Document 5LQ5a4gN9jn57ja15ZQw04D15
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ESTABLISHING EXPOSURE TO VINYL CHLORIDE VAPOR BY BREATH ANALYSIS AND CONTINUOUS ENVIRONMENTAL SURVEILLANCE
By Edward D. Baretta*, Richard D. Stewart, M.D.*,
and John E. Mutchler**
Department of Environmental Medicine, Marquette University School of Medicine, Milwaukee, Wisconsin
Environmental Health Section, Biochemical Research Laboratory, The Dow Chemical Company, Midland, Michigan
For Presentation At The - American Industrial Hygiene Conference
St. Louis, Missouri May 13-17, 1968
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ABSTRACT An environmental survey was conducted to determine the time-weighted > average exposure (TWA) of a group of chemical plant workers to vinyl chloride (VCl) vapor. This survey featured continuous multipoiht air sampling and analysis using an infrared spectrophotometer. The Inhalation exposure data were digitized and recorded on paper tape for subsequent computer analysis and derivation of daily TWA values for each worker. A breath sampling program was conducted concurrently with the environmental survey, and a series of breath decay curves relating post-exposure breath concentration to vapor exposure were derived from the data. To validate the breath curves derived from on-the-job data, post-exposure breath curves were also constructed from breath data obtained following human exposures to controlled concentrations of VCl vapor. The close agreement between post-exposure breath concentrations at the corresponding iWA's obtained by each of the methods suggests that either method is valid for estimating the worker's individual daily exposure to VCl, and provides further
evidence that breath analysis is a useful industrial hygiene
technique for evaluating exposure to vinyl chloride vapor.
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INTRODUCTION ---The question that may arise following an environmental survey is whether the chemical vapor concentrations measured are truly representative of the exposure being experienced by the workmen. Evaluation of the ranges of atmospheric concentrations a!nd estimates of time-weighted average concentration (TWA) are all too often based on a few spot samples obtained under conditions which are not representative of all phases of a given operation. Necessarily, a true picture of vapor exposure would have to be based upon continuous monitoring of air in the workman's breathing zone during his entire workshift. Obviously, even when possible, this task is made difficult and often impossible by the large -number__and,,,varie.ty_ of Jbasks performed by today's modern chemical plant worker.
.Fortunately, improvements In automatic monitoring and data processing equipment have provided the means to a more satisfactory solution. Sequential samplers and automatic analyzers and recorders can now be used to monitor several locations or operations simultaneously, thus providing much more valid data on which to base estimates of chemical exposure. The application of computer technology to.industrial hygiene provides a means of managing the large volume of data generated by continuous monitors.1
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-Meanwhile, a supplementary technique of measuring -inhalation exposure has been developed. The realization that the body burden of a volatile chemical that is excreted to some extent via the lungs is directly related to its concentration in expired air led to the development of techniques for collecting and analyzing breath samples to better personalize the exposure experience of individual workmen. Studies by Stewart, et al., showed that exposures could be characterized by measuring the concentration of vapor in the breath at various time Intervals following exposure, and comparing these against breath decay curves already established. Thus, breath decay curves have been constructed for several common solvents for use in judging the severity of chronic or acute exposure to volatile organic chemicals. 2^4'56*
These breath decay curves were, for the most part, constructed from data obtained from controlled human exposures to relatively constant vapor concentrations. More recently, however, breath sampling programs have been used in the chemical plant and data obtained by analysis of the breath of workers following their workshlfts were combined with data from an environmental survey to
7 construct additional sets of breath decay curves.
In this study of human exposure to vinyl chloride (VCl) vapor, breath decay curves obtained by each of the above methods, controlled human exposures and on-the-job breath sampling were for the first time compared in an attempt to judge their equivalence and to demonstrate whether:
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--(1)--Either method can be used to establish " useful breath decay curves;
(2) These curves provide a reliable Index for ........... -evaluating the time-weighted average exposure
of workers exposed to VC1 vapors;
(3) Breath analysis, because of its usefulness in establishing TWA, might be use'ful as a rapid diagnostic tool, as a screening aid when used in conjunction with regular health inventory programs, or as a technique complementing the industrial hygiene survey in assessing exposure to VC1 and other vapors.
