DOE-HDBK-1105-2002 Chg Notice 1, Radiological Training for Tritium Facilities
Functional areas: Radiological Training, Tritium Facilities
This Handbook describes a recommended implementation process for conducting the radiation safety training required by Title 10 Code of Federal Regulations Occupational Radiation Protection, (10 CFR 835) Subpart J and as outlined in the DOE standard DOE-STD-1098-99, Radiological Control (RCS). The Handbook is to assist those individuals, both within the Department of Energy (DOE) and Managing and Operating (M&O) contractors, identified as having responsibility for implementing the training required by 10 CFR 835 and recommended by the RCS.
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DOE-HDBK-1105-2002, Radiological Training for Tritium Facilities on Jan 31, 2007
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Section 1
NOT MEASUREMENT
SENSITIVE
DOE-HDBK-1105-2002
February 2002
Change Notice No. 1
with Reaffirmation
January 2007
DOE HANDBOOK
RADIOLOGICAL TRAINING FOR TRITIUM
FACILITIES
U.S. Department of Energy AREA TRNG
Washington, D.C. 20585
DISTRIBUTION STATEMENT A. Approved for public release; distribution is unlimited.
TS
This document has been reproduced from the best available copy.
Available to DOE and DOE contractors from ES&H Technical Information
Services, U.S. Department of Energy, (800) 473-4375, fax: (301) 903-9823.
Available to the public from the U.S. Department of Commerce, Technology
Administration, National Technical Information Service, Springfield, VA 22161;
(703) 605-6000.
Change Notice 1. Radiological Safety Training for Tritium Facilities
DOE–HDBK–1105–2002
Page/Section Change
Cover sheets parts
1, 2, 3, and 4
Change: Office of Environment, Safety & Health
To: Office of Health, Safety and Security
Part 1, page 5, and
last para
Change: The DOE Office of Worker Protection Policy and
Programs (EH-52) is responsible for...
To: The DOE Office of Health, Safety and Security’s
Office of Worker Safety and Health Policy (HS-11) is
responsible for ...
Part 1, page 5,
bottom
Add: Copies of this Handbook may be obtained from the DOE
Radiation Safety Training Home Page Internet site
(http://www.hss.energy.gov/radiation/RST/rstmater.htm).
Part 1, page 11,
Evaluating
Training Program
Effectiveness, 1st
sentence
Last sentence
Change “Verification of the effectiveness of Radiological
Control Training for Supervisors should...”
To “Verification of the effectiveness of Radiological
Training for Tritium Facilities should...”
Part 1, page 11,
Evaluating
Training Program
Effectiveness, 1st
sentence
3rd sentence
Change “DOE/EH” to “DOE/HS”
Part 1, page 13, 3rd
and 4th sentences
Change “Word 2000” to “Word 2003” and Power Point
2000” to “Power Point 2003”
(PART 1 OF 4)
Radiological Training for Tritium Facilities
Program Management Guide
Coordinated and Conducted
for
Office of Health, Safety and Security
U.S. Department of Energy
DOE-HDBK-1105-2002
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Table of Contents
Page
Introduction..........................................................................................................................................................5
Purpose and Scope.......................................................................................................................................5
Management Guide Content ........................................................................................................................5
Core Training Goal......................................................................................................................................5
Organizational Relationships and Reporting Structure................................................................................5
Instructional Materials Development ...................................................................................................................6
Section 2
Target Audience ..........................................................................................................................................6
Prerequisites ................................................................................................................................................6
Training Material.........................................................................................................................................6
Exemptions ..................................................................................................................................................7
Training Program Standards and Policies ............................................................................................................7
Qualification of Instructors..........................................................................................................................7
Technical Qualifications .............................................................................................................................7
Instructional Capability and Qualifications .................................................................................................8
Selection of Instructors................................................................................................................................9
Test Administration ...................................................................................................................................10
Program Records and Administration........................................................................................................10
Training Program Development/Change Requests ...................................................................................11
Audits (internal and external) ...................................................................................................................11
Evaluating Training Program Effectiveness .............................................................................................11
Course-Specific Information ..............................................................................................................................11
Purpose ......................................................................................................................................................11
Course Goal ...............................................................................................................................................11
Target Audience ........................................................................................................................................11
Course Description ....................................................................................................................................12
Prerequisites ..............................................................................................................................................12
Length........................................................................................................................................................12
Test Bank...................................................................................................................................................12
Retraining ..................................................................................................................................................12
Instructor Qualifications ............................................................................................................................12
Materials Checklist ....................................................................................................................................13
Bibliography..............................................................................................................................................13
Section 3
DOE-HDBK-1105-2002
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Introduction
Purpose and Scope
This beginning section discusses in general recommendations for the implementation of radiation safety
training. Course specific guidance begins on page 11
This Handbook describes a recommended implementation process for conducting the radiation safety
training required by Title 10 Code of Federal Regulations Occupational Radiation Protection, (10 CFR 835)
Subpart J and as outlined in the DOE standard DOE-STD-1098-99, Radiological Control (RCS). The
Handbook is to assist those individuals, both within the Department of Energy (DOE) and Managing and
Operating (M&O) contractors, identified as having responsibility for implementing the training required by
10 CFR 835 and recommended by the RCS.
Management Guide Content
The management guide is divided into the following sections:
- Introduction
- Instructional Materials Development
- Training Program Standards and Policies
- Course Specific Information
Training Program Goal
The goal of the training program is to provide a baseline knowledge for those individuals completing the
training. Use of the DOE developed material provides personnel with the information necessary to perform
their assigned duties at a predetermined level of expertise. Implementing the training program helps ensure
consistent and appropriate training of personnel.
Organizational Relationships and Reporting Structure
The DOE Office of Health, Safety and Security’s Office of Worker Safety and Health Policy (HS-11) is
responsible for approving and maintaining the DOE developed training materials associated with the
training program.
The establishment of a comprehensive and effective contractor site radiological control 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.
Copies of this Handbook may be obtained from the DOE Radiation Safety Training Home Page Internet
site (http://www.hss.energy.gov/radiation/RST/rstmater.htm).
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
6
Instructional Materials Development
Target Audience
Course instructional materials were developed for specific 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
core training know this and have established what is referred to as "prerequisites" for each course.
Section 4
Certain competencies or experiences of participants were also identified as necessary prior to participants
attending a course. Without these competencies or experiences, the 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.
Training Material
Training materials for the program consist of lesson plans, study guides and handouts. The training content
should be presented in its entirety. Overhead transparencies are provided in support of the training content
and may be substituted or supplemented with updated or site-specific information.
Supplemental material and training aids may be developed to address site-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 site-specific information and training aids.
Each site is responsible for establishing a method to differentiate the site-specific information from the
DOE developed lesson plan material. When additional or site-specific information is added to the text of
the core lesson plan material, a method should be used to differentiate site information from DOE
developed material.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
7
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
Qualification of Instructors
The technical instructor plays a key role in the safe and efficient 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 techniques to
ensure that workers receive the highest quality training possible. This is possible only 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:
Section 5
- the trainees being instructed, and
- the subject being presented
The following is an example of a target audience, subject to be taught, and instructor technical
qualifications.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
8
TARGET
AUDIENCE
SUBJECT BEING
TAUGHT
INSTRUCTOR
TECHNICAL QUALIFICATIONS
Tritium Facilities
Personnel, Visitors,
DOE Employees
Tritium 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,
AND
Completion of all qualification requirements for the
senior-level radiation protection technician position at the
trainees' facility or a similar facility.
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 qualification, certification by the American Board of Health Physics and/or registration by the
National Registry of Radiation Protection Technologists, 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.
Instructional Capability and Qualifications
Qualifications of instructional capability should be based on demonstrated performance of the instructional
tasks for the 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 as 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.
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.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
9
Through training or experience, technical instructors should be able to*:
- Review instructional materials and modify them to fully meet the needs of the training group.
- Arrange the training facility (classroom/laboratory or other instructional setting) to meet the
Section 6
requirements for the training sessions.
