Document QgDwyGbr9XDgddmkJvVy5yk76
S.T0036565
Asbestos monitoring
By Walter C. McCrone
sbestos is considered by most authorities to
yield filter samples that can be confidently evalu
Abe one of the major occupational health and safety problems in the world today. Al
ated by phase contrast microscopy (PCM). Methods exist for the identification and quantita
though asbestos is no longer used in newly construction of asbestos in both bulk and air samples. Stain
ted buildings, most old buildings contain large
ing methods, x-ray diffraction, infrared absorption,
quantities of asbestos. The first problem a building
and differential thermal analysis have all been used
owner faces today is to determine if a potential haz
for asbestos identification, but these nonmicrosco-
ard exists; in other words, whether there are asbes pical methods usually require orders of magnitude
tos-containing materials within the building. This
larger samples than microscopical methods --
involves bulk sample analysis by polarized light mi
micrograms versus nanograms. This may not be a
croscopy (PLM) on insulation and other building
problem for bulk samples, but it would be difficult
materials from all likely sources. Based on these re for air filter samples. Thus it seems likely that most
sults, decisions can be made regarding sealing of the
analytical chemists would agree that one of the
asbestos source to prevent contamination of the
microscopes (polarizing, scanning, or transmission
building air or removal of the asbestos. If the choice electron) would be the method of choice. There are
is removal, that operation must be carried out with
strong advocates in each of these camps and it is
great care to avoid hazard to the workers and sur
very difficult, especially for a building owner or re
rounding population and to make certain that once
moval contractor, to evaluate the claims made by
removal is completed, the building is "clean."
each.
Again, air filter samples and the monitoring of
Personnel at McCrone Associates in Chicago and
those filters for the presence of asbestos are re
Atlanta and at McCrone Research Associates in
quired at this stage. "Aggressive" air sampling will
London over the past 15-20 years have analyzed
several hundred thousand samples of insulation.
Dr. McCrone is Director, McCrone Research Institute.
Figures 1-5 show typical asbestos samples. Most of
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ASBESTOS continued
100
i
Figure 3 Crocidollle fibers ms in Figure 1.
Figure 4 UInert! wool fibers es in Figure 1.
these were bulk insulation samples, though thou sands of water and air samples were also analyzed. We have no question concerning the analytical method for the water samples since nearly all of the fibers in these samples are too tiny to be seen by light microscopy. The identification and quantita tion of these fine fibers can only be done by trans mission electron microscopy (TEM). Only that technique can routinely identify and quantitate the percentage of the different asbestos fibers in most water samples. Even the TEM, however, needs the capability for elemental analysis in order to differ entiate between the various amphiboles on a routine basis. This capability is only available on analytical TEMs costing several hundred thousand dollars. On the best routine basis the cost of an analysis by TEM will be high, several hundred dollars per sam ple. However, since neither the light microscope nor the scanning electron microscope (SEM) has suffi cient resolution to do the job, TEM is mandated for water samples.
The several hundred thousand bulk insulation samples analyzed in our laboratories have been done almost entirely by PLM. The only exceptions to this are when clients specify confirmation by a second method, and we tend in those cases to use xray diffraction. The identification of the individual
types of asbestos in bulk insulation as well as the identification of all other fibrous components of those materials is rapid and certain by PLM, partic ularly when dispersion staining is used. Although we have in our laboratories several scanning elec tron microscopes, several transmission electron microscopes, and a number of microprobes for ele mental analysis, we have elected to analyze many air samples also by PLM. The nature of the sample site determines whether we use PLM or TEM. The fibrils of asbestos are distinctive in shape and size and can be differentiated by a trained light micro-
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scopist from glass fibers, mineral wool, paper fibers, and other synthetic fibers often present in air samples. IfUtere is any question it is a simple matter for the trained microscopist to select individual
fibers from the filter and determine their identity by PLM. Any properly taken air sample in an appro priate area will show at least a few fibers large enough to be easily selected and identified. We would not, however, attempt to analyze ambient air samples for asbestos by PLM.
