Due to its much
shorter half-life, 232U
contributes most of the
radioactivity in samples of
233U.
233U
1.6 x 10 5 y
0%
Manufactured by irradiating
232Th with neutrons. It is a
criticality hazard because it is
fissile.
234U
2.5 x 105 y
0.0055%
A decay product of 238U. It is
concentrated with 235U during
enrichment. Highly enriched
uranium contains about 1%
234U. Most of the radioactivity
of enriched uranium is from
the 234U.
235U
7.1 x 108 y
~0.7%
Fissile with slow neutrons;
therefore, it is of primary
interest for reactors and
weapons. If not handled
safely, an accumulation of
235U could become critical.
236U
2.3 x 107 y
0%
Some 235U is converted to
236U in reactors. It is also
present in reprocessed reactor
fuel.
238U
4.5 x 109 y
~99.3%
The most abundant uranium
isotope. It is fissionable with
fast neutrons; however, it is
not fissile (i.e., with
thermal neutrons) so it is not a
criticality hazard.
DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 101 – Properties of Uranium
6
1. Decay Series
Uranium has two naturally occurring decay series: the “actinium” series, which has
235U as its parent; and the “uranium” series, which has 238U as its parent. Many of our
everyday encounters with radioactivity come from these decay series; examples are
Section 35
radon gas and radium. There are also man-made isotopes of uranium - 232U and 233U.
The decay products from these radionuclides must be considered in the implementation
of a radiological control program at a facility where these uranium nuclides are present.
2. Criticality
Uranium is a fissionable material, which means it can undergo nuclear fission. Nuclear
fission is a process in which a very heavy, unstable atom splits in two, or “fissions”.
When an atom fissions, one large atom primarily becomes two smaller atoms, between
one and seven neutrons are given off (which may cause fission in nearby atoms), and a
great deal of energy is given off as radiation and in other forms, such as kinetic energy
of the fission fragments. The radiation created could result in the creation of
radiological areas, such as High or Very High Radiation Areas. Nuclear criticality
associated with uranium will be discussed in greater detail later in the lesson.
D. Chemical Properties
Uranium is chemically reactive. It burns in air like magnesium; it is toxic like lead; and it
forms a large variety of chemical compounds. All the isotopes of uranium have the same
chemical reactivity, and all can be made into the many different physical and chemical
forms discussed in this section.
DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 101 – Properties of Uranium
7
1. Fire
Uranium is a metal that will sustain a burning reaction (similar to a magnesium flare).
The potential for a fire is greatest when the uranium is in a finely divided form, such as
milling chips or filings. In this form, uranium can undergo spontaneous ignition.
Uranium metal is often machined to provide a useful end product, and milling chips and
filings are unavoidable byproducts.
Precautions must be taken to prevent chips and filings from igniting. One precaution is
submersing the chips and filings in water or a mineral oil. Storage in water produces
hydrogen gas due to a chemical reaction. To prevent the hydrogen gas from reaching an
explosive concentration, and to prevent a pressure buildup, containers must be vented.
Incidents have occurred where container lids have been blown off by unexpected gas
pressure buildup. The use of water or oil baths for collecting and storing chips needs to
be evaluated for criticality safety concerns before put into practice.
Once uranium starts to burn, it is extremely difficult to extinguish. None of the typical
extinguishing methods, such as water, carbon dioxide, or halon, is effective in fighting
uranium fires. In fact, halon may be explosive and produce toxic fumes if used directly
on the fire. Normally, small fires may be put out by using MET-L-X powder, which is a
mixture of sodium chloride (table salt) and potassium carbonate (baking powder).
When spread over the burning metal in significant quantities, MET-L-X starves the fire
of oxygen.
Larger fires, such as with storage drums, are more difficult to extinguish. Submersion
in water will eventually work once the metal cools down. However, continuous water
addition is necessary to make up for losses due to boiling and evaporation.
DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 101 – Properties of Uranium
8
2. Toxicological/Biological Effects
The principal entry of uranium into the human system is due to either inhalation or
ingestion. Inhalation occurs either from release of volatile uranium compound or from
Section 36
suspension of volatile uranium-laden aerosols. Ingestion can occur when the uranium is
introduced into water for consumption or the food chain by plant uptake. When
uranium is either ingested or inhaled, it is removed from the body with a biological
half-life varying between 6 and 5000 days, depending on which organ has become
contaminated.
Uranium tends to concentrate in the kidneys and the bones. Additionally, if inhaled, the
lungs are exposed. Internal exposure to uranium is controlled by limiting the ingestion
and inhalation of this element. These methods, along with measurement techniques, are
discussed in Module 104.
Most heavy metals, such as uranium, are toxic to humans depending on the amount
introduced into the body. For short-term (acute) exposures, the toxicological effects are
the primary concern, and acute exposures to significant amounts of uranium may result
in kidney damage. However, as the enrichment of the uranium in the 235U isotope
increases, so too do the effects of radiation exposure in relation to toxicological effects.
Past industrial experience has proven that if there is a long-term exposure of small
amounts of uranium (chronic exposure), the radiological effects are the primary
biological concern. In fact, for chronic exposures, a development of tolerance against
the toxicological effects may occur. The principal radiological hazard associated with
uranium is due to the relatively high energy alpha particles its radionuclides and
daughters emit. A chronic exposure to these radionuclides results in an increased risk of
cancer, typically in the bones, kidney, and lungs, since these are the organs where
uranium is deposited.
DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 101 – Properties of Uranium
9
3. Chemical Reactivity
The chemistry of uranium is complicated. For example, uranium forms several oxides:
UO, UO2, UO3, and UO4. In general, a sample of uranium oxide will include a mixture
of several of these. For example, U3O8 is sometimes written as (UO2)•2(UO3).
The lower oxidation states, UO2 and U3O8, tend to be dark brown or black. The higher
oxidation states, UO3 and UO4, are generally orange or yellow, especially in solution or
if water or crystallization are present (e.g., (UO4)• 2H2O). Furthermore, the higher
oxides usually flake off more easily and are usually more soluble in water. Being flaky,
they are more easily inhaled. Being more soluble, they are more easily absorbed into
the body.
Uranyl compounds, such as uranyl nitrate, or UO2(NO3)2, are chemical forms of
uranium that are often found in solution with water. They are generally yellow in color
and are used in criticality experiments.
Uranium reacts readily with air and water. For example, when uranium is machined,
small chips catch fire from the heat of the machining process. Shavings placed in water
react to produce hydrogen gas. The surfaces quickly oxidize to a hard black coating that
is at first protective; however, under adverse conditions, it corrodes and flakes.
Uranium also reacts with hydrogen or tritium gas to form uranium hydride (UH3).
Uranium “beds” are commonly used to store tritium. Uranium hexafluoride (UF6)
reacts in moist air to produce hydrogen fluoride (HF) gas, which is extremely corrosive
and can severely damage the lungs if breathed. Inhalation of HF has resulted in
fatalities following UF6 releases.
Section 37
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Radiological Safety Training for Uranium Facilities
Module 101 – Properties of Uranium
10
The chemical form of uranium is dependent on its intended use and its stage of
production. For example, UF6 is used during the enrichment process, and UO2 is used
as nuclear fuel. When handling uranium compounds, the possibility of chemical
reactions must not be overlooked.
DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 102 – The Nuclear Fuel Cycle
11
II. MODULE 102 - The Nuclear Fuel Cycle
A. Objectives
EO2 Identify the sources and uses of uranium.