- Effectively communicate, verbally and non-verbally, lessons to enhance learning.
- Invoke student interaction through questions and student activities.
- Use appropriate instructional materials and visual aids to meet the lesson objectives.
- Administer performance and written tests.
- Ensure that evaluation materials and class rosters are maintained and forwarded to the appropriate
administrative personnel.
- Evaluate training program effectiveness.
- Modify training materials based on evaluation of training program.
*Stein, F. Instructor Competencies: The Standards. International Board of Standards for Training,
Performance and Instruction; 1992.
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:
- interview possible instructors to ensure they understand the importance of the roles and responsibilities
of technical instructors and are willing to accept and fulfill their responsibilities in a professional manner
- maintain records of previous training, education, and work experience
Procedures for program evaluation will include documentation of providing qualified instructors for generic
and site-specific training programs.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
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Test Administration
A test bank of questions for this training, with site specific information, should be developed and the content
validated. As the test banks are used, statistical validation of the test bank should be performed in order 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.
The test banks should also be used by the instructors to 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 should generally be used to demonstrate satisfactory completion of theoretical
classroom instruction. The following are some minimal recommendations for the test banks and tests:
- Tests are randomly generated from the test bank.
- Test items represent all objectives in the course.
- All test bank items are content-validated by a subject matter expert.
- Test banks are secured and are not released either before or after the test is administered.
- Trainees receive feedback on their test performance.
- Test banks undergo statistical analysis.
- For the first administrations of tests, a minimum passing score of 80% should be required for a passing
score. As statistical analysis of test results is performed, a more accurate percentage for a passing score
should be identified.
Section 7
Test administration is critical in accurately assessing the trainee's acquisition of knowledge being tested.
Generally, the following rules should be followed.
- Tests should be announced at the beginning of the training sessions.
- Instructors should continuously monitor trainees during completion of tests.
- All tests and answers should be collected at the conclusion of each test.
- No notes can be made by trainees concerning the test items.
- No talking (aside from questions) should be allowed.
- Answers to questions during a test should be provided but answers to test items should not be provided
or alluded to.
- Where possible, multiple versions of each test should be produced from the test bank for each test
administration.
- After test completion, trainees may turn in their materials and leave the room while other trainees
complete their tests.
- Trainee scores on the tests should be held as confidential.
Program Records and Administration
Training records and documentation shall meet the requirements of 10 CFR 835.704.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
11
Training Program Development/Change Requests
All requests for program changes and revisions should be sent to the DOE Technical Standards Program
using the form "Document Improvement Proposal" provided at the conclusion of the material, as provided on
the DOE Technical Standards website.
Audits (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 training program materials and processes is evaluated on a periodic basis by DOE-HQ. The evaluation
includes a comparison of program elements with applicable industry standards and requirements.
Evaluating Training Program Effectiveness
Verification of the effectiveness of Radiological Training for Tritium Facilities should be accomplished by
surveying a limited subset of former students in the workplace. This evaluation should include observation of
practical applications and discussion of the course material. DOE/HS has issued guidelines for evaluating the
effectiveness of radiological training through the DOE Operations Offices and DOE Field Offices. These
guidelines are available as an attachment to the Program Management Guide of DOE-HDBK-1122-99,
Radiological Control Technician Training.
For additional guidance, refer to DOE STD 1070-94, A Guide for Evaluation of Nuclear Facility Training
Programs. The guidelines contained in these documents are relevant for the establishment and
implementation of post-training evaluation programs.
Course-Specific Information
Purpose
This section of the program management guide is to assist those individuals assigned responsibility for
implementing the Radiological Training for Tritium Facilities. Standardized implementation of this training
helps ensure consistent and appropriate training for all personnel.
Course Goal
Upon completion of this training, the student will have a basic understanding of the characteristics of tritium
and understand the precautions and safeguards needed for working in a tritium facility.
Target Audience
Individuals who have assigned duties in tritium facilities.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Section 8
12
Course Description
This course illustrates and reinforces the skills and knowledge needed to provide personnel with an
understanding of the characteristics of tritium and the precautions needed for working with or around it in a
DOE facility. This course is designed to meet Article 663 of the RCS for individuals who have assigned
duties in a tritium facility.
Prerequisites
Training which is considered commensurate with site-specific hazards. Radiological Worker II or the
equivalent is recommended prior to receiving or concurrently with this tritium facilities safety training.
Some of those basic concepts contained in Radiological Worker II are used extensively throughout this
training.
Length
2 - 4 hours (depending on site-specific information)
Test Bank
Test banks, as applicable, should be developed by the sites, incorporating site-specific information.
Retraining
Retraining is not required for this course.
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 tritium facility. Instructors must be able to
relate their own work experience to the workers in a tritium 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.
Experience:
At least five years of applied radiological protection experience in an operating radiological
facility is preferred. The areas of experience should include:
-Tritium hazards
-Radiological controls associated with tritium
-Conducting surveys and monitoring for tritium
Comprehensive knowledge of Federal regulations and guidance and best nuclear industry practices
pertaining to radiological protection.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
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Materials Checklist
The following checklist should be used to ensure all training materials are available. The Program
Management Guide, Instructor's Guide, Student's Guide, and Lessons Learned section are provided in Word
2003 format. The Overhead Transparencies are provided in Power Point 2003 for windows format.
- Program Management Guide
- Instructor's Guide
- Student's Guide
- Overhead Transparencies
The following checklist should be used before training is provided to ensure that equipment is available and
working.
- Overhead projector
- Screen
- Flip chart
- Markers
Bibliography
ANSI N-13.12, Surface and Volume Radioactivity Standards for Clearance, HPS Standards Committee,
November (1987).
Ebey (Undated), Peter S., LA-UR-01-1825, Conversion of Tritium Gas into Tritiated Water (HTO): A
Review with Recommendations for Use in the WETF SAR, Los Alamos National Laboratory.
Lorenzen (1994), W.A., Ring J.P., The Management and Operation of a Large Scale Decay-In-Storage
Program, paper presented at 27th Mid-Year Topical Meeting of the Health Physics Society, February 12-16,
Albany, NY, (1994).
NCRP Report No. 62, Tritium in the Environment, National Council on Radiation Protection and
Measurements, Washington, D.C. (1979).
Richardson (2001), R. B., Hong, A., Dose to Lung from Inhaled Tritiated Particles, Health Physics Journal,
September (2001).
Section 9
Stevens (1994), L., and Phillips, M., Health Physics Lessons Learned from the DOE Moratorium on Mixed
Waste, 27th Mid-Year Topical Meeting of the Health Physics Society, February 12-16, Albany, NY (1994).
U.S. Department of Energy, Health Physics Manual of Good Practices for Tritium Facilities, MLM-3719,
Washington, D.C. (1991).
U.S. Department of Energy, DOE Handbook - Primer on Tritium Safe Handling Practices, DOE-HDBK-
1079-94, Washington, D.C. (1994).
U.S. Department of Energy, Guide 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, 10 CFR Part 835, Occupational Radiation Protection, Washington, D.C. (1998).
U.S. Department of Energy, Radiological Control, DOE-DTD-1098-99, Washington, D.C. (1999).
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
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U.S. Department of Energy, Radiological Control Programs for Special Tritium Compounds, DOE-STD-
draft, Washington, D.C. (2001).
U.S. Department of Energy, Acceptable Approach for Developing air Concentration Values for Controlling
Exposures to Tritiated Particulate Aerosols and Organically-Bound tritium, Radiological Control Technical
Position 2001-02, Washington, D.C. (2001).
Voss (2000), J. T., LA-UR-00-2584, Los Alamos Radiation Monitoring Notebook, (2000).
Woehr (1994), W.J., Gatami, A. and Holodny, E. I., Radioactive Waste Volume Reduction in a
University/Hospital Setting, 27th Mid-Year Topical Meeting of the Health Physics Society, February 12-16,
Albany, NY (1994).