ENVIRONMENTAL SURVEY AND BREATH SAMPLING FOLLOWING ON-THE-JOB EXPOSURE
Monitoring the Plant Atmosphere The chemical installation surveyed was a closed structure
housing several separate chemical processing operations. A Job survey was first conducted for each of four Job classifications to determine the work areas frequented by men in them and the time spent in each area. For each classification, five sampling probes
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were then strategically placed in those areas which best represented
the workman's exposure day. A sixth probe was placed outside the
building and charcoal and silica gel filters were placed in the sampling line to assure a clean air reference. The sample probes
consisted of 3/8-inch Saran tubing through which air samples were
drawn by means of a vacuum pump to a centrally located infrared
spectrophotometer. The sampling rate was adjusted to an air flow
of 17-5 liters/min. The spectrophotometer was equipped with a
10-meter path-length gas cell and was capable of detecting 5 ppm VC1.
By previous calibration, the VC1 concentration was directly proportional
to absorbance up to about 1,000 ppm at the measured wavelength,
LO.63 M-* A schematic diagram of the sampling system is shown in
Figure 1. Sampling was executed sequentially with a set of six
two-way solenoid valves controlled by a timer which advanced the
sampling location every five minutes. A visual account of transmittance was recorded on a strip chart recorder. Meanwhile,
the data were recorded in digital form on paper tape by a tape punch and digitizer programmed to record three equally spaced
transmittances during the last half of each five-minute sampling
p riod.
The transmittance data furnished by the spectrophotometer
was converted to absorbance and reduced to concentration according
to Beer's Law:
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Where: X1 = base line response X * response at total absorption *= response at location i 1 = 2, 3, 4, 5, 6.
Finally,
Concentration = K (Absorbance)
Where K = a proportionality constant. The taped data were processed by a Burroughs 5500 Computer -at The Dow Chemical Company Computation Research Laboratory. The computer was used to calculate the mean and standard deviation of concentrations at each location for each eight-hour workshift. Finally, time-weighted average concentrations were calculated for ach job classification using the time-location data obtained from
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from the Job surveys. As described elsewhere*, the weighted i
per cent of time during which concentrations exceeded several pre chosen levels was also computed for use in establishing exposure profiles.
Figure 2 describes the exposure profiles (frequency distributions) for the four Job classifications studied during this survey. These profiles show the percentage of time that concentrations exceeded the levels shown. They summarize several tends of thousands of individually measured concentrations and reduce them to single curves. Figure 3 shows the corrective trend brought about by actions undertaken to reduce the atmospheric concentration of VC1 over the seven-month period during which the study was conducted. Only two Job classifications warranted extensive study, but men in all four classifications were asked to participate in the breath sampling program.
Breath Sampling Programs Three separate breath sampling programs were conducted
concurrently with the environmental plant survey, as shown by the boxed portions in Figure 3. Each worker was asked to collect three breath samples daily, the first on his arrival home from work, the second 5-10 hours later and a final sample before returning to work the following day. The samples were collected by providing each man (on a daily basis) with three breath pipettes. The pipette3
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were constructed"from "short lengths of 20 mm soft glass tubing to which had been welded at each end, the threaded portion of a 2-dram (8 ml) screw-cap glass vial (Figure 4). The overall length of the pipette was about 9-inches so it could be conveniently and inconspicuously transported to and from work in a lunch bucket.
The plastic caps were lined with six layers of Saran film identical to that used for the construction of Saran air sampling
g bags . A 3/32-inch hole, predrilled through one of the caps provided a means of withdrawing samples. The Saran liners provided an effective gas barrier so that vapor losses were held to less than 10$ for a holding period of about three days.
---------Samples-were drawn from the pipettes with a 1 ml Hamilton gas-tight syringe and analyzed in an Aerograph A-600B gas chromatograph using N2 carrier gas and a hydrogen flame detector. Separations were made with a 6-foot, l/8-lnch I.D. stainless steel column packed with Carbowax 20M alkaline on Chromosorb W 60/80 mesh acid washed.
When collecting a sample, the subject was asked to remove the caps, place the pipette to the lips, and breathe normally in -through-the .nose and out through the pipette three times, then to expel the fourth breath completely through the tube, quickly capping the tube, thus trapping alveolar air of the lungs. The importance of writing the name, date, exact time of sampling, and the workshift most recently completed, on the label attached to each pipette, was stressed.
