Document jmgnOjpwnZ0eX52q98qGx97OO
OCT 18 1902
Acorn Park Cambridge, Massachusetts 02140 617 864-5770 Tele* 921436
/ti Arthur D. Little, Inc
October 12, 1982
Mr. James Kuikstad 3M Center Building 220 - 7W St. Paul, MN 55144
Dear Mr. Kuikstad:
Enclosed is a copy of the slides for my presenta
tion of "Acceptance or Diffusion Dosimeters Among
Industrial Hygienists', at the Cincinnati AIHA meeting
in June.
If you have any pestions regarding this material
please don't hesitate so contact me.
Sincere!
ERH:w Enc.
E. Robinson Hoyle
Brussels Houston London Madrid
Paris Rio de Janeiro San Francisco Sao Paulo
Tokyo Toronto Washington Wiesbaden
3M 105965
DIFFUSION DOSIMETER USER SURVEY Presented by R.S. Strlcoff and E.R. Hoyle Arthur D. Little, Inc. Cambridge, MA 02140
3M 105966
PRINCIPLE OF PASSIVE DOSIMETERS 1. Contaminant enters dosimeter by diffusion and/or
permeation. The diffusional sampling rate is defined by Fick's First Law of Diffusion or: W = DA/L (C-C0)t if C0 - 0 w = Weight of contaminant c = Concentration t = Sampling time D = Diffusional coefficient A = Geometric area of chamber L = Geometric length of chamber
3M 105967
PRINCIPLE OF PASSIVE DOSIMETERS 2. Adsorbed onto activated charcoal 3. Solvent desorbed and analyzed 4. Exposure time and concentration determined amount
adsorbed
3M 105968
TYPES OF AVAILABLE DIFFUSION DOSIMETERS
Organic Vapors Nitrogen Dioxide Formaldehyde Carbon Monoxide Chlorine
3M, DuPont, MSA, NMS DuPont, MDA, Leak-Tec DuPont, 3M 3M, Leak-Tec Span, Leak-Tec
ADVANTAGES OF PASSIVE DOSIMETERS 1. Small and lightweight (e.g., improved wearer acceptance) 2. No calibration or maintenance (e.g., recharging batteries,
etc.) 3. Little training necessary for sampling personnel 4. Easy for I.H. to sample large population for exposures
3M 105970
Stricoff, R.S. and C. Summers, An Evaluation of Organic Vapor Passive Dosimeters Under Field Use Conditions, 1980.
3M-OVM and Abcor differed slightly from charcoal tubes at low contaminant concentrate loadings and for short durations.
Hickey, J.S. and C.C. Bishop, Field Comparison of Charcoal Tubes and Passive Vapor Monitors with Mixed Organic Vapors, 1981.
"...reliably assayed low concentrations of mixed vapors of 20 of the chemicals mentioned equally as well as charcoal tubes, under the conditions encountered."
3M 105972
Jeannot, P.M., B.G. Ward, and D.M. Quick, A Laboratory and Field Study of Commercially Available Passive Dosimeters for Organic Vapors, 1981.
Found a 10-17% variation between their field and iaboratory data and a manufacturer's laboratory data.
"...that there remains an unexplained bias in the performance of these devices."
CONCLUSIONS FROM CURRENT LITERATURE' The existing field and laboratory data are
incomplete (e.g., experimental derivation of diffusion coefficients). Very little negative data to discourage potential dosimeter users.
3H 105974
OBJECTIVES OF USER SURVEY Evaluate diffusion dosimeters' usage patterns in industry. Diffusion dosimeters' significance with respect to the industrial hygienist's routine air sampling protocol.
3M 105975
SURVEY POPULATION -- INDUSTRIAL HYGIENISTS Certified by the American Board of Industrial Hygiene. Employed in fields other than government, consulting, academic and insurance.
3M 105976
Survey Population Survey Response
640 211 (33%)
3H 105977
JOB DESCRIPTION
Corporate level I.H. Division level I.H. Location level I.H. Other
51% 28% 16% 5%
3M 105978
INDUSTRY CLASSIFICATION
Chemical Primary Metal Electrical/Electronic Fabricated Metal Petroleum Rubber/Plastic
32.7% 10.4% 9.4% 6.2% 5.2% 5.2%
3H 105979
LOCATIONS RESPONDENTS PROVIDED I.H. SERVICE
< 10 10-24 25-49 50-99 100 +
44% 20% 13% 9% 14%
3M 105980
DOSIMETER USE
Organic (charcoal based) Inorganic (non-charcoal based)
75.8% 39.8%
ORGANIC DOSIMETER USE (75.8%) BY NUMBER OF EMPLOYEES
< 100 100-799 800-1,999 2,000-3,999 4,000-7,999 8,000-14,999 15,000 +
1.3% 4.4% 11.9% 15.6% 18.1% 11.9% 36.9%
3M 1059S2
Have you tested organic dosimeters in the laboratory?
YES 68.8% NO 31.2%
70.0% Acceptable 30.0% Inadequate
1^
3M 1059S3
Indicate your experience with field tests of organic vapor diffusion dosimeters.
Adequate
56.2%
Inadequate or Inconclusive
33.0%
3H 105984
LABORATORY TESTS VS FIELD TESTS
Laboratory Test Results
Acceptable Worth Field Test
Field Test Results Acceptable Inadequate
42 (70.0) 0 (0.0) 42
15 (25.0) 3 (5.0) 18
57 3 60
3H 105985
Do you routinely use organic vapor diffusion dosimeters for sampling?
Benzene Acrylonitrile Chlorinated Hydrocarbon
(solvents) Aromatic Hydrocoolant
37% 11% 54%
64%
3M 105986
Do you follow-up high levels measured on organic vapor diffusion badges with charcoal tube and sampling pump?
Always Usually Sometimes Rarely Never
23.7% 19.4% 25.0% 8.7% 10.0%
3M 105987
Which one of the following statements best expresses your opinion of the value of organic vapor diffusion dosimeters?
Reliable and useful
46.9%
Reliable, but reluctant to use until OSHA/NIOSH approval
25.6%
Undecided
18.7%
Unreliable
6.9%
3M 105988
Which one of the following statements best expresses your opinion of the value of inorganic vapor diffusion dosimeters?
Some unreliable, some reliable 33.3%
Reliable and useful
26.1%
Undecided
25.0%
Reliable, but reluctant to use until OSHA/NIOSH approval
8.3%
Unreliable
3.6%
3M 105989
Do you follow-up high levels measured on inorganic vapor diffusion samples with confirmatory sampling by another method?
Always Usually Sometimes Rarely Never
11.9% 20.2% 21.4% 14.3% 15.9%
3M J05990
CONCLUSIONS
Diffusion dosimeters have been widely tested by certified industrial hygienists.
Diffusion dosimeters are generally accepted to evaluate the work environment.
However, the respondents did not rely exclusively upon diffusion dosimeters, with the majority using other methods to confirm exceptional dosimeter results.