(Part 2 of 4)
Radiological Training for Tritium Facilities
Instructor's Guide
Coordinated and Conducted
for
Office of Health, Safety and Security
U.S. Department of Energy
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Instructor’s Guide
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Instructor’s Guide
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DEPARTMENT OF ENERGY - COURSE PLAN
Core Course Material
Course Goal: Upon completion of this training the student will have a basic understanding of the
characteristics of tritium and understand the precautions and safeguards needed for working
in a tritium facility as outlined in the course objectives.
Target Audience: Individuals who have assigned duties in Tritium Facilities.
Description: This course illustrates and reinforces the skills and knowledge needed to provide
personnel with an understanding of the characteristics of tritium and the precautions needed
for working with or around it in a DOE facility. This course is designed to be consistent
with Article 663 of the DOE RSC for individuals who have assigned duties in a tritium
facility.
Prerequisites: Training which is considered commensurate with site-specific hazards. Radiological
Worker II or the equivalent is recommended prior to receiving or concurrently with this
tritium facilities safety training. Some of the basic concepts contained in Radiological
Worker II are used extensively throughout this training.
Length: 2 - 4 hours (depending on site-specific information)
DOE-HDBK-1105-2002
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Instructor’s Guide
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Section 10
Course Objectives: EO1 IDENTIFY the following properties of tritium:
- physical/chemical
- radioactive.
EO2 IDENTIFY sources of tritium:
- natural
- by-product
- weapons.
EO3 IDENTIFY uses of tritium:
- weapons applications
- research
- fusion energy production
- industrial/commercial.
EO4 IDENTIFY modes of tritium exposure:
- inhalation
- ingestion
- absorption
- injection/wound.
EO5 IDENTIFY the biological effects of tritium:
- biological half-life
- dose.
EO6 IDENTIFY the radiological control methods for tritium:
- engineered
- administrative
- surface contamination limits
- personnel protective equipment
- application of ALARA principles.
EO7 IDENTIFY methods for monitoring for tritium:
- air sampling for worker safety
- contamination surveys
- bioassay.
EO8 IDENTIFY tritium waste minimization and handling
techniques. (Site-Specific)
E09 IDENTIFY alarms and proper response to abnormal
conditions in the tritium facility. (Site-Specific)
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Instructor’s Guide
6
Training Aids: Overhead transparencies (may be supplemented or substituted with updated or site-
specific information)
Equipment Needs: - Overhead projector
- Screen
- Flip chart
- Markers
Student Materials: Students Guide
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Instructor’s Guide
7
LESSON SUMMARY
Introduction
Welcome students to the course.
Introduce self and instructor team.
Define logistics.
- safety briefing - exits
- restrooms
- hours
- breaks
- sign-in sheets
- test - accountability
- end of course evaluation
Remind the participants that they need to have completed Radiological
Worker Training prior to this course. They should be familiar with terms
like rem, contamination, etc.
Show Title OT-1
Course Goal
At the end of this course, the participant should be able to demonstrate a
basic understanding of the characteristics of tritium and precautions for
working in a tritium facility as outlined in the course objectives. We will
attempt to answer the following questions:
- Tritium, what is it?
- How does it behave?
- What are the benefits and hazards?
- How do we control it?
State Course Objectives
Show OT 2
Show OT 3, OT 4,
and OT 5
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Instructor’s Guide
8
Course Content
Briefly review the content of the course, noting that there is a logical
sequence ("flow"), and that as you present the material you will relate the
material covered to the circumstances that they can expect to find in the
facility workplace and procedures. (You will be inserting site-specific
tritium information.)
1. Properties of Tritium
2. Sources and Uses of Tritium
3. Modes of Exposure and Biological Behavior of Tritium
4. Radiological Controls for Tritium
5. Monitoring for Tritium
6. Tritium Waste Minimization and Handling
7. Response to Abnormal Conditions in the Tritium Facility
8. Lessons Learned
9. Summary and Review
Show OT 6
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Instructor’s Guide
Notes
9
I.
PROPERTIES OF TRITIUM - What is tritium?
Tritium is a radioactive isotope of hydrogen (H). Hydrogen is
the lightest and most abundant element in the universe.
Hydrogen has only one proton in its nucleus. Tritium has, in
addition to the single proton, two neutrons in its nucleus. This
makes it three times heavier than the most common form of
hydrogen.
Show OT 7
Section 11
Show OT 8
A. Isotopes of Hydrogen
1. Protium (H) (99.985% natural
abundance)
2. Deuterium = hydrogen + 1 neutron
(D) (0.015% natural abundance)
3. Tritium = hydrogen + 2 neutrons (T)
Show OT 9
B. Symbol for Tritium
Tritium is designated as:
H or 3,H- T, 3
1
Show OT 10
C. Chemical Properties of Hydrogen/Tritium
Tritium "behaves" just like hydrogen
chemically because it has one proton and one
electron like ordinary hydrogen.
Reaction rates may vary from
hydrogen.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Instructor’s Guide
Notes
10
1. Substitution
Tritium atoms can easily substitute for
hydrogen atoms. Examples:
a. elemental hydrogen (tritium gas,
HT, DT, or T2)
b. tritiated water (tritium oxide: HTO,
DTO, or T2O)
c. organically bound tritium: These
compounds may result in more dose
per intake than tritiated water.
d. metals and tritium (metal tritides):
These compounds may result in more
dose per intake than tritiated water.
Accordingly, additional controls may
be needed, such as special air
monitoring or enhanced personnel
protective equipment.
Show OT 11
Show OT 12
Show OT 13 - Tritium can
replace a loosely bounded
hydrogen atom of an organic
molecule.
Show OT 14 - Hydride storage
of elemental tritium is common.
Uranium Hydride is most
frequently used for this purpose.
Tritium is released by heating
the metals to 400 degrees C for 1
atm. dissociation pressure.
Refer to RCTP 2001-02 and
Health Physics Journal
September 2001 for more
information.
2. Solubility
Exchanges with hydrogen in organic and
other materials (oils, plastics, etc.)
3. Flammability
Tritium gas is flammable and can explode
under certain conditions.
Instructor should emphasize that
the biological exchange of
tritium with hydrogen in the
body is of concern.
Show OT 15 - The range of
flammable concentrations of
tritium in air is between 4% and
75% by volume in air.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Instructor’s Guide
Notes
11
D. Physical Properties
1. Diffusion
Tritium gas is lighter than air and diffuses
rapidly in air.
Show OT 16
Show OT 17
2. Permeability
Tritium gas permeates through most
materials, that is, it travels through them by
way of spaces or interstices in them. The
rate depends upon the material and its
thickness. Tritium's radioactive, chemically
reducing and diffusive properties result in
degradation of many useful polymeric
materials, pump oils, plastics, and o-rings.
This can cause loss of mechanical functions
in certain situations within a short period of
time.
Show OT 18
υβ + + He to decays H -3
2
− 3
1
E. Radioactive Decay of Tritium
Helium = He 3
2
neutrino-anti = υ
minus beta = β −
Tritium "decays" by emitting a beta particle
and becoming an atom of helium.
Show OT 19
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Instructor’s Guide
Notes
12
1. Beta Energy
A very low energy beta is emitted.
Max energy = 18.6 keV
Ave. energy = 5.7 keV
2. Beta Range
Tritium is not an "external" radiation
hazard.
Instructor should emphasize the
radiological controls are to keep
tritium outside the body.
Explain what is meant by
"external" radiation hazard.
a. Travels less than 1/4 inch in air
b. Cannot penetrate through the dead
layer of the skin
c. Cannot penetrate clothing or gloves
3. Half-life
Radioactive half-life = 12.3 years.
Section 12
Show OT 20
F. X-Ray Production
Tritium betas can produce low energy x rays.
Because the beta particle is of such low energy
the x rays it may produce are not very
penetrating and are not normally considered a
hazard.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Instructor’s Guide
Notes
13
G. Fusion
Fusion is the process of two nuclei joining
together. The energy source in most stars is
nuclear fusion of hydrogen isotopes.
fusionper mev 1
n + H H + H 1
0
3
2
2
1 e 2
1 →
Show OT 21
fusionper mev 17
n + H H + H 1
0
4
2
2
1 e 3
1 →
SOURCES AND USES OF TRITIUM
How is tritium produced and what is it used for?