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CONTROLLED HUMAN EXPOSURES
Exposure Chamber operation Three experimental human exposures to VC1 were conducted
--at nominal concentrations of 50, -250, and~500 ppm. The exposure chamber was a room measuring 4l~ft by 6-ft by 7 l/2-ft. The room had, a,,,continuous j>ositive air . supply and exhaust system capable of maintaining a slight negative pressure. Continuous distribution of the chamber air was achieved by'recirculating the air with a squirrel cage fan through a series of inlet and outlet ducts spanning the length of the chamber. The VC1 vapor was metered into the duct leading from the squirrel cage fan so that it entered the room atmosphere via the recirculation system at a rate sufficient to maintain the desired atmospheric concentration. VC1 was introduced into the system from a pressurized cylinder through a coll made from 6-feet of l/8-inch I.D. stainless steel tubing leading through a rotometer and finally through a short piece of rigid Saran tubing into the circulating air duct. A heating tape
-- wrapped around the stainless steel tubing helped to prevent condensation and thus stabilize the flow of the vapor. The concentration of VC1 in the chamber was constantly
-monitored with a Perkin-Elmer Infrared Spectrophotometer equipped with a 10-meter path-length gas cell. A sampling probe, consisting of 3/8-inch Saran tubing was centrally located during the exposure
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--to represent the breathing zone of all subjects within the chamber. This probe was portable, however, and was used periodically to check and to prevent significant concentration gradients within the chamber. Breathing zone air samples were collected in breath pipettes and analyzed periodically as a check against the infrared monitor. Both the infrared spectrophotometer and gas chromatograph were calibrated before each experiment and at intervals throughout the exposure day.
Each 7 1/2-hour exposure day included a l/2-hour lunch period in an uncontaminated area outside the exposure chamber midway between two 3 l/2-hour exposure periods. The TWA --.concentrat ion was calculated on the basis of a 7 l/2-hour workshift to more closely agree with the plant work schedule.
Clinical and Laboratory Procedures Each subject had been under careful medical surveillance
by the medical department for a number of years and each was given a complete medical examination a few days prior to the VC1
xposures. Included were complete (24-hour) urinalysis. Including hlppurlc and mendalic .acids, and urobilinogen, complete blood count, including sedimentation rate and reticulocyte count, SGOT, and SGPT.
Each subject received a repeat physical exam one hour before entering the exposure chamber. This examination included
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temperature, blood pressure, pulse rate, neurological examination, breath and blood samples, and a questioning concerning any personal complaints (e.g., headache, nausea, sore throat).
After entering the chamber, total expired breath samples were collected every hour by having the subject breathe out through a Saran tube leading to a Saran plastic collection bag located outside the chamber. Tidal volume and total expiratory capacity were measured in the morning and again late in the afternoon exposure periods.
Subjective and neurological responses were measured upon entering the chamber at 15 minutes and at hour intervals thereafter Plannagan Coordination and Crawford Manual Dexterity Tests were conducted in the mid-morning and afternoon hours. Breath sampling commenced immediately upon leaving the exposure chamber. A cumulative 24-hour urine sample was collected and a blood sample was drawn the following morning for SGPT, lactase dehydrogenase, alkaline phosphatase, blood urea nitrogen, creatinine and bilirubin
Effects Prom a subjective standpoint no significant untoward
effects were noted at any of the exposure concentrations. The cnly complaints were those of two subjects who reported headache and some dryness of the eyes and nose during the 500 ppm exposure experiments.
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No, odor was detected by anyone entering the exposure chamber at 50 ppm. At 250 ppm all four subjects entering the chamber initially reported that they could detect a very slight odor of the chemical. Five of the seven subjects entering the exposure chamber at 500 ppm were able to detect the odor of VC1, however, even those five were unable to detect it even with forced inspiration 5 minutes after the onset of exposure. Three of four subjects reentering the chamber after lunch were able to detect a faint odor of VC1. One subject could detect a faint odor upon deep inspiration up to about 15 minutes after entering the exposure chamber.
The exposure had no noticeable effect on neurological Responses or in the results of mental coordination or manual dexterity tests conducted during the exposure period. All clinical laboratory studies performed in the post-exposure period were normal and unchanged from pre-exposure values.
