DOE-HDBK-1122-99 Module 2.19, Fundamental Academic Training Instructor's Guide Phase I; Module 2.19, Counting Room Equipment
Functional areas: Radiological Control, Technician Training, Instructor's Guide, Counting Room Equipment
In this lesson, we will cover counting room equipment in relation to types used, purpose for, radiation monitored, operational requirements, and specific limitations and characteristics. The RCT uses information from these counting instruments to identify and assess the hazards presented by contamination and airborne radioactivity and establish protective requirements for work performed in radiological areas.
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Section 1
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Module 2.19 Counting Room Equipment Instructor’s Guide
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Course Title: Radiological Control Technician
Module Title: Counting Room Equipment
Module Number: 2.19
Objectives:
� 2.19.01 Describe the following features and specifications for commonly used
laboratory counter or scalers:
a. Detector type
b. Detector shielding
c. Detector window
d. Types of radiation detected and measured
e. Operator-adjustable controls
f. Source check
g. Procedure for sample counting
� 2.19.02 Describe the following features and specifications for low-background
automatic counting systems:
a. Detector type
b. Detector shielding
c. Detector window
d. Types of radiation detected and measured
e. Operator-adjustable controls
d. Source check
e. Procedures for sample counting
� 2.19.03 Describe the following features and specifications for commonly used
gamma/alpha spectroscopy systems used at your facility:
a. Detector type
b. Detector shielding
c. Detector window
d. Types of radiation measured
d. Procedures
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References:
1. Radiation Detection and Measurement, Glenn F. Knoll
2. Basic Radiation Protection Technology, Daniel A. Gollnick
3. Operational Health Physics, Harold J. Moe
4. ANSI N323A
5. (Various Manufacturers Technical Manuals)
Instructional Aids:
1. Overheads
2. Overhead projector and screen
3. Chalkboard/markerboard
4. Lessons learned
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I. MODULE INTRODUCTION
A. Self Introduction
1. Name
2. Phone number
3. Background
4. Emergency procedure review
B. Motivation
In this lesson, we will cover counting room equipment in
relation to types used, purpose for, radiation monitored,
operational requirements, and specific limitations and
characteristics. The RCT uses information from these
counting instruments to identify and assess the hazards
presented by contamination and airborne radioactivity and
establish protective requirements for work performed in
radiological areas.
C. Lesson Overview
1. General principles
2. Laboratory counters or scalers
3. Low-background automatic systems
4. Gamma Spectroscopy
D. Introduce Objectives O.H.: Objectives
NOTE: Text is provided for some commonly used simple
counting systems. Adjust text as necessary for instruments
used at the site.
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II. MODULE OUTLINE
A. Introduction
1. An overview of counters, scalers and associated
equipment will describe the basic functions of counting
equipment used to detect radiation activity.
2. The RCT uses information from these counting
instruments to:
a. identify and assess the hazards presented by
contamination and airborne radioactivity and;
b. establish protective requirements for work performed
in radiological areas.
3. Stand-alone counters or scalers measure gross activity
while spectroscopy systems perform spectrum analysis to
identify and quantify activity from specific nuclides.
4. The common uses of counting room equipment in various
facilities will be discussed.
5. A variety of counting equipment is used, both manual and
automated.
a. Shielded equipment to measure radioactivity just
above background levels.
b. Equipment to measure gross counts of alpha, beta and
gamma to determine if surface contamination limits
are met.
Section 2
c. Equipment to measure the energy spectrum for alpha
and gamma radiation so that individual isotopes can
be identified and quantified (e.g. to determine if an
alpha emitter is a plutonium isotope, a uranium
isotope or a radon daughter).
6. The counting systems use various types of detectors,
including:
a. gas proportional counters for alpha and beta radiation;
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b. sodium iodide, scintillation detectors for gamma
spectroscopy;
c. zinc sulfide (ZnS) scintillation detectors for alpha
radiation;
d. liquid scintillation for tritium and carbon 14;
e. surface barrier (semiconductor) detectors for alpha
spectroscopy,
f. lithium drifted germanium (GeLi semiconductor)
detectors for gamma spectroscopy,
g. high purity, germanium (HPGe semiconductor)
detectors for gamma spectroscopy.