A. Sources of Tritium
There are three primary sources of tritium in
our environment. Tritium is present in our
environment from both man-made and natural
sources as discussed below. Natural tritium is
indistinguishable from man-made tritium.
1. Natural Sources
Tritium occurs naturally. It is formed by
the reactions between cosmic rays and the
nitrogen in the upper atmosphere.
Nitrogen makes up 80% of the earths
atmosphere.
Cosmic rays generate approximately 4
million curies of tritium per year. With
tritium being continually produced and at
the same time decaying, the natural
tritium in our environment is about 70
million curies.
Show OT 22
Show OT 23
Modes of production:
1. The nitrogen nucleus captures
a neutron and decays to tritium
and carbon.
C + H
yieldsn + N
12
6
3
1
1
0 14
7
H + H
yields H + H
1
1
3
1
2
1 2
1
2. Two hydrogen-2 atoms
(deuterium) combine to form
tritium and normal hydrogen.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Instructor’s Guide
Notes
14
2. By-Product of Reactor Sources
a. Lithium-7 captures a neutron and
decays with tritium as a product.
b. Boron captures a neutron and decays
with tritium as a product.
c. Activation of deuterium in water.
d. Ternary fission - A fission resulting
in three fission products, one of which
is tritium. This process has a 0.1%
yield.
α +n + H
yieldsn + Li
1
0
3
1
1
0 7
3
α2 + H yieldsn + B 3
1
1
0 10
5
Show OT 24
H yieldsn + H 3
1
1
0 2
1
The production of tritium from power
reactors around the world is less than one-
half that naturally formed (approximately 1
to 2 million curies a year).
3. Weapons Testing as a Source
The amount of tritium in the world from
weapons testing has been steadily
declining since the 1970's when
atmospheric testing was curtailed.
Show OT 25
Atmospheric testing from 1945-1975
produced about 8 billion curies. This has
decayed to about 400 million curies.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Instructor’s Guide
Notes
15
4. DOE Production of Tritium
DOE has produced tritium at the
Savannah River Site with the use of a
reactor. Tritium is commercially
available from from Canada and the
European Community for non-weapons
use.
α + H
yieldsn + Li
3
1
1
0 6
3
B. Uses of Tritium
1. Consumer Products
a. Gaseous tritium light sources
- exit signs (1 Ci to tens of Ci's)
- aviation landing aids (30-165 Ci
per light)
(1 curie of tritium has a mass of
approximately 0.1 mg)
Show OT 26
Instructor - emphasize that
tritium has use in everyday
activities.
Approximately 100,000 Ci per
runway
b. Luminizing industry: Self-luminous
compounds for dials (several mCi's)
and controls as well as other general
industry uses.
2. Research - Tritium Labeling
Section 13
Tracers for medical and laboratory
research.
Show OT 27
3. Department of Energy
a. Weapons development and
applications
b. Fusion energy: As a fuel source
Show OT 28
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Instructor’s Guide
Notes
16
III.
MODES OF EXPOSURE AND BIOLOGICAL BEHAVIOR
OF TRITIUM - How can I be exposed to tritium and what
would it do to me?
Show OT 29
A. External Dose
- Tritium is not an external hazard.
- Tritium is not a dose concern if it is
located outside the body.
- Tritium betas will not penetrate a
dosimeter.
- We are interested only in tritium inside
the body.
Show OT 30
The tritium beta when it is
stopped (particularly in high
atomic numbered materials, e.g.,
lead) will produce a low energy
x-ray. This x-ray cannot
penetrate into the body, because
of the low energy of the x-ray.
There may be rare circumstances
where external dose should be
considered (i.e., using large
quantities of tritium).
B. Internal Dose
Tritium is an "internal" radiation hazard.
C. Modes of Exposure
Tritium can deliver a radiation dose if it gets
inside our bodies. Modes of entry include:
- inhalation
- absorption
- injection (cuts/wounds)
- ingestion
Show OT 31
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Instructor’s Guide
Notes
17
1. Inhalation
a. Tritium gas: is only slightly
incorporated into the body when inhaled. Most
tritium gas inhaled is subsequently exhaled.
There are other chemical and physical processes
to convert tritium gas to tritiated water.
b. Tritiated water vapor: Nearly 100%
of tritiated water vapor inhaled is incorporated
into body fluids/tissues.
c. Hazard: Exposure to tritiated water
is approximately 25,000 times more hazardous
than exposure to elemental tritium gas.
d. Special Tritium Compounds: consist
of organically bound tritium and tritium
particulate aerosols.
Exposure to organically bound tritium can be up
to approximately 13 times more hazardous than
exposure to HTO.
Exposure to tritium particulate aerosols can
deliver up to approximately 20 times more dose
to the whole body than exposure to HTO. The
dose to the lungs from tritium particulate aerosols
could be 2 orders of magnitude higher than from
HTO.
Show OT 32
An extremely low
percent (in the order
of 0.005%) of tritium
gas inhaled is
converted to tritiated
water prior to being
exhaled.
Tritiated water vapor
is more hazardous
due to its ability to be
almost 100%
assimilated,
increasing the dose
received by the
individual.
Refer to RCTP 2001-
02 and Health
Physics Journal
September 2001.
2. Ingestion
Ingestion may occur by eating, drinking, chewing
tobacco, and applying makeup where tritium
contamination is present. Always wash hands
thoroughly when leaving areas where there is a
potential for contamination, and never eat, drink
etc. where tritium contamination may be present.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Instructor’s Guide
Notes
18
3. Absorption
Absorption is also a hazard because an
individual can receive, in certain
situations, 1/3 of their uptake from
absorption through the skin if not
properly using personal protective
equipment.
a. Tritium gas: There is negligible skin
absorption for tritium gas.
b. Tritiated water: Tritiated water can
be absorbed through the skin. It has
been observed that moisture on hands
enhances absorption.
Section 14
c. Solvents: Some solvents
(organically bound tritium) can also go
through the skin.
Tritium will penetrate gloves, therefore gloves
must be changed at a prescribed routine basis.
Show OT 33
The assumption is that an additional 50% of
the inhalation intake is absorbed through
the skin.
This is an important fact for maintenance
workers to know.
Insert site specific information concerning
gloves.
D. Biological Behavior of Uptakes of Tritium
Tritiated water in the body acts just like water.
1. Distribution
Tritiated water is rapidly and uniformly
distributed throughout the entire body.
The Committed Effective Dose
Equivalent (CEDE) from an uptake of one
curie of tritiated water is 63 rem. Soluble
organically bound tritium behaves in the
body in a similar manner.
Stable tritium particulate aerosols and
insoluble organically bound tritium
behave in the body in a similar manner as
the particulate to which the tritium is
bound.
Show OT 34
Typical production reactor coolant has
approximately 10 Ci/L of tritium. So 100
ml of such coolant has about 1 Ci of
tritium. If approximately 8 ml was ingested
a CEDE of 5 rem (the annual limit) would
result.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Instructor’s Guide
Notes
19
2. Biological Half-life
Half of the HTO is eliminated from
the body in about 10 days. Through
normal biological processes, it would
take 70 days or more to eliminate
99% of the assimilated tritiated water.
Stable tritium particulate aerosols and
insoluble organically bound tritium
behave in the body in a similar
manner as the particulate to which
the tritium is bound and would have a
longer half life.
Show OT 35
E. Medical Treatment
The biological half-life can be shortened by increasing
the water elimination in the body. Therefore,
individuals who have uptakes of tritium are
encouraged to drink water. Drinking copious amounts
of water should not be done without a physician's
guidance. Certain medical conditions may be affected
by liquid intake.
Show OT 36
Insert site-specific policy.
IV.
RADIOLOGICAL CONTROLS FOR TRITIUM - How can I
protect myself from exposures to tritium?
Tritium can be present in a variety of chemical forms. Ongoing
research indicates that the form of tritium which gives the
highest dose (per unit intake) is tritium particulate aerosols.