The concentration of VC1 in the exhaled breath of subjects within the chamber was not significantly different from that concentration present in the exposure chamber at the time the measurements were made. From past experience it has been noted that
xhaled breath concentrations are significantly lower than ambient, concentrations when the subject vapor is either easily and rapidly metabolized by the body, e.g., benzene, styrene^, alcohols, etc..
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or when it has a low vapor pressure and is extremely soluble in the blood fat and body tissue, e.., carbon tetrachloride, chloroform, tetrachloroethylene. We assume from this observation that vinyl chloride rapidly comes to equilibrium with the blood and body tissues and probably is neither rapidly metabolized nor readily retained by the body tissues.
BREATH DATA ANALYSIS
The decay curves for the vinyl chloride concentrations
in the breath were constructed by step-wise multiple regression using
a digital computer. An empirical relationship of the form
Cone = f (TWA, TIME) was selected from a choice of several terms,
each based on TWA and/or TIME. The resulting regression equation
best represents the ordered relationship between breath vinyl
chloride concentration, time-weighted average exposures, and post-
xposure time.
''
The breath decay curves each have an associated standard
error of regression which can be used to compute the confidence
band for any chosen level of significance. The 95# confidence
---------band for the mean of a group of observations was chosen in this
case to describe the statistical error associated with the breath
data and the regression technique.
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BREATH DECAY CURVES
Controlled Exposures A total of 13 men participated in the three controlled
chamber exposures at nominal concentrations of 50, 250, and 500 ppm producing a total of 160 valid breath data points. Five of the six subjects exposed to 50 ppm were reexposed at 500 ppm two days later. There was no measurable residual vinyl chloride detected on the breaths of the subjects prior to the second exposure. Serial breath sampling was Initiated immediately upon leaving the exposure chamber and continued up to 20 hours following the exposures.
Table I shows the analyzed concentration to which the subjects were exposed. Calculations of the mean and standard deviation of exposure concentration are based on chart readings from the infrared spectrophotometer taken at 5-niinute intervals over the two 3 l/2-hour exposure periods. The TWA is for the total 7 l/2-hours which includes the l/2-hour lunch period in an uncontaminated atmosphere.
The final breath decay curves intended for use as an index to VC1 exposures were adjusted to TWA concentrations of 50, 250, and 500 ppm (Figure 5). A 100 ppm decay curve was interpolated from the available data using regression analysis. These curves are presented with the calculated 95$ confidence bands for the mean of a group of observations.
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Plant Survey t Ten workmen participated in the plant breath sampling
program, producing a total of 91 usable sets of data. Ten per cent of the breath samples collected were discarded because of pipette leakage, faulty seals, and poor sampling techniques.
Absolute breath levels range from about 20 ppm in one sample taken less than one hour after an eight-hour TWA of 250 ppm to barely detectable levels (0.03 ppm) in samples taken after exposures at TVA's below 50 ppm.
The extremely broad day-to-day variation in the TWA's experienced by workmen during the period in which the breath sampling program was being conducted is demonstrated for three shifts of men bearing job classification "Coagulator Operator" in Figure 6. This illustration is presented to point out the fallacy of judging TWA's on the basis of spot sampling techniques. Even with continuous sampling, astute judgment and some educated guesswork may be required in estimating the degree of hazard encountered by a workman in the area.
The remarkable correlation between breath concentration and TWA made it possible to construct the series of breath decay curves shown in Figure 7, with confidence bands only slightly wider than those from controlled human experiments. The close similarity between these curves and those constructed from controlled exposure
data are further illustrated in Figure 8.
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CONCLUSIONS
The object of the environmental health survey is to identify the atmospheric contaminants, determine their concentration and to relate this to the health hazard, if any, which they present. If one is to Judge hazard by concentration measurements then those measurements must accurately describe the exposure on a continuing personal basis. A carefully conducted survey combining continuous analysis of work room atmosphere with a comprehensive Job study has certain benefits. For example, data useful in describing the exposure hazard, both chronic and acute, are obtained. Concurrently, information useful in establishing cycles or exposure trends may help to reveal operational inefficiencies and equipment malfunctions. Correcting these problems not only restores a healthful work environment, but often results in bonus savings by reducing raw material and product losses.
As a complementary technique, breath analysis has the advantage of personalizing each worker's Integrated daily exposure; however, some basis of comparison is needed in order to establish an exposure level from breath decay data. A reliable index of exposure in the form of pre-established breath decay curves makes it possible to estimate the average daily exposure of workmen on the basis of a few breath samples taken serially in the post-exposure period. This information can be used to provide the same health and economic advantages already cited.