EO3 Identify the various processes involved in the nuclear fuel cycle.
B. Importance of Uranium
Uranium is a naturally occurring element used primarily for producing energy with nuclear
reactors and developing nuclear weapons. It is also used for armor plating (depleted
uranium), radiation shielding, and counterweights.
Historically, uranium was used for hundreds of years to color glass and as a glaze for tile
and pottery. Bright orange “Fiesta-ware” dinner plates were prized for their color without
any awareness of their radioactivity. These plates are no longer produced, but are now
collectors’ items among those in the nuclear industry and others. Typically, the dose rate is
about 5 mrem/hr (0.05 mSv/hr) on contact with these plates.
The original discovery of radioactivity involved uranium. In 1896, Henri Becquerel
discovered that uranium would cause photographic film to become fogged because of
radioactive emissions. Some of these emissions were even more penetrating that the “X
rays” that Wilhelm Roentgen had discovered a year earlier. Later investigators, such as
Marie Curie, isolated other radioactive elements from uranium ores. These elements are
produced from the radioactive decay of uranium. The radioactive emission of an alpha
particle causes uranium to change into thorium. Thorium goes on to decay to other
elements, and so on, until a stable element such as lead is reached.
Radium and radon are the two most well-known radioactive decay products of uranium.
Radium was once used for luminous instrument dials and other products. Radon is a heavy
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Radiological Safety Training for Uranium Facilities
Module 102 – The Nuclear Fuel Cycle
12
radioactive gas that can accumulate in buildings and mines. Typically, these radioactive
decay products are more hazardous than the uranium itself.
The importance of uranium increased dramatically with the discovery of nuclear fission in
1938, the production of plutonium in 1940, and the construction of the first reactor in 1942
under the direction of Enrico Fermi. These accomplishments led to the Manhattan Project,
in which uranium was enriched at Oak Ridge or converted into plutonium at Hanford.
These products were used to assemble the first atomic bombs at Los Alamos in 1945.
After the end of World War II in 1945, the importance of uranium remained high.
Production of uranium and plutonium for “atomic” or “nuclear” weapons continued
throughout the Cold War. In addition, nuclear reactors were built for the propulsion of
naval submarines and ships, and for the commercial production of electricity. Now, most of
the world’s production of uranium is used for nuclear reactors.
C. Sources of Uranium
Uranium is found in the earth's crust and is mined as ore. The average concentration is 2
parts per million (ppm) in the crust and less than 2 parts per billion (ppb) in the oceans.
Section 38
During the 1960's and 1970's, a program titled the Natural Uranium Resource Exploration
was funded by the government to identify the locations of desirable uranium ore throughout
the United States. It was determined that the most desirable locations of uranium are in the
Colorado Plateau, the Wyoming Basin, and the flanks of the Black Hills in South Dakota.
In those locations, the uranium concentration is much higher than 2 ppm. Uranium is also
found on the African Continent. The ore is removed from either shallow open pits (less
than 300-foot, or 100m, depths) or underground mines (greater than 300-foot depths). The
typical uranium content of the ore is 0.15 - 0.3 percent and is in the form of U3O8, which is
called "yellowcake.” Uranium is also found in secondary minerals in the following forms:
complex oxides, silicates, phosphates, and vanadates.
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Radiological Safety Training for Uranium Facilities
Module 102 – The Nuclear Fuel Cycle
13
D. Uranium Operations and Processes
Uranium processing is dependent upon the desired product, but it generally involves the
following cycle:
• mining and milling,
• conversion,
• enrichment,
• fabrication,
• use,
• waste disposal/storage, and
• decontamination and decommissioning.
1. Uranium Mining and Milling
After removal from the mine, the uranium ore is milled to extract the yellowcake. This
involves the following process:
a. The ore is crushed, ground, and mixed with water to prepare for chemical
processing.
b. The crushed ore and water mixture is mixed with chemicals to separate the
yellowcake from the ore. This separation process is called "leaching.” The
resultant products include a slurry of yellowcake ready for additional processing
and a mixture of low-grade crushed rock and sand called "mill tailings.”
Only about 3 percent of the actual material removed from the mine ends up as
yellowcake, which means that millions of tons of mill tailings are leftover.
Yellowcake contains 70-90% by weight of uranium oxides. The leftover mill
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Radiological Safety Training for Uranium Facilities
Module 102 – The Nuclear Fuel Cycle
14
tailings are a concern because they still contain some of the uranium ore.
Additional hazards exist due to the chemicals added.
It is estimated that the uranium milling in the United States left approximately
138 million tons of mill tailings covering about 3,000 acres of land.
c. The yellowcake slurry is then purified by either ion exchange or solvent
extraction.
d. Following purification, the yellowcake slurry is dried, forming a concentrated
yellowcake compound that contains 75 - 98 percent uranium. The yellow color is
caused by the addition of leaching chemicals and their eventual removal during
the drying step. The final color can range from yellow to orange to black
depending on the chemicals used and the drying temperature.
The final color is a good indicator of solubility, and thus of biological effects if
uranium in this form is taken into the body. Less soluble uranium compounds tend
both to remain in the body longer and to be darker in color. More soluble uranium
compounds are removed from the body more quickly by normal body functions,
and tend to be lighter in color.
2. Conversion
At this stage in the nuclear fuel cycle, the yellowcake is converted into uranium
hexafluoride (UF6) for enrichment. This is accomplished by:
Section 39
a. Conversion of yellowcake to pure uranium trioxide (UO3), called "orange oxide"
or "orange salt,” by solvent extraction and follow-up drying.
b. Conversion of UO3 to uranium dioxide UO2.
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Radiological Safety Training for Uranium Facilities
Module 102 – The Nuclear Fuel Cycle
15
c. Conversion of UO2 to uranium tetrafluoride (UF4) by hydrofluorination (addition
of hydrogen fluoride gas). This product is called "green salt.”
d. Reacting the UF4 with fluorine gas (F2) to form uranium hexafluoride (UF6),
which is a volatile form ready for enrichment. The UF6 is a solid at room
temperature but readily becomes a gas when heated above 56°C.
3. Enrichment
The enrichment process is necessary to increase the percentage of the 235U isotope in
the uranium to make it suitable for reactor fuel. Natural uranium contains 0.7% 235U.
Typically, enriched uranium contains 2-4% 235U. Other uses may require much higher
concentrations up to, or even greater than, 90% 235U. Depleted uranium, which is left
over after the enrichment process, has an abundance of about 0.2% 235U.
The methods used to enrich uranium include:
a. Gaseous Diffusion
Gaseous diffusion is based on principles of gas laws. The UF6 gas is forced
through converters by large compressors. The converters contain many tubes
made of a special barrier material that is porous. The 235UF6 molecules are
lighter than the 238UF6 molecules and bounce against the porous barrier more
frequently. The 235UF6 has a greater chance of passing through the barrier,
resulting in a slightly richer 235U content. It may take as many as a thousand
passes to obtain the desired degree of enrichment.
DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 102 – The Nuclear Fuel Cycle
16
b. Laser Processes
The Atomic Vaporization Laser Isotope Separation (AVLIS) involves
vaporization, selective ionization of one isotope, and subsequent electrical
separation. Currently, no DOE production plants exist which use this technology.
c. Nozzle Separation
The nozzle separation process is based on the different speeds of 235U and 238U
compounds when they are injected through a nozzle into a small chamber.
d. Centrifugal Separation
Centrifugal separation is based on heavier compounds migrating to the outside
when spun at a high rate of speed.