7. The most common uses of the equipment are to count:
a. Smears and swipes
b. Air filters
8. Nose swipes are also counted as one way to test if an
individual has been exposed to airborne radioactive
contamination.
9. Both workplace and stack emission air filters are counted
to measure the concentration of specific radionuclides
(e.g. plutonium, and uranium) and classes of
radionuclides (e.g. mixed fission products).
B. General Principles
A variety of counting room systems are used. The principles
of these systems will be discussed in general and then specific
systems will be described.
1. Detector Type
a. When looking for low levels of radioactivity from
alpha emitters (e.g. U, Pu, etc.) it is important to
minimize the background count rate from betas and
gammas.
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b. The principle used to accomplish this is pulse height
discrimination.
c. Betas have a range that is about 100 times greater than
alphas, so alphas will deposit about 100 times as much
energy in a thin detector, producing a larger pulse than
betas. Therefore alpha detectors are thin (typically 1
mg/cm2) and use pulse height discrimination to
distinguish alphas from betas.
d. Alpha detectors are generally either gas proportional
counters, ZnS scintillators, or silicon semiconductors.
e. Gamma spectroscopy requires good resolution to
distinguish the different energy peaks. GeLi or HPGe
semiconductors give the best resolution, though NaI
scintillators are also used.
2. Detector Shielding
a. To reduce the background, shielding is often used.
b. Betas can be shielded with aluminum or plastic.
c. Typical gamma shielding is a few inches of lead.
3. Detector Window
a. Since alphas have a short range the windows are thin,
typically 1 mg/cm2 (or 0.25 mil plastic).
b. Some detectors have no window between the sample
and the detector; in this case there is a gas purge
system for gas proportional counters, or a light tight
housing for scintillators.
c. The alpha range is so short that self-shielding is often
significant, e.g. an alpha emitter buried in a filter may
be shielded from the detector by the fibers.
4. Types of Radiation
a. Some of the detectors discussed in objectives 1 and 2
are designed for alphas, some for betas, and some will
count both.
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b. Gamma spectroscopy is discussed in objective 3.
c. Most nuclides emit more than one type of radiation,
but beware of exceptions (like Be-7 or C-14).
Section 3
d. Beta background is greater than alpha, so alpha
detectors use pulse-height discrimination to
differentiate between alphas and betas.
e. Some gammas will generally be detected in these
detectors, but thin detectors have low gamma
efficiency, and lead shielding helps to reduce the
gamma background still further.
5. Operator Adjustable Controls
a. Counting room systems have a timer to allow the
operator to measure the number of counts per minute
(cpm).
b. The most common count time is 1 minute, but the
count time can be selected by the operator.
6. Sources
a. National Institute of Standards and Technology
(NIST) standard sources are used to check the
systems.
b. Common sources are:
1) Pu-239 for alpha
2) Sr-90 for beta
7. Procedures
a. Procedures generally include:
1) background count
2) source check
3) sample count
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4) background subtraction
5) divide by time to get cpm
6) correct for 4 pi efficiency to get dpm
7) record the data
B. Laboratory Counters or Scalers Objective 2.19.01
In this section, specific laboratory counters or scaler systems
are discussed, illustrating the general principles discussed
above.
1. Sample Holder SH-4 with HP210 and ESP
a. The simplest system for counting smears is the
portable contamination survey instrument, the
Eberline smart portable ESP with hand probe HP210.
ESP means Eberline Smart Portable. HP means Hand
Probe.
b. Recall from lesson 2.17 that the HP-210 probe is a
pancake GM detector with a thin (1.4 to 2 mg/cm2)
window, suitable for detecting beta contamination,
and alphas above 3 MeV. Window is thicker than
most alpha detectors, so probe must be < 1/4 inch
from source of alphas.
1) The HP210T is shielded with tungsten to reduce
gamma background.
Shield gammas with
high Z material.
2) The HP210AL is shielded with aluminum to
reduce beta background.
Shield betas with low Z
material.
c. The problem with using the HP210 for quantitative
measurements (e.g.to satisfy release criteria) is one of
ensuring a precise geometry.
d. The SH-4 sample holder solves this problem by
holding the sample in a fixed position directly under
the HP210 detector.
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2. Eberline Scintillation Alpha Counter SAC-4
a. The Eberline SAC-4 is a scintillation alpha counter.