However, these compounds are not found in the quantities and
various locations as tritiated water. If we can rule out special
tritium compounds as being of concern, we assume it may be
tritiated water.
The preferred hierarchy of control is as follows:
- engineered
- administrative
- personal protective equipment
Show OT 37
Show OT 38
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Instructor’s Guide
Notes
20
A. Engineered Controls
1. Containment and Confinement
Containment or confinement is a
series of physical barriers, minimizes
exposure of workers.
Show OT 39
Confinements such as glove boxes are
almost always used when handling
large quantities of tritium. However,
hoods are acceptable for handling
small quantities, such as in a
laboratory.
Instructor should insert site
specific information concerning
what is considered large or small
quantities for handling tritium.
2. Airflow
Maintaining negative ventilation is
essential for the safe operation of a
tritium facility. Airflow should be
from areas of LEAST to MOST
contamination.
Show OT 40
Section 15
May need to use site specific
terminology.
3. Local Exhaust Ventilation
The primary advantage of local
exhaust ventilation techniques is the
removal of airborne tritium,
regardless of its release rate or
chemical or physical form. In
addition, these techniques use
relatively low volume rates compared
to normal ventilation requirements.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Instructor’s Guide
Notes
21
4. Dilution Ventilation
Dilution ventilation is the once-
through flow technique of exchanging
outside air for inside air for comfort
and the reduction of airborne sources.
5. Storage
Tritium can be stored in storage beds.
Metal tritide and uranium hydride are
the most common for these storage
systems. Tritium is generally released
by heating the metal tritide.
Tritium is considered valuable
and needs to be recovered. (i.e.
not to send up the stack)
B. Administrative Controls
There are many administrative controls to reduce
doses. The following are just a few that should apply
to all sites:
- limitation of access time
- procedures/RWPs
- postings
For tritium and tritium compounds, 10 CFR 835
Appendix D requires posting contamination areas
based on removable contamination values of 10,000
dpm/100cm2.
Show OT 41
Ask students to name other ways
to prevent or reduce doses.
Insert site specific posting
requirements.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Instructor’s Guide
Notes
22
C.
Personal Protective Equipment
1. Air Supplied Suits
Because of the absorption through the
skin associated with the use of
respirators and other breathing
apparatus, air-supplied plastic suits
that completely enclose the body are
widely used by facilities that handle
large quantities of tritium.
Show OT 42
2. Protective Clothing
Protective clothing (PC), or anti-
contamination clothing (anti-Cs), is
used to minimize the spread of
contamination from contaminated to
clean areas.
In many operations, the hands and
forearms of workers are vulnerable to
contact with tritium surface
contamination. The proper selection
of gloves and glove materials is
important. In many instances a
plastic/water proof suit is required.
Discuss site specific
requirements
Insert site specific information
concerning selection of PCS.
Even with a plastic or
water-proof PC suit, a stay time
may be assigned due to the
ability of tritium to permeate
through plastic.
V.
MONITORING FOR TRITIUM - How do I know if tritium is
present?
Show OT 43
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Instructor’s Guide
Notes
23
A. Personnel Monitoring
1. External Dose
Dosimeters are not typically used to
monitor for radiological doses
resulting from tritium. The weak
energy beta radiation will not
penetrate the dosimeter.
(insert any site specific monitoring
procedures)
Show OT 44
Insert site specific requirements
2. Internal Dose
The best method used to determine if
an individual has an uptake of HTO or
soluble organically bound tritium is by
bioassay (urinalysis). Routine urine
samples, collected at some
predetermined frequency and counted
for the tritium content, provide a very
sensitive measurement of tritium in the
body. This is especially true if the time
of uptake is known.
Air sampling results may be used to
assess dose from other types of special
tritium compounds.
Show OT 45
3. Routine Versus Non-Routine Bioassay
Section 16
Monitoring
a. Routine: Routine urinalysis is
conducted on a preset periodic
basis.
b. Non-routine or Special: Non-
routine bioassay is done
whenever a potential exposure to
tritium is suspected.
(insert site specific bioassay
procedures)
1. Prospective: Prospective
bioassay is routine bioassay.
B. Workplace Monitoring
Air monitoring and surface contamination surveys
are used to verify that loose contamination is not
present. They provide an early indication of potential
problems.
Show OT 46
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Instructor’s Guide
Notes
24
1. Airborne Tritium Monitoring
Airborne tritium monitoring is used
for:
a. Prompt detection of airborne
contamination for worker
protection;
b. Determination of the status of
processes; and
c. Identification of any leaks in
primary or secondary
containments or confinements.
Show OT 47
Insert and discuss site specific
information concerning
equipment.
2. Contamination Surveys
Despite contamination control
measures, tritium is easily spread.
All workplaces shall be surveyed for
contamination levels on a regularly
scheduled basis. The frequency of
such surveys will depend on the
potential for dispersement of the
tritium-contaminated material in the
area and the quantity of tritium in
the area. During routine surveys, all
work enclosures, work surfaces,
floors, equipment, etc., within the
workplace should be surveyed.
Show OT 48
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Instructor’s Guide
Notes
25
At the surface contamination levels
in 10 CFR 835 Appendix d, tritium
is difficult to measure directly
because the low-energy beta is
readily absorbed in air and the
window of the detector. Normal
frisking methods (use of pancake
probe) will not detect tritiated water.
Surfaces are normally wiped
(smeared) with a small paper, either
dry or moistened, which will pick up
loose tritiated material. The wipe is
then normally counted by liquid
scintillation techniques.
Show OT 49
VI.
TRITIUM WASTE MINIMIZATION AND HANDLING-
Why is it important and how do you minimize tritium waste?
(insert site specific controls)
Methods below are given as a reference only.
A. Minimizing Tritium-Contaminated Waste
Show OT 50
This material maybe covered in
Radiological Worker I or II
training. Emphasis should be on
site specific information. It is
not necessary to repeat
information.
1. Avoid generating wastes by not bringing
unnecessary material into the controlled area.
2. Whenever possible, avoid use of porous
materials or those known to be highly
permeable to tritium.
3. Designate an area to store contaminated tools
for reuse or consider all tools in the area to be
contaminated.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Instructor’s Guide
Notes
26
4. Plan work so that, whenever possible,
construction and clean maintenance can be
done in a clean area.
5. When transporting items contaminated with
tritium, adequate contamination control such
as wrapping in plastic or placing in sealed
containers should be considered.
Insert site-specific information
concerning procedures for
transporting tritium
contaminated items.
B. Minimizing Mixed Waste
(insert site specific controls)
Methods below are given as a reference only.
1. Use non-hazardous cleaning materials for
decontamination whenever possible.
Section 17
2. Segregate radioactive-only from hazardous-
only at the source.
3. Explore the use of other materials which are
non-hazardous for use in radiological areas to
prevent the generation of mixed waste.
VII.
RESPONSE TO ABNORMAL CONDITIONS IN THE
TRITIUM FACILITY- What should I do in an emergency
involving tritium?
To properly deal with unexpected adverse situations occurring
in a tritium facility, a well-thought-out response program and
personnel trained to execute the response should be in place.
Show OT 51
This material may be covered in
Radiological Worker I or II
training. Emphasis should be on
site specific information. It is
not necessary to repeat
information.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Instructor’s Guide
Notes
27
A. Abnormal Conditions
Abnormal conditions in a tritium facility could
include:
- fire/explosion
- natural disaster
- tritium releases
- other hazards
Personnel found contaminated should follow site specific
decontamination procedures which would typically include
showering with cold water and the use of mild detergents.
B. Facility Alarms
(insert site specific alarms and emergency response
procedures)
C. Facility Emergency Responses
(insert site specific alarms and emergency response
procedures)
Insert site specific emergency
plan and hazards assessment
documents.
VIII.
LESSONS LEARNED
(insert site specific lessons learned)
Show OT 52
IX.