The uranium left over from the enrichment process is mostly 238U, with a reduced
amount of 235U (usually 0.2% by weight). This byproduct is called "depleted
uranium" and has additional uses such as radiation shielding, armor plating, and
ammunition.
During World War II, uranium work was secret and code names were used for the
different forms of uranium. Natural uranium was named “Tuballoy,” a name that grew
out of a cover story that the Allies were investigating alloys for high-quality tubing.
Highly enriched uranium was then named “Oralloy” for “Oak Ridge Alloy,” sometimes
abbreviated to “Oy.” Depleted uranium was once called depletalloy, but more
commonly was called “D-38” since it consists mostly of 238U. These historical names
are sometimes still used within the DOE complex.
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Radiological Safety Training for Uranium Facilities
Module 102 – The Nuclear Fuel Cycle
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4. Fabrication
The last step in the nuclear fuel cycle is changing the enriched uranium into an
appropriate form for fabrication. The fabrication process differs depending on the
Section 40
application. For fabrication of fuel elements, the process generally includes the
following steps.
a. Uranium dioxide (UO2) is produced by reacting UF6 with water and then with a
hydroxide salt.
b. The resulting precipitate is dried to form "orange oxide," which is reduced with
hydrogen to form UO2 powder.
c. The UO2 powder is compacted into cylindrical pellets that are loaded into
thinwalled tubes made of either stainless steel or an alloy of zirconium called
"zircalloy.”
d. Helium, an inert gas, is pumped into the tubes, which are then capped. A cluster
of these tubes separated by spacers forms a reactor fuel assembly.
Fabrication of other materials, such as weapons parts, may also include materials made
with uranium.
5. Uses
The primary goal of the uranium fuel cycle process is to yield enriched uranium. This
product can be used for:
• power reactors,
• research reactors,
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Radiological Safety Training for Uranium Facilities
Module 102 – The Nuclear Fuel Cycle
18
• nuclear weapons, and
• naval propulsion reactors.
There are also a number of uses for uranium metal depleted in the 235U isotope, such as:
• radiation shielding,
• armor-piercing bullets,
• catalysts for chemical reactions,
• armor plating, and
• counter weights.
Depleted uranium typically is cast into ingots or billets, and then shipped to production
facilities for appropriate reshaping.
6. Reprocessing
Reprocessing of spent nuclear fuel is no longer performed in this country. This information
is provided for the purpose of describing how the process worked at applicable facilities.
Uranium was used in plutonium production reactors. Uranium fuel and targets were coated
with aluminum or zirconium metal and placed in the reactor. As they were irradiated with
neutrons, a small fraction of the uranium was converted to plutonium.
The irradiated fuel was then removed from the reactor, but the plutonium and uranium had
to be separated from the fission products created during irradiation. PUREX, a chemical
process for plutonium and uranium extraction from irradiated nuclear fuel, was developed
to accomplish this separation. This reprocessing was accomplished as follows:
a. Excess metal was mechanically removed to expose the fuel material.
DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 102 – The Nuclear Fuel Cycle
19
b. The fuel was leached with acid to remove it from the cladding.
c. The uranium and other elements were separated by solvent extraction (chemical
separation).
d. The uranium was converted back to UF6 for enrichment.
7. Waste Disposal and Storage
Due to the remaining radioactive properties, the nuclear fuel cycle byproducts must be
controlled and/or disposed. These byproducts can be divided into two categories—low
level waste (LLW) and high-level waste (HLW).
a. LLW
The RCS glossary defines low-level waste (LLW) as “Waste that contains radioactivity
and is not classified as high-level waste, transuranic waste, spent nuclear fuel, or
byproduct material as defined in Section 11e(2) of the Atomic Energy Act, as amended.
Test specimens of fissionable material irradiated only for research and development and
not for production of power or plutonium may be classified as low-level waste provided
the concentration of transuranic activity is less than 100 nCi/g.” LLW could be in the
form of liquids, solids, or gasses. Liquid waste is usually processed to remove
Section 41
radioactive material and then recycled or disposed.
Solids may be volume-reduced by incineration or compaction. Soluble forms in liquid
may be solidified to isolate radioactive contents.
Gases are either changed to a solid form and disposed of as a solid or compressed and
stored as gases. These gases may be released after sufficient time has elapsed for decay
of the radioactive component of the gas.
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Module 102 – The Nuclear Fuel Cycle
20
b. HLW
High-level waste (HLW) is defined in DOE M 435.1-1 as “The highly radioactive
waste material resulting from the reprocessing of spent nuclear fuel, including liquid
waste produced directly in reprocessing and any solid material derived from such liquid
waste that contains fission products in sufficient concentrations; and other highly
radioactive material that is determined, consistent with existing law, to require
permanent isolation”.
HLW comes primarily from the reprocessing of spent fuel. It is typically in liquid form,
and it is collected and stored in tanks. The liquid waste is then solidified (stabilized) for
disposal. All HLW is ultimately to be disposed of by deep burial.
8. Decontamination and Decommissioning of Uranium Facilities
Uranium and its byproducts from the nuclear fuel cycle may present health risks due to
radioactivity or chemical properties. Past and present DOE uranium facilities and their
surrounding areas may contain contamination from uranium or its byproducts. DOE
recognizes that they have a responsibility to restore these potentially contaminated facilities
and surrounding areas to a non-hazardous condition. To accomplish this, several
“remediation” programs are in place and others are developing.
One cleanup program is:
Uranium Mill Tailings Remedial Action (UMTRA) Program This program is
intended to cleanup uranium mill sites and associated “vicinity properties.” It
covers 24 mill sites and more than 4,800 properties throughout the Nation. The
goals of the program are to reduce radon release from mill tailings to acceptable
levels by burial, and to restore affected land and facilities/structures to
unrestricted use.
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Radiological Safety Training for Uranium Facilities
Module 102 – The Nuclear Fuel Cycle
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Each cleanup project presents different types and levels of hazards to workers.
Additionally, general safety hazards become a significant factor due to the types of
processes and equipment used to remove the uranium-contaminated materials. Usually
these projects require some level of structural decontamination and soil remediation.
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Radiological Safety Training for Uranium Facilities
Module 103 – External Dose Control
23
III. MODULE 103 - External Dose Control
A. Objectives
EO4 Identify the radiological concerns of external exposure to uranium.
EO5 Describe the measures taken to control external exposure to uranium.
B. Alpha External Dose
Because of the relatively short range of alpha particles in dense matter, alpha radiation
poses little external dose hazard. The most energetic alphas produced by naturally
occurring radionuclides will barely penetrate the dead layer of skin on the human body.
Little living tissue will be affected when the alpha source is external to the skin.
C. Beta External Dose
Beta doses to the skin, extremities, and the lens of the eye can be limiting in facilities
Section 42
which process unshielded depleted, natural, or low-enrichment uranium. Processes which
separate and sometimes concentrate beta-emitting uranium daughters are not uncommon in
DOE uranium facilities. Control of exposure is complicated by the fact that considerable
contact work takes place in facilities which process uranium metal.
Several uranium radioactive decay products are beta emitters. Normally, most of these
betas are shielded by the surrounding material or material worn as personal protective
clothing (such as Tyvek). A primary radionuclide of concern is protactinium-234 in its
metastable state (234mPa), a daughter of 238U which produces a very high energy beta
particle that can travel up to 20 feet in air. Significant beta radiation is also emitted from
234Th (also a daughter of 238U) and 231Th (a daughter of 235U). Typically, these are
shielded with ½-inch of plastic.