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-The decay curves presented by the authors are intended i as an index of exposure for vinyl chloride and are based on an exposure duration of 7 l/2-hours for the controlled exposures and 8 hours for the on-the-job study. Similar indices in use, or in various stages of development, reflect the need for similar studies with others of the more widely used organic chemicals.
Certain vapors having extremely high solubility in the blood, fat and body tissue, and especially those which are not easily metabolized have a slight cumulative effect so that the increase in body burden may be detectable by a gradual upward shift in the breath decay curves following repeated daily exposures until a steady ____ state is reached. In the case of vinyl chloride, the body burden is extremely low by the end of a normal l6-hour decay period so that breath decay curves on succeeding days of exposure are not noticeably affected.
There were no significant changes in either clinical or laboratory findings resulting from the controlled single human exposures lasting up to 7 l/2-hours to 50, 250, and 500 ppm VC1. "Neither were there complaints nor changes in neurological responses ___ which could be attributed to exposures at these concentrations. Odor was not detectable upon entering the exposure chamber at 50 ppm. Although a slight odor was detected by most subjects at 250 and 500 ppm, olfactory fatigue was quite rapid and the odor could no longer be preceived within five minutes following the onset of exposure.
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Table I
CONTROLLED HUMAN EXPOSURE TO VINYL CHLORIDE
Number Of
Subjects
TWA 7.5 hrs
(ppm)
6 48
4 248
4 459
7 (3.5 hrs) 491
Actual Chamber Cone, (ppm),, 7 hrs
Std
Mean -- Dev
59 +
2
261 +
8
493 +
7
`491 +
5
Range Hi Lo
65 53 289 243
518 471
525 475
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-------REFERENCES
1. Peterson, J. E., Hoyle, H. R., Schneider, E. J.: nThe Application of Computer Science to Industrial Hygiene," Am. Ind. Hyg. J., 27:180 (March) 1966.
__2. _-Stewart, R. _D., Gay, H. H., Erley, D. S., Hake, C. L., Schaffer, A. W.: "Human Exposure to Tetrachloroethylene Vapor: Relationship of Expired Air and Blood Concentrations to
- Exposure and Toxicity," Arch. Environmental Health, 2:516-522 (May) 1961.
3. Stewart, R. D., Gay, H. H., Erley, D. S., Hake, C. L., Peterson, J. E.: "Observations on the Concentration of Trichloroethylene in Blood and Expired Air Following Exposure of Humans," Amer. Ind. Hyg. Assoc. J., 23:167-170 (April) 1962.
4. Stewart, R. D., and Rowe, V. K.: "Qulnze Ans D'Etudes Sur Le 1,1,1-Trlchloroethane," Archives Des Maladies Professionnelles, 28:194-201, 1967.
__ 5^.__ Stewart,-R. D.r -Dodd, ~H. C., Baretta, E. D., Schaffer, A. W.: "Human Exposure to Styrene Vapor," Arch. Envlr. Health (in press).
6. Stewart, R. D., Dodd, H. C., Baretta, E. D., Gay, H. H.: "Experimental Human Exposure to Tetrachloroethylene," presented at the National AIHA Conference, May 1-5, 1967, Chicago, Illinois (manuscript in preparation).
7* Stewart, R. D., Dodd, H. C., Baretta, E. D., Schaffer, A. W., Mutchler, J. E.: "Chronic Overexposure to Benzene Vapor," presented at the Sixth Annual Meeting of the Society of Toxicology, March 23-25, 1967, Atlanta, Georgia (manuscript in preparation).
8. Saran bags. Supplied by R. E. Allen, Inc., 233 West Ohio Street, Kenton, Ohio.
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Figure 1. Schematic diagram of infrared sampling system.
Figure 2. Exposure profiles expressed as concentration versus exposure frequency"distribution for "four Job~classifieations.
Figure 3* Weekly mean TWA exposure levels measured during the survey.
Figure 4. Breath sampling pipette used to collect samples for 0. c. analysis.
Figure 5* Breath decay curves based on controlled human exposure to 50, 250, and 500 ppm VC1 (7-5 hours).
Figure ~6. "Daily and shift variations in exposure concentrations ("Coagulator Operator").