S.A.C. is an acronym
1) The scintillation phosphor is ZnS powder on a
plastic light pipe.
2) The system is a self contained unit with the
detector and associated electronics housed in a
single unshielded box.
3) The detector and sample are both in a light tight
can, so no window is required between the ZnS
detector and the sample.
b. The system will accept samples up to 2 inches in
diameter by 3/8 inches thick. (Self shielding would be
a major problem with samples this thick.)
See lesson 2.03
1) The sample holder in the slide drawer is
adjustable. It can be moved closer to the detector
for thin samples.
2) The SAC-4 is calibrated with the sample holder in
a certain position, so if the sample holder is
moved, the calibration is no longer valid.
c. The electronic package consists of the high voltage
power supply used to power the photomultiplier tube
and determine its amplification, and a linear amplifier.
Amplifier output is 0 to 10 V
1) Only pulses with amplitudes above the
discriminator level will be counted. Discriminator
level is 1.25 V
Section 4
2) This will discriminate against betas because they
will produce smaller pulses.
d. The output from the discriminator is counted by a six
decade light emitting diode (LED) readout.
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1) The timing circuit is synchronized to the line
frequency (60 Hz) and provides preset counting
times from 0.1 to 50 minutes controlled by front
panel switches.
2) This scaler can also be operated in a manual mode
which will continue to count until reset by the
operator.
e. A Pu-239 source is used to check the system prior to
each operating shift.
1) Background counts are conducted as a part of the
performance check and to check for detector
contamination.
2) The detector and sample drawer are easily
removed for decontamination if required.
f. The gross count rate is obtained by dividing total
counts by the time in minutes.
1) Background counts (typically 0.3 cpm) are
subtracted from gross counts to obtain net counts
per minute (cpm).
2) The net count rate (cpm) is corrected for efficiency
to convert cpm to disintegrations per minute
(dpm).
See lesson 2.03
g. This counting system is used to obtain total activity
and the procedures are followed as described in the
SAC-4 manual. Each background, source count, and
sample count is documented and kept on file.
3. NMC PC-5 and PC-55 Nuclear Measurement
Corporation
a. The PC-5 and PC-55 systems use gas flow
proportional counters as the detectors.
1) The gas used is P-10 (90% argon and 10%
methane).
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2) The systems are self-contained units with the
detector and associated electronics housed in the
same box.
3) The PC-55 is used to count both alpha and beta.
4) The PC-5 may be manually adjusted to count
either alpha or beta. It is normally set to count
alpha only.
5) The determination of an alpha count or a beta
count is accomplished by pulse height
discrimination.
b. No external shielding is used.
1) Typical background for the unshielded detector is
2 cpm for alphas, and 60 to 100 cpm for betas.
c. The PC-5 and PC-55 have identical detectors, 2.25
inch in diameter.
1) They may be installed with thin plastic windows
with a thickness of 0.25 mil (0.00025 inch, 1
mg/cm2) or they may be installed with no window.
2) If there is no window, the operator must purge
with P-10 gas after inserting a sample and closing
the gas tight door.
d. Front panel controls allow for pre-set gas purge times
of 12, 36 and 144 seconds.
1) If the detector is installed with a thin plastic
window, the normal procedure is to flow the gas
continually.
Window is optional
e. The sample to be counted is placed in a 2 inch
diameter planchet and placed in the sample drawer.
1) The sample drawer then slides the sample under
the detector.
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2) Should the detector drawer or sample holder
become contaminated during counting, it is a
simple task to remove the detector and drawer for
decontamination.
f. The high voltage supply has a dual operating range of
300 - 1300 volts and 1300 - 2300 volts controlled
from a front panel voltage potentiometer. RCTs do
not normally adjust this.
1) The high voltage determines the optimum setting
to discriminate alphas from betas.
g. The count time is also set by front panel switches
providing pre-set counting times in 0.1 minute
increments up to 1000 minutes.
Section 5
1) In the automatic mode, the counter will count to
the pre-set time interval.
2) In the manual mode, the counter will continue to
count until manually reset.
h. Two sources are used to check the system for proper
operation.
1) The alpha source is Pu-239 electroplated on a
nickel disc.
2) The beta source is 90Sr/90Y (Strontium-90 and its
daughter, Yttrium-90).
3) These sources are traceable to NIST (National
Institute of Standards and Technology).