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Radiological Safety Training for Uranium Facilities
Module 103 – External Dose Control
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D. Gamma and X-Ray External Dose
Although beta dose from unshielded uranium presents the most common radiation problem,
storage of large quantities of uranium can create low-level gamma radiation fields (less
than 5 mrem/hr). Such fields can create external exposure problems, particularly when
significant numbers of people are working in adjacent areas.
In addition to gamma emissions from the uranium decay chains (238U and 235U), recycled
fuel materials introduced back into the enrichment process will result in higher gamma
radiation fields because of 228Th, a gamma-emitting daughter of 232U with a relatively
short half-life (1.9 yr).
Larger sources of gamma radiation may exist from specific uranium processes, including
unflushed UF6 cylinders. Gamma radiation emitted from residual materials can result in
gamma radiation fields of several hundred millirem per hour. This problem can be
controlled by flushing empty cylinders to remove residual material.
E. Neutron External Dose
As uranium is processed in the fuel cycle, it is often chemically bonded to fluorine to create
compounds such as UF4 and UF6. When uranium atoms in these compounds decay, they
emit alpha particles that are sometimes captured by the neighboring fluorine atoms. The
resulting atom is unstable and may emit a neutron to gain back its stability. The neutrons
emitted can result in neutron radiation fields between 4 and 8 mrem/h.
The probability of spontaneous fission is small; therefore exposure is not expected.
However, if fission does occur, such as in a reactor or from experiments, the neutron
radiation is typically contained. Neutron radiation that is not contained is usually the result
of a criticality accident which generates potentially fatal doses of gamma radiation.
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Radiological Safety Training for Uranium Facilities
Module 103 – External Dose Control
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F. External Dose Measurements
The radiation from uranium that affects external dose includes beta, gamma, X-ray and
neutron irradiation. An effective external exposure control program for uranium requires a
variety of radiation detection instruments that are responsive to these forms of radiation.
Radiation surveys should be performed on a routine basis and during events, tasks,
procedures, or situations that are likely to cause radiological conditions to change. There
are two general categories of measurement used for external exposure associated with
Section 43
uranium, portable survey instruments and personnel dosimeters.
Gamma radiation from uranium is normally not the controlling problem. For example, the
contact beta radiation field from depleted uranium is approximately 240 millirem per hour,
while the contact gamma radiation field is less than 10 millirem per hour. However,
significant gamma fields can exist in areas where large quantities of uranium are stored,
such as a storage area for uranium contaminated soil. The accuracy and precision of survey
instruments used for measurement of beta radiation fields depend on many factors which
must be addressed, such as energy response and geometry factors. Accordingly, these
surveys are typically conducted by Radiological Control personnel. Neutron fields from
enriched uranium fluoride compounds can also add to this area of concern. Depending on
the magnitude of neutron fields generated, periodic neutron dose rate measurements are
made, typically by Radiological Control personnel.
Personnel dosimeters produce the data which becomes the formal or “legal” record of
personnel exposure, thermoluminescent dosimeters, used in most DOE uranium facilities,
provides the most accurate and precise means of measuring doses received by workers.
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Radiological Safety Training for Uranium Facilities
Module 103 – External Dose Control
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G. External Dose Reduction and Control Techniques
1. External Dose Control Program
The primary purpose of an external dose control program is to control dose to the
individual radiation worker to below regulatory limits and administrative levels and
ensuring that doses are As Low As Reasonably Achievable (ALARA). In all cases at
DOE facilities, dose received by an individual shall not exceed the limits specified in
Title 10 of the Code of Federal Regulations, Part 835 (10 CFR 835).
The elements of an external dose control program include:
• detecting and characterizing the beta, gamma, X-ray, and neutron radiation fields;
• measuring and/or quantifying these radiation fields;
• measuring personnel exposure; and
• determining external exposure control practices.
2. General External Dose Control Practices
These general principles should be applied to control external dose from uranium:
• minimizing time in the radiation field,
• maximizing the distance from the radiation source,
• using shielding to reduce the radiation field, and
• reducing the amount of radioactive material being used.
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Radiological Safety Training for Uranium Facilities
Module 103 – External Dose Control
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3. Specific Beta Dose Control Principles
Surfaces emitting beta radiation are easily shielded with plastic or other light element
materials. Use of denser materials for shielding of high-energy beta radiation may produce
bremsstrahlung X-rays and should be avoided.
Beta dose to the lens of the eye can be reduced by using safety glasses. Safety glasses are
commonly worn for industrial safety concerns in areas where uranium is handled. Heavy
rubber or leather gloves are effective in reducing the skin dose to the hand, but their use
must be balanced against other safety concerns, such as hazards from machinery or loss of
manual dexterity.
Industrial safety concerns in a uranium facility may be more hazardous to personnel than
exposure to radiation. Professional radiological control personnel evaluate the process in
the workplace to ensure workers receive the maximum overall protection from all hazards,
Section 44
not only radiological hazards. This is generally done in cooperation with industrial safety
and industrial hygiene personnel.
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Module 104 – Internal Dose Control
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IV. MODULE 104 - Internal Dose Control
A. Objectives
EO6 Identify the modes of entry into the body for uranium.
EO7 Describe the measures taken to control intakes of uranium, including special
radiological surveys and techniques, instruments, and release of materials.
B. Internal Exposure to Uranium
As discussed in Module 101, the primary biological hazard is the potential for uranium to
be taken into the body. This exposure may result in heavy metal poisoning, including
kidney damage (for acute exposures), or an increased cancer risk (for chronic exposures).
Uranium may enter the body through inhalation, ingestion, absorption through the skin, or
injection into the bloodstream, such as from contamination of an open wound. The most
common route of entry is inhalation, but much of the material inhaled does not stay in the
lungs. The lungs and related air passages constantly work to remove all the dust we
breathe, including dust that contains uranium. The dust expelled from the lungs but not
exhaled is swallowed, so some of the inhaled uranium ends up in the digestive tract.
The amount of uranium retained in the lungs depends a great deal on the size of the particle
breathed. The smallest particles tend to be exhaled or absorbed into the bloodstream, while
the largest particles are usually removed before they reach the lung. Uranium retained in
the lungs may remain there or be absorbed into the bloodstream. Part of the uranium
passing through the digestive tract may also be absorbed in the bloodstream. Uranium in
the bloodstream is either transferred to various organs or excreted via the urine.
The enrichment of the uranium in its 235U isotope also plays a role in determining whether
the radiological or the chemical effects are the limiting factor. For acute exposures,
chemical toxicity is limiting up to 39% enrichment. Beyond 39%, the effective dose
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Module 104 – Internal Dose Control
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becomes limiting. For chronic exposures, chemical toxicity is more limiting up to 1.3%
enrichment. Beyond 1.3%, the effective dose becomes limiting.
C. Internal Dose Measurements
Once in the body, the presence of uranium can be detected using indirect radioactivity
measurements, direct radioactivity measurements, or both.
At one time, it was not possible to detect internal uptakes of uranium or certain other
radioactive materials at levels below the point at which the annual limit for exposure (5
rem) was received. Any measurable intake of uranium was therefore considered to be
unacceptable. Improved analytical and calculational techniques have now made it possible
to measure uranium concentrations resulting in exposures of about 10 mrem with a
reasonable degree of accuracy. The estimation of low-level internal exposure to uranium is
no longer a matter for inordinate concern.