We acknowledge that the filter will hold many fibers too small to detea by light microscopy unless we go to ultramicroscopy or darkfield illumination. This latter technique, which, incidentally, requires little time, would detea individual fibrils as fine as any standard SEM could show, in other words, as small as about 250 A (0.025 ^m) in diameter. This
is, notably, the size of the finest asbestos fibrils. We almost never go to this extreme because available evidence indicates that when such tiny fibrils are present there are reasonably well-accepted values for the percentage of finer fibers which cannot be deteaed by PLM. It is extremely unlikely that the polarized light miaoscopist would miss finding as bestos when it is present in a close-to-the-source air sample. It is extremely important however, that the sampling be performed properly and the microscop ist be properly trained. The terra used to describe the sampling operation is "aggressive''; in other words, the air must be aaively agitated in the work
area during sampling. Proper training for the microscopist analyzing as
bestos-containing dust includes knowing how to use the light microscope and skill at phase contrast, dis persion staining, and polarized light microscopy. The microscopist must be familiar with the optical crystallography and morphology of all types of as bestos and other fibers, e.g., wollastonite, brurite, fibrous talc, paper, cotton, glass, polyester, polya-
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Figura S Paper Ubera aa In Figure 1.
mide, Kevlar, and other man-made fibers. He or she must be able to differentiate between fibrous and nonfibrous amphiboles and serpentines and not be confused by striations on vermiculite, talc, and mica plates. These are just a few examples of the background areas a microscopist should know to do a dependable job on asbestos samples. (Proper use of the light microscrope for the identification of as bestos and other harmless substitutes is a problem. A background in mineralogy is helpful. The McCrone Research Institute in Chicago teaches a "crash course" in asbestos identification. Other training materials are available.')
A microscopist with these skills wQI not be misled by ideas and procedures presented almost daily by nonmicroscopists (or microscopists not trained in asbestos monitoring). One recent paper presented at the American Industrial Hygiene Conference, held May 25, 1983, recommended differentiation of as bestos fibers from nonbirefringent fibers (only glass) by crossing the polars, stating that if the fi bers are invisible they are not asbestos. A simple calculation based on diameter and birefringence of asbestos shows that asbestos fibers smaller than about 1.0 pm in diameter will be invisible with crossed polars. This procedure would lead to nondetection of asbestos in many air samples otherwise easily detected by a trained microscopist. Such mis informed statements are dangerously irresponsible.
Another ill-advised idea, point-counting, has been suggested for the quantitation of asbestos in bulk insulation. This is a standard and very valid procedure for well-mixed and nonfibrous compo nent samples for which high accuracy is needed. Anyone who has examined more than a few insula tion samples, however, realizes these samples are poorly mixed and very nonuni form in composition. Grab samples of 1 g each from different portions of an insulation sample will nearly always vary by
10-25% of the fibers present. Smaller samples still
too large for a PLM sample often vary from
0-100% fiber. If a large enough number of PLM
samples of insulation are mounted and point-
counted, the analyst might, with hick, analyze 2-4
samples a day rather than the 20-50 samples now
possible--and the answer would be no more accur
ate, significant, or useful than the 2-min method
with the stereobinocular light microscope to be de
scribed.
In our asbestos courses we recommend quanti
tating large samples (e.g., 1 oz.) using the stereo
binocular microscope at 30-40 x. It is easy with
that instrument to see how uniform the mixture is
. and to estimate in 2-4 min with more than sufficient
accuracy the percentage of each individual fibrous
component. Two different individuals will usually
agree within about 15%, e.g., 17-23%, 34-46%, or
51-69%. This may not sound "accurate," but it is
more than accurate enough and as accurate as
point-counting could be without hours of counting.
What would be the difference in deciding what to
do if the insulation contained 60% asbestos rather
than 50% or even 75% rather than 50%? Analysis
based on an intelligent estimation looking at the en
tire sample is 20-50 x faster and probably as accur
ate as point-counting on such samples. It is certain
ly the only method justified by the sample and the
accuracy needed to decide how to proceed next.