C. Low-background Automatic Systems Objective 2.19.02
1. In this section, several automatic counting systems are
discussed.
a. The principles are the same as in section 1 (objective
1).
b. The essential differences between the systems in
sections 1 and 2 are:
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1) Complexity of electronics
2) number of detectors or automated sample
changing
3) shielding to reduce background
2. Canberra 2400
a. The Canberra 2400 is a low background automatic
counting system.
1) The primary detector is a gas flow proportional
counter with a 2.25 inch diameter thin window,
used to count both alpha and beta activity.
Proportional counters use pulse height
discrimination.
2) A second larger proportional counter, the guard
detector, is used to count background.
3) The gas used is P-10 (90% argon and 10%
methane).
4) The system may also incorporate a NaI
scintillation detector, an option with the Canberra
2400 systems, to simultaneously count gamma
rays.
b. The sample detectors are surrounded by 4 inches of
lead shielding to reduce background.
1) Typical background is 0.1 to 1 cpm alpha, 1 to 5
cpm beta, and 100 to 400 cpm gamma.
c. Canberra 2400 systems are used principally to count
smears and filters.
1) Gross counts for each sample are processed in the
computer and converted to dpm.
2) Smear counts above preset limits are highlighted
and printed on a separate report.
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d. Performance checks are performed daily or prior to
system use. NIST traceable sources of:
1) Pu-239 (Plutonium),
2) Sr-90 (Strontium), and
3) Tc-99 (Technetium) are used.
e. The system has an automatic sample changer with a
dual stack that can handle up to 100 samples.
1) One stack holds the samples to be counted and the
other stack stores the samples that have been
counted.
3. Berthold LB770
a. The Berthold LB770 counting system is a low
background semi-automatic counting system.
1) The system uses eleven P-10 gas flow proportional
detectors;
2) ten detectors are used to count 10 radioactive
samples simultaneously,
3) the other detector is used to count background
radiation.
b. Each detector has a 2.25 inch diameter by 0.25 mil
(0.00025 inch) mylar window.
1) The detector bay is shielded with 4 inches of
epoxy coated lead.
2) Typical backgrounds are 0.1 cpm alpha and 1 or 2
cpm beta.
3) Typical counting efficiencies are 27% alpha and
42% beta.
4) The planchet is 0.25 inch deep, but a 0.25 inch
thick sample would cause major self-shielding
problems. Self shielding: see lesson 2.03.
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c. The Berthold systems are used primarily to count
smears or filters.
1) Both alphas and betas are counted simultaneously
in each detector.
2) Determination of alpha or beta activity is
accomplished by pulse height discrimination.
Section 6
3) The scalers in the Berthold systems are similar to
those used in the PC-55 but with more
sophisticated electronics that provide improved
pulse shaping from the linear amplifier and better
discrimination of both pulse amplitude and pulse
shape.
d. Plutonium-239 sources are used to check the system
for alpha and 90Sr/90Y sources are used to check for
beta. Yttrium-90 is the daughter of Strontium-90.
1) These sources are traceable to NIST
e. The Berthold system is controlled by a computer.
1) Both alpha and beta counts received from each
sample are corrected for background and reported
in one of three categories, to alert the operator.
2) If the count rate is below the minimum detectable
activity (MDA, see lesson 2.03) it falls into
category 1.
3) A count rate that falls within predetermined limits,
usually above MDA but below the limit for release
to a controlled area (RadCon table 2.2) is category
2. MDA stands for Minimum Detectable Activity,
see lesson 2.03.
4) A count rate that is higher than the upper limit is
category 3.
f. Background and efficiency data are collected for each
detector, stored and used for corrections.
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1) Pre-set count times are determined by the operator
and put into the computer.
2) The count rate data from each detector is corrected
and converted to dpm for output to the printer.
4. Liquid Scintillation Counters, LSC e.g. Packard 2550
a. Tritium and C-14 emit such low energy betas that
even a thin layer of air would stop the betas.
1) To detect this radiation, the sample must be in
intimate contact with the detection medium.
2) This is achieved with a liquid scintillation system.
b. A liquid scintillation counting system uses a
"cocktail" that immerses the sample in the counting
medium to maximize the detection efficiency for low
energy beta emitters.