1. Indirect or In Vitro Measurement
Bodily processes will, to some degree, eliminate uranium taken into the body. How
effective the body is at eliminating the uranium, and how long the process takes,
depends upon individual metabolism and the chemical form of the uranium. For
example, uranium hexafluoride contains uranium that is chemically bound to fluorine
Section 45
and is more easily eliminated than uranium metal or uranium dioxide.
Indirect measurements are made by sampling material eliminated by the body for the
presence of uranium. It is possible to analyze both feces and urine for the presence of
uranium, but due to the ease of collection and handling, the most common method used
is urinalysis.
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Module 104 – Internal Dose Control
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2. Direct or In Vivo Measurement
Direct measurements are performed using whole body counters or lung counters. These
instruments detect gamma and X-rays emitted from radioactive material inside the
body. For example, the 235U and uranium-234 (234U) isotopes of uranium present in
enriched uranium emit X-rays that can be detected. Alpha and beta radiation emitted by
material inside the body is shielded by body tissue and cannot be detected.
Direct measurement is useful for detecting uranium that is not easily eliminated by the
body. This method may also be used to estimate an internal dose. Because of the very
low energy and intensity of gamma radiation emitted from depleted uranium, direct
measurements are not effective in detecting depleted uranium in the body.
D. Internal Dose Reduction and Control Techniques
The hierarchy for minimization of internal dose is given in the RCS, Article 316.
Engineering controls should be the primary method of minimizing airborne contamination
and internal exposure to workers, where practicable. Administrative controls, including
access controls and specific work practices, should be used as the secondary method to
minimize internal exposure. If the potential for airborne radioactivity still exists after
engineering and administrative controls have been applied, respiratory protection should be
considered. Other specific controls, such as stay times, worker safety, comfort, and
efficiency, are also discussed in Article 316.
The internal exposure resulting from uranium entering the body can be properly controlled
by appropriate facility and equipment design, contamination control procedures, and
protective clothing. A bioassay monitoring program to determine the amount of uranium
taken into the body is also an integral part of internal exposure control.
DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 104 – Internal Dose Control
31
1. Contamination Control Philosophy
The control of contamination in the work place is a significant part of the overall
radiological protection program at uranium facilities. Proper contamination control
will:
• limit internal exposure by minimizing the ingestion, inhalation, absorption, and
injection of uranium;
• limit external dose from uranium and its radioactive decay products; and
• prevent the spread of radioactive materials into uncontrolled areas.
2. Contamination Control Methods
Because uranium is relatively less hazardous than some other radioactive materials,
such as plutonium, some people can develop an overly relaxed attitude to uranium; in
effect saying, “It’s only uranium.” Care must be taken to avoid this attitude, and to
control uranium contamination in compliance with regulations, policies, and
procedures. Uranium contamination can be effectively controlled by:
• an evaluation of activities likely to generate or spread contamination,
• use of containment devices to confine contamination as close to the source as
possible,
Section 46
• control and monitoring of airborne contamination as it is generated,
• minimizing the size and number of contaminated areas by using effective
decontamination methods,
• control of movement of equipment and personnel into and out of contaminated
areas,
• use of personal protective equipment, and
DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 104 – Internal Dose Control
32
• effective contamination monitoring.
a. Evaluation of Work Activities
Work activities that involve the destruction of surfaces, such as grinding,
machining, filing, or cutting, can easily create and spread contamination.
Operations such as welding, burning, heating, etc. can alter the physical and/or
chemical state of uranium compounds that are on the surfaces of equipment.
Work activities such as these should be evaluated and steps taken to minimize the
spread of surface contamination, personnel contamination, and airborne
contamination. If possible, alternative methods for completing the task should be
considered.
b. Use of Containment Devices
Whenever activities that may generate loose contamination are planned,
consideration should be given to using containment devices to control the
contamination to an area as close to the source as possible. Such devices include
glovebags, gloveboxes, and tents.
c. Control and Monitoring of Airborne Contamination
Uranium contamination is relatively dense (heavy) so it is not easily stirred up
into the air and quickly settles out when disturbed. Therefore, it is unlikely that
significant airborne contamination will result from normal activities (such as
walking) in areas contaminated with uranium. It is possible for airborne
contamination to result from activity that vigorously disturbs the surface, such as
sweeping, grinding, welding, and direct, high-volume air flow. Failure to control
DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 104 – Internal Dose Control
33
airborne contamination could result in inhalation of the contamination and spread
of contamination to other areas.
Control of airborne contamination should include:
• an evaluation of activities that are likely to cause contamination to become
airborne,
• engineered controls such as installed or portable ventilation with High
Efficiency Particulate Air filtration systems (HEPA systems) to remove
contamination from the air at a point as close to the source as possible,
• physical barriers (e.g., pipes, gloveboxes, etc) and pressure differential zones,
• use of alternate work activities or equipment that is less likely to generate
airborne contamination,
• air sampling to track airborne contamination levels, and
• using respiratory protection to minimize internal dose of the worker.
Monitoring for airborne contamination can take several forms:
• long-term, low-volume air samples that provide an average of the airborne
concentration over a given time;
• short-duration, high-volume air samples taken in the breathing zone of a
worker during work activities likely to generate airborne contamination;
• low-volume (about 2 liters per minute) breathing zone samples from personal
air monitors; and [Note: A liter is approximately the same volume as a quart.
Use the concept of a 2-liter soda bottle to describe the quantity.]
• continuous air monitors that track airborne contamination levels over time and
can be set to alarm if a specified level is reached.
Section 47
It is important that air samples represent the actual airborne contamination levels
breathed by the worker so that accurate intakes may be estimated. Air monitoring
DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 104 – Internal Dose Control
34
is also used to detect loss of containment. It is important to ensure sample
volumes and methods allow detection of airborne contamination levels below the
level of concern.
d. Minimization of Contamination Areas
Loose contamination on work surfaces can result in contamination of shoes,
clothing, and skin and thereby result in the potential for tracking of contamination
into uncontrolled areas.
This potential can be reduced by:
• minimizing the size and number of contamination areas,
• using disposable work surfaces (such as covering a benchtop with plastic)
when performing work that is likely to generate contamination, and
• promptly decontaminating work surfaces (good housekeeping).
e. Control of Movement of Equipment and Personnel
The risk of spreading contamination to an uncontrolled area is directly related to
the amount of equipment moved and the number of personnel exiting the
contamination area.
The risk of spreading contamination can be reduced by minimizing the movement
of equipment and tools into and out of contaminated areas by using dedicated
tools and equipment, and by performing as many work activities as practical
outside contaminated areas.
Besides reducing the spread of contamination, these practices save money by:
DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 104 – Internal Dose Control
35
• reducing the number of personnel requiring training,
• reducing the cost of decontaminating and surveying tools and equipment,
• reducing the cost of protective clothing used, and
• minimizing the production of radioactive waste.
f. Protective Equipment
i. Protective Clothing
Use of protective clothing (PC) in contaminated areas will minimize the
potential for skin contamination and ingestion of uranium. The choice of PC
garments will be based on the type of job and the form of contamination
hazards. Protective clothing should not be worn in uncontrolled areas such as
lunch rooms.
Protective clothing commonly worn in the nuclear industry can also provide
beta dose reduction. Gloves are especially helpful in reducing beta dose to the
hands while handling uranium.