SUMMARY AND REVIEW
Show OT 53
DOE-HDBK-1105-2002
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Instructor’s Guide
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(Part 3 of 4)
Radiological Training for Tritium Facilities
Overheads
Coordinated and Conducted
for
Office of Health, Safety and Security
U.S. Department of Energy
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Overheads
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Radiological Training for
Tritium Facilities
Overhead Transparencies
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Tritium - what is it?
How does it behave?
What are the benefits and hazards?
How do we control it?
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Radiological Training for Tritium Facilities
Objectives
IDENTIFY the following properties of tritium
physical/chemical
radioactivity
IDENTIFY sources of tritium
natural
by-product
weapons
IDENTIFY uses of tritium
weapons applications
research
fusion energy production
industrial/commercial
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Objectives
(Continued)
IDENTIFY modes of tritium exposure
inhalation
ingestion
absorption
injection/wounds
IDENTIFY biological effects of tritium
biological half-life
dose
IDENTIFY radiological control methods for tritium
engineered
administrative
surface contamination limits
personal protective equipment
application of ALARA principles
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Objectives
(Continued)
IDENTIFY methods for monitoring tritium
air sampling for worker safety
contamination surveys
bioassay
IDENTIFY tritium waste minimization and
handling procedures
IDENTIFY alarms and proper response to
abnormal conditions in the tritium facility
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Outline
Properties of tritium
Sources and uses of tritium
Modes of exposure and biological effects of
tritium
Radiological controls for tritium
Monitoring for tritium
Tritium waste minimization and handling
Response to abnormal condition in the tritium
facility
Lessons learned
Summary and Review
Section 18
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What is Tritium?
Properties of Tritium
H-3
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All hydrogen atoms have one proton (H)
Electron
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The number of neutrons may vary
ISOTOPES of hydrogen
Protium H Deuterium D Tritium T
No neutrons 1 neutron 2 neutrons
H D T
n nn
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Tritium is designated as:
T or H-3 or H3
1
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Tritium can easily substitute for protium (H)
Normal Hydrogen Gas
Tritiated Gas
Tritium Gas
H2
HT
TT or T2
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Tritium behaves just like hydrogen
Normal Water
Tritiated Water
H O2
HTO
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Tritium can form organic compounds
C6H12+T2 "Benzene" C6 H11T+HT or
CH
4
+T
2
"Methane" CH3T+HT
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Tritium can be captured in metallic compounds called
"Hydrides" and then released by heating
Heat
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Hydrogen/tritium gas may be flammable
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Hydrogen/tritium gas is lighter than air
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Hydrogen/tritium gas rapidly disperses in air
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Hydrogen/tritium gas and tritiated water penetrates through
most materials, including gloves
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Tritium decays by emitting a weak beta
particle
Beta
Stopped By
1/4 Inch of Air
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The radioactive half-life of tritium is
12.3 years
0 12.3 24.6 36.9 49.2 Years
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Fusion of hydrogen and other light element
isotopes fuels the stars
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Sources of Tritium
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Tritium is produced naturally by cosmic rays
and is carried to the earth's surface by rain
World inventory of natural tritium from cosmic ray
interactions is approximately 70 million curies.
4 million curies (approximately 0.41 kg)
produced per year
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Commercial production
Nuclear reactors
1 million curies per year
1-2 million curies per year
-
-
Tritium is formed in reactors by ternary
fission and activation of light elements
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The world inventory of tritium from atmospheric testing is
approximately 400 million curies (approximately 41 kg).
Environmental tritium from atmospheric
testing will be at natural levels by about 2030
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Tritium is used commercially in a variety of
products
Illuminating Signs
Runway Lights
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Tritium is used extensively in biology and
medical research
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Tritium is the fuel in
fusion reactions
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Modes of Exposure
and
Biological Behavior of
Tritium
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Tritium is NOT an external radiation hazard-It is an internal
hazard when taken into the body
external
The beta particle cannot
penetrate through the
dead layer of the skin. Tritium is
incorporated
into cells.
internal
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The main pathways for uptake of tritium are:
Inhalation Absorption
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Section 19
Tritiated water vapor is more hazardous than tritium gas,
as it is readily incorporated into the body
Exhaled
Tritiated water is assimilated in the body
20,000 times more than tritium gas
HT
HT
HTO
HTO
HTO
HT
99.9%
Less than 0.1%
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Tritiated water can also be absorbed
through skin into body water.
HTO
HTO
HTO
HTO
HTO
HTO
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Tritium taken into the body is distributed
throughout the body.
1 Curie of tritiated water
63 rem
10CFR835
establishes 5 rem/year
as the occupational
dose limit.
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The biological half-life of tritium
is about 10 days.
0 Days 10 Days 20 Days 30 Days 40 Days 50 Days
100% 50% 25% 12.5% 6.25% 3.125%
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The elimination of tritium from the body can
be increased by increasing water intake
However, this should only be performed
under medical supervision
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verhead 37 Engineered
Administrative
Personal Protective Equipment
Radiological Controls
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Engineered controls are preferred over
administrative ones.
Engineered Administrative
Glovebox
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Larger quantities of tritium are handled in
engineered containment systems.
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Airflow should be from areas of LEAST to
MOST contamination in tritium facilities
Building
Room
Hood
Glovebox
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Access controls may also be
administrative.
Caution
RADIOACTIVE MATERIALS
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Because of the permeability of tritium, large quantities
must be handled using air supplied suits.
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Monitoring for Tritium
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Your dosimeter is NOT used to monitor
tritium dose which results from assimilation
of tritiated water in the body.
Bioassay is used to
determine tritium dose.
TLDs are used for external
exposure. Tritium betas
cannot penetrate the TLD
case.
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Urinalysis is used to monitor for possible
uptakes of tritium.
Both: Routine and
Non-Routine
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Workplace monitoring for tritium
Monitor
Swipes
Glovebox
Personal Air Sampler
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Area fixed air monitors and tritium sniffers
are used to detect tritium leaks/releases.
FUNCTION
OFF
ON
A
L
A
R
M
ZERO
AIR IN
TRITIUM uCi/m3
0 10
PUMP
AIR OUT
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Tritium spreads easily, therefore
contamination control requires constant
vigilance.
Tritium is like sand at the beach...
It gets into everything!
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Tritium contamination is detected and
measured by taking swipes/smears.
Swipe/Smear
Counting Vial
Liquid Scintillation
Counter
LS
Cocktail
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Tritium Waste Minimization
and Handling
Avoid generating waste by not bringing unnecessary
material into the controlled area.
Whenever possible, avoid use of porous materials or
those known to be highly permeable to tritium.
Designate an area to store contaminated tools for reuse.
Plan work so that, whenever possible, construction and
clean maintenance can be done in a clean area.
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Response
to
Abnormal Conditions
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Lessons Learned
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Summary and Review
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(Part 4 of 4)
Radiological Training for Tritium Facilities
Student's Guide
Coordinated and Conducted
for
Office of Health, Safety and Security
U.S. Department of Energy
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Instructor’s Guide
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DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Student’s Guide
3
Course Objectives: EO1 IDENTIFY the following properties of tritium:
- physical/chemical
- radioactive.
EO2 IDENTIFY sources of tritium:
- natural
- by-product
- weapons.
EO3 IDENTIFY uses of tritium:
- weapons applications
- research
- fusion energy production
- industrial/commercial.
EO4 IDENTIFY modes of tritium exposure:
- inhalation
- ingestion
- absorption
- injection/wound.
EO5 IDENTIFY the biological effects of tritium:
- biological half-life
- dose.
EO6 IDENTIFY the radiological control methods for tritium:
- engineered
- administrative
- surface contamination limits
- personnel protective equipment
- application of ALARA principles.
EO7 IDENTIFY methods for monitoring for tritium:
- air sampling for worker safety
- contamination surveys
- bioassay.
EO8 IDENTIFY tritium waste minimization and handling
techniques. (Site-Specific)
E09 IDENTIFY alarms and proper response to abnormal
conditions in the tritium facility. (Site-Specific)
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Student’s Guide
Notes
4
I.
PROPERTIES OF TRITIUM - What is tritium?
Tritium is a radioactive isotope of hydrogen (H). Hydrogen is
the lightest and most abundant element in the universe.