1) This cocktail includes a liquid scintillator to
convert the energy deposited by low energy betas
into light photons, which are then counted using
photomultipliers.
c. The sample chamber, containing the sample vial and
photomultiplier tubes, is light tight.
1) Since stray electrons can be spontaneously emitted
from the photocathode, or by the dynodes in the
photomultiplier tube, two tubes are used with
coincidence circuitry to reduce this source of noise
called "dark current".
2) Typical background for beta is 20 cpm.
d. The LSC system is typically used to count tritium
samples from swipes, water samples, and oil samples
(vacuum pumps).
1) Tritium is also collected by drawing air samples
through silica-gel traps or glycol bubblers.
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e. To calibrate the system, a series of cocktails with
known amounts of tritium are prepared.
1) These sources are loaded into the first sample
holder (a tray of 10 sample vials).
2) The computer program calculates the detector
efficiency for each calibration source.
D. Gamma Spectroscopy Objective 2.19.03
1. The instruments discussed in objectives 1 and 2 are
designed to detect alphas and/or betas, and make a gross
count of total alpha and beta activity.
a. In order to identify specific radionuclides, the unique
spectrum of energies particular to each radionuclide is
used.
b. This technique is known as spectroscopy.
Section 7
2. Alpha emitters (e.g. Th, U, Pu, Am and their daughters)
have characteristic alpha energies, but alpha spectroscopy,
detecting the alphas directly, is not optimal, because the
energy loss of alpha particles between the sample and the
detector smears the energy spectrum.
3. Gamma spectroscopy usually uses germanium detectors
(GeLi or HPGe) because the good resolution obtained
with these detectors enables gammas with nearly the same
energy to be distinguished or resolved.
4. EG&G Ortec Gamma X
a. The Gamma X Spectroscopy system uses an HPGe
coaxial photon detector to perform gamma and x-ray
spectroscopy in the energy range from 3 keV to 10
MeV.
b. Detector Type
1) The detector is made of n-type high purity
germanium semiconductor (HPGe).
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2) A 30 liter dewar of liquid nitrogen (LN2) is used to
cool the detector.
c. Detector Shielding
1) The detector is shielded by 4 inches of pre World
War II steel.
2) This steel is used when a low background is
desired as it was manufactured before radioactive
fallout from nuclear weapons appeared in trace
quantities.
3) A sample holder inside the shield allows the
sample to be positioned at distances from less than
1 cm up to 40 cm from the detector end cap.
Artificial radioactivity is discussed in Lesson 1.06.
d. Detector Window
1) The detector window is 0.5 mm thick beryllium.
e. Types of Radiation Measured
1) The gamma spectrometer is designed to detect
gammas and x-rays from alpha emitting nuclides,
and sort the data in a multi channel analyzer to
produce a spectrum that is characteristic of the
nuclide.
2) The peaks in the spectrum are close together, so
excellent resolution is required to distinguish the
peaks.
3) Typical resolution from a germanium
semiconductor detector (HPGe or GeLi) is better
than 1%, which means that if the photon energy is
100 keV, the width of the peak is less than 1 keV.
4) Photons from two different nuclides that are 1 keV
apart will be seen as two distinct peaks.
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f. Procedures
1) Energy and efficiency calibrations are obtained
using two different sources that are NIST
standards.
2) These are mixed sources that contain several
gamma emitting nuclides.
3) One source contains isotopes of Americium (Am),
Antimony (Sb), and Europium (Eu).
4) The second mixed source contains isotopes of
Cadmium (Cd), Cerium (Ce), Cobalt (Co),
Strontium (Sr), Tin (Sn), Cesium (Cs), and
Yttrium (Y). These sources provide several
calibration energies.
5) The energy and efficiency calibration values are
then used by the analysis software.
6) Specific procedures are written to direct the
operator through the sample and computer setup,
and the computer analysis.
7) The original copy of the results is kept on file for 1
year and then archived for 75 years.
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III. SUMMARY
A. Review major points
1. General principles
2. Laboratory counters or scalers
3. Low-background automatic systems
4. Gamma Spectroscopy
B. Review learning objectives
IV. EVALUATION
Evaluation should consist of a written examination comprised of
multiple choice, fill-in the blank, matching and/or short answer
questions. 80% should be the minimum passing criteria for
examinations.
Module Number: 2.19