Contamination build-up inside work gloves has lead to unacceptable hand
doses in some facilities. Reuse of leather or cloth gloves should be reviewed
carefully because of such buildup. Workers should wear thin, protective
gloves inside the heavy gloves.
ii. Respiratory Protection
Respiratory protection equipment is used to provide protection from airborne
hazards that may be encountered in the work environment. Respirator use is
based on the level of airborne contamination known to exist or expected to be
produced from the work to be performed.
DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 104 – Internal Dose Control
36
Respiratory protection may also be required for hazards present in an area
other than radioactive airborne contamination. Health and safety groups
should coordinate the use of respiratory protection requirements based on all
hazards present. If a worker finds a conflict in respiratory protection
requirements, he or she should not enter the work area until the conflict is
Section 48
resolved and the appropriate respiratory protection equipment is available.
g. Special Radiological Surveys and Techniques for Contamination Monitoring
i. Alpha Monitoring
As workers at a uranium facility, you will likely perform self-monitoring for
the presence of radioactive contamination.
If you recall from the general characteristics of uranium, it primarily decays
by emitting an alpha particle. Many uranium decay products also decay by
emitting alpha particles.
Alpha particles are highly charged and will only travel about 2 inches in air.
Alpha particles are also stopped by the dead layer of skin. This means that
alpha particles external to the body are not a health concern. It also means that
alpha particles are hard to detect because the detector must be close to the
source of the material emitting the alpha particle.
There are many detector types available for detecting alpha contamination.
Two of the most commonly used types are scintillation detectors and gas
proportional counters. A thin window Geiger-Mueller (GM) detector, such as
a pancake probe, will also detect a small portion of the alpha radiation
emitted.
DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 104 – Internal Dose Control
37
ii. Beta-Gamma Monitoring
Proportional counters and GM detectors are well suited for detecting beta-
gamma radiation emitted by radioactive decay products in the uranium chain.
Beta-gamma radiation travels further than alpha radiation and is easier to
detect. For natural, depleted, and lower levels of enriched uranium, the ability
to measure uranium by detecting the beta-gamma radiation from the uranium
and its radioactive decay products is about five times more sensitive than by
alpha monitoring alone.
Many surfaces that could be contaminated are porous. If the uranium
contamination is in the pores of the material or the surface of the material is
wet, the alpha radiation will be blocked. Under these circumstances, beta-
gamma monitoring is the only means of detecting the contamination.
iii. Monitoring Techniques
When performing personnel monitoring it is very important to keep the
detector (i.e., the probe) close to the surface being monitored and to move the
detector slowly. If the detector is not held close to the surface being
monitored, the alpha particles may not reach the detector. If the detector is
moved too quickly across the surface, the electronics in the instrument will
not have time to respond to indicate the amount of radioactive contamination
present.
The general method for personnel scanning for alpha contamination is to scan
at approximately 2 inches/sec at a distance of approximately ¼ inch. For
personnel scanning for beta contamination, it is recommended to scan at 2
inches/ sec at a distance of ½ inch. However, the surface being surveyed (i.e.,
DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 104 – Internal Dose Control
38
soil, building surfaces, equipment, personnel), the scanning speed, and the
instrument response time will determine the level of contamination that can be
detected.
Failing to survey properly can have the same results as not surveying at all.
Contamination may go undetected and may be tracked out of the radiological
area. Once outside the radiological area, the contamination may be transferred
from surface to surface. This transfer of contamination could result in uranium
Section 49
ending up inside your body, the body of a co-worker, or even the bodies of
your family members and friends. The potential for spreading undetected
contamination should always be kept in mind when performing self-
monitoring.
iv. Interference from Radon
One of the problems encountered when monitoring for contamination is
interference from radon and its decay products.
Radon is a radioactive gas that occurs naturally in the environment. It decays
by alpha emission in the first of a series of very short half-life radionuclides
that decay by alpha or beta-gamma emission.
There is a simple, inexpensive alternative to determine if the contamination is
due to radon. The effective half-life for radon radioactive decay products is
about 30 minutes, compared with the millions of years it takes for uranium to
decay. The simple way to determine if contamination is due to radon is to wait
and see if it goes away. The sample is recounted after the radon has an
opportunity to decay to lower levels. The count rates are compared, and if the
count rates are significantly different, radon is the most likely reason for the
higher initial count rate.
DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 104 – Internal Dose Control
39
h. Special Radiological Surveys and Techniques for Release of Materials with the
Potential for Uranium Contamination.
The alpha contamination detection problems mentioned in monitoring personnel
for contamination also apply to monitoring material. An added problem is that
uranium contamination may be located in areas not accessible to survey.
DOE requires that materials used in Contamination Areas, High Contamination
Areas, and Airborne Radioactivity Areas that are being released for unrestricted
use have accessible surfaces surveyed. Materials with inaccessible surfaces
having a potential for internal contamination shall not be released without
evaluating the material on a case-by-case basis to ensure internal contamination
does not exist.
DOE values for release of uranium- contaminated materials are higher than DOE
values for release of materials contaminated with some other radioactive nuclides
found in the DOE system, such as plutonium. The difference in these values is
due to the relative health risk from exposure to uranium contamination compared
with these other nuclides.
Release of materials with the potential for uranium contamination shall only be
performed by personnel who are trained and authorized to do so. The site
radiological control organization is responsible for designating and training these
individuals.
i. Bioassay Monitoring
Bioassay monitoring, or measuring the amount of radioactivity inside the
body, can also be a way of determining if there has been a loss of control of
DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 104 – Internal Dose Control
40
uranium contamination. For example, if a person who works in an area with a
relatively low airborne radioactivity concentration and shows an intake
consistent with a higher airborne radioactivity concentration, there may have
been a previously undetected loss of airborne contamination control. Routine
bioassay monitoring will assist in making these determinations.
DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 105 - Criticality Safety
41
V. MODULE 105 - Criticality Safety
A. Objectives
Section 50
EO8 Describe the criticality safety control measures for uranium, including inventory
control measures.
EO9 Identify criticality monitoring techniques used with uranium.
B. Explanation of Criticality
Uranium is a fissionable material, which means that it can undergo nuclear fission. Nuclear
fission is a process in which a very heavy unstable atom primarily splits in two, or
"fissions”. When an atom fissions, one large atom primarily becomes two smaller atoms,
between one and seven neutrons are given off, and a great deal of energy in radiation and
other forms, such as the kinetic energy of the fission fragments, is released.
Some unstable atoms, such as 235U, undergo a small amount of fission without any outside
influences. This small amount of spontaneous fission does not present a significant hazard
on its own, but the neutrons from this fission may be absorbed by other fissionable atoms.
When an atom of fissionable material absorbs a neutron, the already unstable atom gains
additional energy and becomes even more unstable. One way the unstable atom can get rid
of its excess energy is through fission.
When neutrons from one fission cause fission in another atom, it is called a chain reaction.
If the chain reaction is self-sustaining, we call this criticality. Criticality is a self-sustaining
nuclear chain reaction. This is an obvious radiation hazard because of the amount of energy
given off as gamma radiation and other forms.
DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 105 - Criticality Safety
42
C. Factors Affecting Criticality
Criticality depends on several factors, including the enrichment of the material, the shape
of the material, and surrounding materials, that may help or hinder fission. Several factors
which affect the occurrence and magnitude of a criticality:
1. Quantity of Fissile Material
When dealing with criticality, a common question is “How much material can I work
with and still be safe?” There is some amount of the fissile material needed to have a
criticality. This amount is called the “critical mass.”