Figure 7* Breath decay curves. Constructed from breath data collected from workers during environmental survey (8 hours).
Figure 8. Comparison of breath decay curves derived from plant survey data with those from controlled human exposures.
Table I.
Chamber concentrations and TWA calculated on the basis of 7.5 hour work day including an 0.5 hour lunch period in an uncontaminated atmosphere.
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SCHEMATIC DIAGRAM OF THE INFRARED MONITORING SYSTEM
6 TIME-WEIGHTED MEAN EXPOSURE * O.OI ) C; P;
L --i 1=2
Where Cj mean concentration at Station i Pj = per cent of time spent at location i during norma! work activity
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TIME-WEIGHTED % OF TIME THE CONCENTRATION EXCEEDED THAT SHOWN
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WEEKLY MEAN EXPOSURE LEVELSj MEASURED DURING SURVEY
-J .
DECEMBER JANUARY FEBRUARY MARCH
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APRIL
MAY
JUNE
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240
---- 220
200
~Q
180
Q
160 *--
140
O O
--o o
o
0o
oo o
120-
TIME-WEIGHTED MEAN CONCENTRATION, PPM
8060 40
O SHIFT ONE -O-SHIFT--TWO
O SHIFT THREE Q ALL SHIFTS
d
DAILY VARIATION AND SHIFT VARIATION B'JR^G
-A-TY PICA L17 E EKrLi EA N
EXPOSURES, COAGULATOR OPERATOR
20 -
or> oi OA oz
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j
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Instruct! ns f r Using BREATH SAMPLING PIPETTE
-1. FLUSH THE PIPETTE
a. Remove the screw caps from each end b. Place one of the open ends of the pipette in your
mouth & hold one of the caps in your free hand __ c._Flush_the_pipette by exhaling through it ihree
times
2. CAP THE FAR END
a. At the very end of the fourth* expiration cap the outlet (open) end of the pipette
3. CAP THE NEAR END
o. Remove the pipette from your mouth and immediately seal the open end with an index finger or thumb
b. Screw the remaining cap in place
4. SEAL & LABEL THE PIPETTE
--------- a. Tighten both caps securely so that the special saran cap liners will seal
bTLabel the pipette as illustrated:
Name
_________
Date
_________
Time 'J'. ltO P. m.
Exposure to
_________
Date
From S,:ooamTo /'Jo
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-SEE INSTRUCTIONS REVERSE SIDE
INSTRUCTIONS FOR THE USE OF THE BREATH SAMPLING PIPETTE
EACH STYROFOAM PACKET CONTAINS THREE HREATH SAMPLING PIPETTES. UNTIL THEY ARE USED THE PIPETTES SHOULD BE STORED 1*N^N AREA_WIjICn_JS_NC)'r CONTAMINATED WITH THE GAS OR VAPOR FOR WHICH ANALYSIS IS DESIRED.
THE TIME OF THE BREATH COLLECTION FOLLOWING AN EXPOSURE IS CRITICAL AND VARIES WITH THE MAGNITUDE OF EXPOSURE AND THE BIOLOGIC HALF LIFE OF THE COMPOUND IN QUESTION. IF YOU ARE NOT OTHERWISE INSTRUCTED, COLLECT THE FIRST SAMPLE IN AN UNCONTAMINATED AREA 15 MINUTES FOLLOWING THE EXPOSURE. COLLECT A SECOND BREATHJSAM.PLE 4_TO_6 HOURS LATER, AND A THIRD BREATH SAMPLE 12 TO 24 HOURS LATER.
TO INSURE ACCURACY IN THE INTERPRETATION OF THE RESULTS A CONTROL BREATH SAMPLE SHOULD BE OBTAINED FROM A PRE VIOUSLY UNEXPOSED SUBJECT IN THE SAME UNCONTAMINATED AREA WHERE YOU COLLECT YOUR SAMPLE.
'MAILING INSTRUCTIONS REPLACETHE PIPETTES IN THE CONTAINER AND RETURN IT
VIA AIR MAIL WHEN YOU HAVE COMPLETED THE COLLECTIONS.
PLEASE RETURN TO:
MEDICAL RESEARCH LABORATORY
THE DOW CHEMICAL COMPANY BUILDING G07 P.O. BOX G12 MIDLAND, MICHIGAN
See insU'iu tions Reverse Sifle
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