Hydrogen has only one proton in its nucleus. Tritium has, in
addition to the single proton, two neutrons in its nucleus. This
makes it three times heavier than the most common form of
hydrogen.
A. Isotopes of Hydrogen
1. Protium (H) (99.985% natural
abundance)
2. Deuterium = hydrogen + 1 neutron
(D) (0.015% natural abundance)
3. Tritium = hydrogen + 2 neutrons (T)
B. Symbol for Tritium
Tritium is designated as:
H or 3,H- T, 3
1
C. Chemical Properties of Hydrogen/Tritium
Tritium "behaves" just like hydrogen
chemically because it has one proton and one
electron like ordinary hydrogen.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Student’s Guide
Notes
5
1. Substitution
Tritium atoms can easily substitute for
hydrogen atoms. Examples:
a. elemental hydrogen (tritium gas,
HT, DT, or T2)
b. tritiated water (tritium oxide: HTO,
DTO, or T2O)
c. organically bound tritium: These
compounds may result in more dose
per intake than tritiated water.
d. metals and tritium (metal tritides):
These compounds may result in more
dose per intake than tritiated water.
Accordingly, additional controls may
be needed, such as special air
monitoring or enhanced personnel
protective equipment.
2. Solubility
Exchanges with hydrogen in organic and
other materials (oils, plastics, etc.)
3. Flammability
Tritium gas is flammable and can explode
under certain conditions.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Student’s Guide
Notes
6
D. Physical Properties
1. Diffusion
Tritium gas is lighter than air and diffuses
rapidly in air.
2. Permeability
Section 21
Tritium gas permeates through most
materials, that is, it travels through them by
way of spaces or interstices in them. The
rate depends upon the material and its
thickness. Tritium's radioactive, chemically
reducing and diffusive properties result in
degradation of many useful polymeric
materials, pump oils, plastics, and o-rings.
This can cause loss of mechanical functions
in certain situations within a short period of
time.
υβ + + He to decays H -3
2
− 3
1
E. Radioactive Decay of Tritium
Helium = He 3
2
neutrino-anti = υ
minus beta = β −
Tritium "decays" by emitting a beta particle
and becoming an atom of helium.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Student’s Guide
Notes
7
1. Beta Energy
A very low energy beta is emitted.
2. Beta Range
Tritium is not an "external" radiation
hazard.
a. Travels less than 1/4 inch in air
b. Cannot penetrate through the dead
layer of the skin
c. Cannot penetrate clothing or gloves
3. Half-life
Radioactive half-life = 12.3 years.
F. X-Ray Production
Tritium betas can produce low energy x rays.
Because the beta particle is of such low energy
the x rays it may produce are not very
penetrating and are not normally considered a
hazard.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Student’s Guide
Notes
8
G. Fusion
Fusion is the process of two nuclei joining
together. The energy source in most stars is
nuclear fusion of hydrogen isotopes.
SOURCES AND USES OF TRITIUM
How is tritium produced and what is it used for?
A. Sources of Tritium
There are three primary sources of tritium in
our environment. Tritium is present in our
environment from both man-made and natural
sources as discussed below. Natural tritium is
indistinguishable from man-made tritium.
1. Natural Sources
Tritium occurs naturally. It is formed by
the reactions between cosmic rays and the
nitrogen in the upper atmosphere.
Nitrogen makes up 80% of the earths
atmosphere.
Cosmic rays generate approximately 4
million curies of tritium per year. With
tritium being continually produced and at
the same time decaying, the natural
tritium in our environment is about 70
million curies.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Student’s Guide
Notes
9
2. By-Product of Reactor Sources
a. Lithium-7 captures a neutron and
decays with tritium as a product.
b. Boron captures a neutron and decays
with tritium as a product.
c. Activation of deuterium in water.
d. Ternary fission - A fission resulting
in three fission products, one of which
is tritium. This process has a 0.1%
yield.
The production of tritium from power
reactors around the world is less than one-
half that naturally formed (approximately 1
to 2 million curies a year).
3. Weapons Testing as a Source
The amount of tritium in the world from
weapons testing has been steadily
declining since the 1970's when
atmospheric testing was curtailed.
Atmospheric testing from 1945-1975
produced about 8 billion curies. This has
decayed to about 400 million curies.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Student’s Guide
Notes
10
4. DOE Production of Tritium
DOE has produced tritium at the
Savannah River Site with the use of a
reactor. Tritium is commercially
available from from Canada and the
European Community for non-weapons
use.
B. Uses of Tritium
1. Consumer Products
Section 22
a. Gaseous tritium light sources
- exit signs (1 Ci to tens of Ci's)
- aviation landing aids (30-165 Ci
per light)
(1 curie of tritium has a mass of
approximately 0.1 mg)
b. Luminizing industry: Self-luminous
compounds for dials (several mCi's)
and controls as well as other general
industry uses.
2. Research - Tritium Labeling
Tracers for medical and laboratory
research.
3. Department of Energy
a. Weapons development and
applications
b. Fusion energy: As a fuel source
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Student’s Guide
Notes
11
III.
MODES OF EXPOSURE AND BIOLOGICAL BEHAVIOR
OF TRITIUM - How can I be exposed to tritium and what
would it do to me?
A. External Dose
- Tritium is not an external hazard.
- Tritium is not a dose concern if it is
located outside the body.
- Tritium betas will not penetrate a
dosimeter.
- We are interested only in tritium inside
the body.
B. Internal Dose
Tritium is an "internal" radiation hazard.
C. Modes of Exposure
Tritium can deliver a radiation dose if it gets
inside our bodies. Modes of entry include:
- inhalation
- absorption
- injection (cuts/wounds)
- ingestion
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Student’s Guide
Notes
12
1. Inhalation
a. Tritium gas: is only slightly
incorporated into the body when inhaled. Most
tritium gas inhaled is subsequently exhaled.
There are other chemical and physical processes
to convert tritium gas to tritiated water.
b. Tritiated water vapor: Nearly 100%
of tritiated water vapor inhaled is incorporated
into body fluids/tissues.
c. Hazard: Exposure to tritiated water
is approximately 25,000 times more hazardous
than exposure to elemental tritium gas.
d. Special Tritium Compounds: consist
of organically bound tritium and tritium
particulate aerosols.
Exposure to organically bound tritium can be up
to approximately 13 times more hazardous than
exposure to HTO.
Exposure to tritium particulate aerosols can
deliver up to approximately 20 times more dose to
the whole body than exposure to HTO. The dose
to the lungs from tritium particulate aerosols
could be 2 orders of magnitude higher than from
HTO.
2. Ingestion
Ingestion may occur by eating, drinking, chewing
tobacco, and applying makeup where tritium
contamination is present. Always wash hands
thoroughly when leaving areas where there is a
potential for contamination, and never eat, drink
etc. where tritium contamination may be present.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Student’s Guide
Notes
13
3. Absorption
Absorption is also a hazard because an
individual can receive, in certain
situations, 1/3 of their uptake from
absorption through the skin if not properly
using personal protective equipment.
a. Tritium gas: There is negligible skin
absorption for tritium gas.
b. Tritiated water: Tritiated water can
be absorbed through the skin. It has
been observed that moisture on hands
enhances absorption.
c. Solvents: Some solvents
(organically bound tritium) can also go
through the skin.
Tritium will penetrate gloves, therefore gloves
must be changed at a prescribed routine basis.
D. Biological Behavior of Uptakes of Tritium
Tritiated water in the body acts just like water.
1. Distribution
Section 23
Tritiated water is rapidly and uniformly
distributed throughout the entire body.
The Committed Effective Dose
Equivalent (CEDE) from an uptake of one
curie of tritiated water is 63 rem. Soluble
organically bound tritium behaves in the
body in a similar manner.
Stable tritium particulate aerosols and
insoluble organically bound tritium
behave in the body in a similar manner as
the particulate to which the tritium is
bound.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Student’s Guide
Notes
14
2. Biological Half-life
Half of the HTO is eliminated from
the body in about 10 days. Through
normal biological processes, it would
take 70 days or more to eliminate 99%
of the assimilated tritiated water.