2. Geometry
To avoid a criticality event, the fissile material must not be placed in a shape, or
geometry, that is favorable to criticality. In general, the lower the surface-to-volume
ratio is, the greater the opportunity for criticality.
3. Reflectors
Sometimes, neutrons that are emitted from the fissile material may run into or
otherwise interact with an atom outside the fissile material and be "bounced back" or
"reflected" into the fissile material. Materials such as water, graphite (a form of
carbon), and beryllium are good at reflecting neutrons. If the uranium material is
surrounded by these reflector materials, criticality is easier to obtain. Accordingly, it is
undesirable to store fissile material where there is potential for these materials to be
present.
DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 105 - Criticality Safety
43
4. Moderators
Another factor that affects criticality is the speed of the neutrons from fission. Neutrons
that are traveling at about the same speed as the atoms in surrounding materials are
more easily absorbed by fissile materials. Materials that slow the neutrons are known as
moderators. Examples of good moderators include water and graphite.
For an example of moderation, consider 235U. This uranium isotope absorbs slow
Section 51
neutrons (also called “thermal” neutrons; these neutrons travel at the same speed as
their surroundings) with a rather high probability for absorption. However, 235U only
absorbs fast neutrons (those neutrons with high energies that travel faster than their
surroundings). Normally fast neutrons are quickly moderated to lower energies, so that
238U will not go critical under normal conditions. The fast neutrons must be
moderated, or slowed, to allow 235U to go critical.
5. Neutron Absorbers (Poisons)
If neutron absorbers are present (i.e., atoms and molecules with relatively high neutron
absorption coefficients), these materials will remove neutrons from being available to
begin or sustain criticality. Boron is an example of a frequently used neutron absorber,
or “poison”.
6. Concentration or Density of Fissile Material
As the concentration or density of fissile material increases, the opportunity for
criticality increases because of an increased likelihood of neutron interaction with the
fissile material.
DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 105 - Criticality Safety
44
7. Enrichment
Enrichment is the separation of isotopes. With uranium, enrichment is typically referred
to as increasing the percentage (by weight) of the 235U isotope in material to greater
than that found in natural uranium.
Obviously, the enrichment of uranium plays an important role in criticality because the
amount of fissile material available for criticality is greater. For example, the higher the
enrichment of 235U (i.e., the concentration of 235U in relation to other uranium
isotopes), the greater the opportunity for criticality.
8. Volume
The volume of material in which fissile material is in solution can also play an
important role in preventing criticality. For a given concentration or density of fissile
material, the amount of fissile material will increase as the volume increases.
9. Interaction
Neutron interaction in an array of containers of fissile material is dependent upon
geometric factors, including: size, shape, and separation of the containers, as well as the
size and shape of the array. Materials that may surround or be intermingled with the
containers are also important. A close-packed array may become critical if flooded with
water which will thermalize neutrons. Also, a less closely-packed array may become
critical if the water is removed, allowing less neutron absorption to take place.
DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 105 - Criticality Safety
45
D. Safety Policies and Controls
Achieving criticality involves bringing together many factors that promote a sustained
nuclear chain reaction. To avoid criticality, one should be aware of the conditions that
would promote a criticality for the particular materials they encounter, and avoid those
conditions that promote criticality.
1. General Criticality Safety Principles
Some things done to promote criticality safety include:
• analyzing work environments to assess the risk of criticality and eliminate likely
criticality concerns;
• using carefully planned and approved procedures;
• providing specific training for those personnel working in areas where fissile
materials are present; and
• implementing system design features that are favorable to criticality safety. These
features include:
- using containers with a size and geometry that will not allow criticality,
Section 52
- designing piping systems to prevent buildup of uranium and prevent criticality,
- using materials known as poisons to absorb neutrons and prevent them from
being absorbed by the uranium atoms,
- controlling material that surrounds containers or systems containing uranium,
and
- controlling uranium inventories.
DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 105 - Criticality Safety
46
2. Controlling Uranium Inventories
One method to prevent a criticality is controlling uranium inventories. Inventory
control involves knowing where the uranium is at the facility and the level of
enrichment of the uranium. Uranium enriched in 235U or the presence of 233U is of
concern for criticality; therefore, these are materials of concern for inventory control.
Criticality is a concern for 238U if fast neutrons are present.
Loss of control of fissile material presents a threat to criticality safety at the facility
and, in a worst case scenario, to national security. It is no secret that groups throughout
the world are striving to become nuclear powers. Even the appearance of a loss of
inventory control must be avoided to keep the public trust and assure continued
operations of DOE programs. For these reasons, inventories of fissile material are
closely monitored.
3. Facility-Specific Criticality Safety Controls
Provide facility-specific information.
E. Criticality Monitoring Techniques
Provide facility-specific information.
DOE-HDBK-1113-98
Radiological Safety Training for Uranium Facilities
Module 106 – Emergency Response for Uranium Incidents
47
VI. MODULE 106 - Emergency Response for Uranium Incidents
A. Objective
EO10 Understand the facility-specific emergency response procedures involving
uranium incidents.
B. Facility-Specific Emergency Response Information
As discussed previously, uranium and chemical compounds containing uranium may represent
radiological, fire, chemical, and criticality concerns. Prompt, appropriate emergency response in
unusual situations involving uranium is vital to worker and public safety.
DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 107– Course Summary
48
VII. MODULE 107 - Course Summary
This training course provides a basic understanding of the characteristics of uranium and
the general precautions and controls needed for working in a uranium facility. After this
course, participants should be aware of the following basic concepts:
• physical properties of uranium
• radioactive properties of uranium
• chemical properties of uranium
• toxicological properties and biological effects of uranium on the body
• sources of uranium
• uranium operations and processes
• external dose measurements
• external dose reduction and control techniques
• internal dose measurements
• internal dose reduction and control techniques
• factors affecting criticality
• criticality safety policies and controls
• emergency response for uranium incidents at your facility
The modules included in this training provide a base of general knowledge to better
understand facility-specific procedures and training.