Stable tritium particulate aerosols and
insoluble organically bound tritium
behave in the body in a similar
manner as the particulate to which the
tritium is bound and would have a
longer half life.
E. Medical Treatment
The biological half-life can be shortened by increasing
the water elimination in the body. Therefore,
individuals who have uptakes of tritium are encouraged
to drink water. Drinking copious amounts of water
should not be done without a physician's guidance.
Certain medical conditions may be affected by liquid
intake.
IV.
RADIOLOGICAL CONTROLS FOR TRITIUM - How can I
protect myself from exposures to tritium?
Tritium can be present in a variety of chemical forms. Ongoing
research indicates that the form of tritium which gives the
highest dose (per unit intake) is tritium particulate aerosols.
However, these compounds are not found in the quantities and
various locations as tritiated water. If we can rule out special
tritium compounds as being of concern, we assume it may be
tritiated water.
The preferred hierarchy of control is as follows:
- engineered
- administrative
- personal protective equipment
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Student’s Guide
Notes
15
A. Engineered Controls
1. Containment and Confinement
Containment or confinement is a
series of physical barriers, minimizes
exposure of workers.
Confinements such as glove boxes are
almost always used when handling
large quantities of tritium. However,
hoods are acceptable for handling
small quantities, such as in a
laboratory.
2. Airflow
Maintaining negative ventilation is
essential for the safe operation of a
tritium facility. Airflow should be
from areas of LEAST to MOST
contamination.
3. Local Exhaust Ventilation
The primary advantage of local
exhaust ventilation techniques is the
removal of airborne tritium,
regardless of its release rate or
chemical or physical form. In
addition, these techniques use
relatively low volume rates compared
to normal ventilation requirements.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Student’s Guide
Notes
16
4. Dilution Ventilation
Dilution ventilation is the once-
through flow technique of exchanging
outside air for inside air for comfort
and the reduction of airborne sources.
5. Storage
Tritium can be stored in storage beds.
Metal tritide and uranium hydride are
the most common for these storage
systems. Tritium is generally released
by heating the metal tritide.
B. Administrative Controls
There are many administrative controls to reduce
doses. The following are just a few that should apply
to all sites:
- limitation of access time
- procedures/RWPs
- postings
Section 24
For tritium and tritium compounds, 10 CFR 835
Appendix D requires posting contamination areas
based on removable contamination values of 10,000
dpm/100cm2.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Student’s Guide
Notes
17
C.
Personal Protective Equipment
1. Air Supplied Suits
Because of the absorption through the
skin associated with the use of
respirators and other breathing
apparatus, air-supplied plastic suits
that completely enclose the body are
widely used by facilities that handle
large quantities of tritium.
2. Protective Clothing
Protective clothing (PC), or anti-
contamination clothing (anti-Cs), is
used to minimize the spread of
contamination from contaminated to
clean areas.
In many operations, the hands and
forearms of workers are vulnerable to
contact with tritium surface
contamination. The proper selection
of gloves and glove materials is
important. In many instances a
plastic/water proof suit is required.
V.
MONITORING FOR TRITIUM - How do I know if tritium is
present?
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Student’s Guide
Notes
18
A. Personnel Monitoring
1. External Dose
Dosimeters are not typically used to
monitor for radiological doses resulting
from tritium. The weak energy beta
radiation will not penetrate the
dosimeter.
insert any site specific monitoring
procedures)
2. Internal Dose
The best method used to determine if
an individual has an uptake of HTO or
soluble organically bound tritium is by
bioassay (urinalysis). Routine urine
samples, collected at some
predetermined frequency and counted
for the tritium content, provide a very
sensitive measurement of tritium in the
body. This is especially true if the time
of uptake is known.
Air sampling results may be used to
assess dose from other types of special
tritium compounds.
3. Routine Versus Non-Routine
Bioassay Monitoring
a. Routine: Routine urinalysis is
conducted on a preset periodic
basis.
b. Non-routine or Special: Non-
routine bioassay is done whenever
a potential exposure to tritium is
suspected.
(insert site specific bioassay
procedures)
B. Workplace Monitoring
Air monitoring and surface contamination surveys are
used to verify that loose contamination is not present.
They provide an early indication of potential
problems.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Student’s Guide
Notes
19
1. Airborne Tritium Monitoring
Airborne tritium monitoring is used
for:
a. Prompt detection of airborne
contamination for worker
protection;
b. Determination of the status of
processes; and
c. Identification of any leaks in
primary or secondary
containments or confinements.
2. Contamination Surveys
Despite contamination control
measures, tritium is easily spread.
All workplaces shall be surveyed for
contamination levels on a regularly
scheduled basis. The frequency of
such surveys will depend on the
potential for dispersement of the
tritium-contaminated material in the
area and the quantity of tritium in the
area. During routine surveys, all
work enclosures, work surfaces,
floors, equipment, etc., within the
workplace should be surveyed.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Student’s Guide
Notes
20
At the surface contamination levels
in 10 CFR 835 Appendix d, tritium
is difficult to measure directly
because the low-energy beta is
readily absorbed in air and the
window of the detector. Normal
frisking methods (use of pancake
probe) will not detect tritiated water.
Section 25
Surfaces are normally wiped
(smeared) with a small paper, either
dry or moistened, which will pick up
loose tritiated material. The wipe is
then normally counted by liquid
scintillation techniques.
VI.
TRITIUM WASTE MINIMIZATION AND HANDLING-
Why is it important and how do you minimize tritium waste?
(insert site specific controls)
Methods below are given as a reference only.
A. Minimizing Tritium-Contaminated Waste
1. Avoid generating wastes by not bringing
unnecessary material into the controlled area.
2. Whenever possible, avoid use of porous
materials or those known to be highly
permeable to tritium.
3. Designate an area to store contaminated tools
for reuse or consider all tools in the area to be
contaminated.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Student’s Guide
Notes
21
4. Plan work so that, whenever possible,
construction and clean maintenance can be
done in a clean area.
5. When transporting items contaminated with
tritium, adequate contamination control such
as wrapping in plastic or placing in sealed
containers should be considered.
B. Minimizing Mixed Waste
(insert site specific controls)
Methods below are given as a reference only.
1. Use non-hazardous cleaning materials for
decontamination whenever possible.
2. Segregate radioactive-only from hazardous-
only at the source.
3. Explore the use of other materials which are
non-hazardous for use in radiological areas to
prevent the generation of mixed waste.
VII.
RESPONSE TO ABNORMAL CONDITIONS IN THE
TRITIUM FACILITY- What should I do in an emergency
involving tritium?
To properly deal with unexpected adverse situations occurring
in a tritium facility, a well-thought-out response program and
personnel trained to execute the response should be in place.
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
Student’s Guide
Notes
22
A. Abnormal Conditions
Abnormal conditions in a tritium facility could
include:
- fire/explosion
- natural disaster
- tritium releases
- other hazards
Personnel found contaminated should follow site specific
decontamination procedures which would typically include
showering with cold water and the use of mild detergents.
B. Facility Alarms
(insert site specific alarms and emergency response
procedures)
C. Facility Emergency Responses
(insert site specific alarms and emergency response
procedures)
VIII.
LESSONS LEARNED
(insert site specific lessons learned)
IX.
SUMMARY AND REVIEW
DOE-HDBK-1105-2002
Radiological Training for Tritium Facilities
23
CONCLUDING MATERIAL
Review Activity: Preparing Activity:
DOE Field Offices DOE-HS-11
DP RF Peter V. O’Connell, CHP, 301 903 5641
HSS ID Project Number:
EM SR TRNG-0020
NE OH
SC RL
GC
IA
RW
NN
National Laboratories Operations Offices
BNL AL
LLNL NV
LANL OAK
PNL OR
Sandia CH
ANL
New Brunswick
ORNL
SRNL
Area Offices
Amarillo Area Office
Kirtland Area Office
Princeton Area Office
Fernald Area Office
Kansas City Area Office
Miamisburg Area Office