DOE-HDBK-1113-2008
Radiological Safety Training for Uranium Facilities
Module 107– Course Summary
49
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Radiological Safety Training for Uranium Facilities OT-1
Radiological Safety Training
for
Uranium Facilities
Coordinated and Conducted for
Office of Health, Safety and Security
Section 53
U.S. Department of Energy
Radiological Safety Training for Uranium Facilities OT-2
Course Content
uProperties of Uranium
uThe Nuclear Fuel Cycle
uExternal Dose Control
uInternal Dose Control
uCriticality Safety
uEmergency Response for Uranium Incidents
uCourse Summary
Radiological Safety Training for Uranium Facilities OT-3
Module 101
Properties of Uranium
Radiological Safety Training for Uranium Facilities OT-4
Physical Properties of Uranium
u Solid
u Liquid
uAirborne particles
uGas
Shiny, silvery metal
Molten metal, solutions
Radioactive residue
UF6
Radiological Safety Training for Uranium Facilities OT-5
Uranium
uAtomic number Z = 92
uRadioactive
uAlpha emission
uFission
uFission products
Radiological Safety Training for Uranium Facilities OT-6
Radioactive Decay Products
uMost are radioactive
uGenerally contribute most of the
radioactivity
uCan become concentrated during certain
processes
Radiological Safety Training for Uranium Facilities OT-7
Radioactive Properties
uRadioactive decay products
uCriticality
Radiological Safety Training for Uranium Facilities OT-8
Flammability
uUranium burns in air
u Large amounts of water will extinguish a fire, but
– Uranium plus water produces hydrogen gas
– Special fire extinguishers smother the fire
– Use of water may cause a criticality control concern
Radiological Safety Training for Uranium Facilities OT-9
Toxicity
uHeavy metals are toxic
uUranium is comparable to lead in toxicity
Radiological Safety Training for Uranium Facilities OT-10
Chemical Reactivity
uUranium is reactive
uMany possible chemical hazards
uUranium metal oxidizes in hours
uUranium chips ignite immediately
uUranium in water produces flammable hydrogen
gas
uUranium should be in oil for long-term storage
u Concentration of decay products can cause
increased exposure rates
Radiological Safety Training for Uranium Facilities OT-11
Colors
uLower oxides (e.g., UO2) are usually
– dark colored
– less soluble
uHigher oxides (e.g., UO3, UO4, UO4·2H2O)
are usually
– orange or yellow colored
– more soluble
Radiological Safety Training for Uranium Facilities OT-12
Module 102
The Nuclear Fuel Cycle
Radiological Safety Training for Uranium Facilities OT-13
Importance of Uranium
uHistorical: orange-colored glaze
uDiscovery of radioactivity with uranium,
Becquerel, 1896
uDiscovery of radioactive decay products, Marie
Curie
uDecay products: radium, radon
uDiscovery of nuclear fission, 1938
u Plutonium production from uranium, 1940
u First nuclear reactor, Fermi, 1942
uAtomic (nuclear) bomb, 1945
Radiological Safety Training for Uranium Facilities OT-14
Naturally Occurring Uranium
u0.2% (2 ppt) in uranium ore
u2 ppm in the earth’s crust
u2 ppb in the oceans
Radiological Safety Training for Uranium Facilities OT-15
Sources of Uranium
uUnited States
– Colorado Plateau
– Wyoming Basin
– Black Hills
uAfrica
Radiological Safety Training for Uranium Facilities OT-16
Nuclear Fuel Cycle
uMining and milling
uConversion to other chemical forms
uEnrichment
uFabrication of fuel rods
uUse in reactors
uDecontamination & decommissioning
uWaste disposal/storage
Radiological Safety Training for Uranium Facilities OT-17
Mining and Milling
uUranium ore
uYellowcake
uUranium mill tailings
Radiological Safety Training for Uranium Facilities OT-18
Conversion
uUranium dioxide UO2
uOrange oxide UO3
uUranium fluoride gas UF6
Radiological Safety Training for Uranium Facilities OT-19
Section 54
Enrichment
uNatural uranium 0.7% 235U
uEnriched uranium > 1% 235U
uHighly enriched uranium > 20% 235U
uDepleted uranium 0.2% 235U
Radiological Safety Training for Uranium Facilities OT-20
Uses for Enriched Uranium
uCommercial power reactors
uNaval propulsion power reactors
uResearch reactors
uNuclear weapons
Radiological Safety Training for Uranium Facilities OT-21
Uses of Depleted Uranium
uShielding
uArmor-piercing bullets
uCatalysts
uArmor plating
uCounter weights
Radiological Safety Training for Uranium Facilities OT-22
Fuel Reprocessing
uExpose fuel material
uRemove fuel from cladding
uChemically separate the uranium
uConvert uranium to UF6 for enrichment
Radiological Safety Training for Uranium Facilities OT-23
Waste Disposal and Storage
uLow-Level Waste (LLW)
uHigh-Level Waste (HLW)
Radiological Safety Training for Uranium Facilities OT-24
D&D of Uranium Facilities
uUMTRA
uDOE facilities
uCommercial facilities
Radiological Safety Training for Uranium Facilities OT-25
Module 103
External Dose Control
Radiological Safety Training for Uranium Facilities OT-26
Beta Radiation
uFrom the decay products
uMostly external
uSkin dose
u30 rad/hr (234mPa - B)
Radiological Safety Training for Uranium Facilities OT-27
Gamma Radiation
uUsually less than 5 mrem/hr (0.05 mSv/hr)
uDecay products can become concentrated
uFission products (only for fuel reprocessing)
uCriticality (potentially fatal doses of gamma
radiation)
Radiological Safety Training for Uranium Facilities OT-28
Neutron Radiation
u Enriched UF6
u Spontaneous fission
u Fission from reactors
or experiments
u Criticality accident
4-8 mrem/hr
small
contained
potentially fatal
Radiological Safety Training for Uranium Facilities OT-29
ALARA - External Dose
To keep external exposure ALARA:
uMinimize time
uMaximize distance
uUse shielding
uReduce the amount of radioactive material
being used
Radiological Safety Training for Uranium Facilities OT-30
Beta Radiation Protection
uEasily detected
uEasily shielded
uUse low-Z elements to minimize
bremsstrahlung
– heavy rubber or plastic over objects
– safety glasses for the lens of the eye
– heavy work gloves for the hands
Radiological Safety Training for Uranium Facilities OT-31
Module 104
Internal Dose Control
Radiological Safety Training for Uranium Facilities OT-32
Internal Exposure
Modes of entry into the body:
uInhalation
uIngestion
uAbsorption
uInjection
Radiological Safety Training for Uranium Facilities OT-33
Contamination Control - 1
Proper contamination control will
uLimit internal dose by minimizing ingestion
or inhalation
uLimit external dose by reducing the source
uPrevent the spread of radioactive materials
into uncontrolled areas
Radiological Safety Training for Uranium Facilities OT-34
Contamination Control - 2
Contamination can be controlled by
u Evaluation of work activities
u Use of containment devices
u Control and monitoring of airborne contamination
u Minimization of contamination areas
u Control of movement of equipment and personnel
u Protective equipment
u Special radiological surveys and techniques for
contamination monitoring
u Special radiological surveys and techniques for release of
materials with the potential for uranium contamination
Radiological Safety Training for Uranium Facilities OT-35
Airborne Contamination
uCutting, grinding, welding, etc.
uVentilation and filters
uAir sampling and monitoring
uRespirators should be considered (as a last
resort)
Section 55
Radiological Safety Training for Uranium Facilities OT-36
Protective Clothing
uCoveralls
uBooties or dedicated work shoes
uGloves, unless there are overriding reasons
Radiological Safety Training for Uranium Facilities OT-37
Module 105
Criticality Safety
Radiological Safety Training for Uranium Facilities OT-38
Criticality
uFission breaks atom into fission products
uFissionable: with fast neutrons
uFissile: with slow or fast neutrons
uSelf-sustaining chain reaction
Radiological Safety Training for Uranium Facilities OT-39
Module 106
Emergency Response for
Uranium Incidents
(Facility-Specific)
Radiological Safety Training for Uranium Facilities OT-40
Module 107
Course Summary
Radiological Safety Training for Uranium Facilities OT-41
Course Summary
u Physical properties
u Radioactive properties
u Chemical properties
u Toxicological properties
and biological effects
u Sources
uOperations and processes
u External dose
measurements
u External dose reduction
and control
u Internal dose
measurements
u Internal dose reduction
and control
u Factors affecting
criticality
u Criticality safety
u Emergency response
DOE-HDBK-1113-2008
CONCLUDING MATERIAL
DOE Ops Offices Preparing Activity:
NA AL
HS CH DOE HS-11
EM ID
SC NV Project Number:
NE OR
LM RL DOE 6910-0070
SR
Area/Site Offices National Laboratories
Amarillo BNL
Ashtabula LANL
Carlsbad LLNL