Jean Prentice of our London laboratory has been
very active in all areas concerning asbestos for
about 2Q years. She states,1 "With respect to the
analysis of insulating materials for the presence of
asbestos fibres, low magnifications can be used be
cause of the natural distribution of fibres in any
bulk material. In other words, if fine fibres are
present, large fibres will also be present. Similarly
in the analysis of an airborne cloud (providing the
air samples are taken close to source) there will be a
significant number of fibres which are visible by
phase contrast microscopy at 500 x and an assess
ment of airborne contamination can be based on
this. However, there are times when the optical
microscope is totally inadequate, such as looking at
ambient levels of fibres in the atmosphere when the
source of pollution is a long way from the sampling
site and the heavier fibres have dropped out." She
continues: "Within the U.K., the standard method
of testing for airborne respirable asbestos fibre dur
ing or after asbestos removal work is the standard
phase contrast-membrane filter technique and, this
has in the main been accepted. This technique has
been adopted because it is relatively cheap and the
results can be quickly obtained. On-site counting is
often requested."
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AMERICAN LABORATORY :
ASBESTOS continued
The views of a number of other authorities in this field reinforce this conclusion. Most of these refer* ences are from the Proceedings of the Fourth Inter- national Colloquium on Dust Measuring Technique and Strategy held in Edinburgh. Scotland, in Sep tember 1982.' Dr. J.M.G. Davis, of the Institute of Occupational Medicine in Edinburgh* introduced this meeting with the-fair background statement: "There is a further problem relating to the methods of fibre estimation. Up till now, all routine factory dust counts have been undertaken using light mi croscopy yet this cannot detect fibres below about 0.25 pm in diameter. With asbestos at least, fibres below this detection limit can still be over 10 pm in length and are, therefore, potentially very danger ous. Fibres with this small diameter can only be de tected by electron microscopy. While these tech niques are too costly and time-consuming for rou tine use it would be desirable to undertake occa sional electron microscope counts to make certain that no production process produced large numbers of fine fibres but only small numbers of fibres of the sizes at present counted by light microscopy."
Hwang and Gibbs' show that, assuming a visibil ity limit of 0.2 pm using a well-set-up phase contrast microscope at 400 x, the number of amosite fibers missed by an optical microscope survey would be of the order of 20ft or less. If the same experiments are carried out with chrysotile asbestos, one would miss about 50ft of the fibers and for crocidoh'te one would miss about 75 ft of the fibers. The significant point, however, is that one would see not less than 25 ft of the fibers in the worst case, croddolite, and one would know, with sufficient certainty, how many fibers had been missed.
Marconi* of the Instituto Supcriore di Sanita Laboraiorio in Rome compared TEM and PCM counts on 30 samples of airborne dust from a rail way repair and maintenance facility and from an auto brakeshoe and clutch operation. The PCM al ways found asbestos when the TEM found it. The TEM found more fibers/mm] but only (on average) 20ft more.
Cherrie' of the Institute of Occupational Medi
cine in Edinburgh found that carefully done PCM and SEM fiber counts agreed well (especially for amosite) but that the slowness of scan for the SEM to see fibers less than 0.3 pm in diameter makes the
use of SEM impractical. Middleton1 of TBA Industrial Products Ltd. in
Rockdale, England, summarizes: "the use of slow
scan speeds (by SEM) gave improved visibility of fine fibers but it would not be possible to use slow
scan rates during routine counting." Robock' of the Asbestos Institute, in Neuss, Ger
many, states, "Regarding the necessity to apply the electron microscope for the occupational environ ment it may be stated by means of the comparative measurements conducted within the DMAP and particularly by the work of Carton/France, that this cannot be justified in view of the time con sumed and the result related to the loss in counting thinner fibers (diameter below 0.2 pm) when apply ing the light microscope. Subsequently, (sic: conse quently?) application of electron microscopy for routine measuring of work places is not essential."
Tillman,1* from Sweden's National Board of Oc cupational Safety and Health, states in evaluating SEM work, "In investigating the SEM negatives it soon becomes obvious that despite the higher mag nification counting was even more complex than in the phase contrast microscope. In the SEM because more details were visible, it was often more difficult for the microscopist to know how many fibres should be counted." Good indications of these dif ficulties are the results of comparisons of fiber counts by two different laboratories on the same series of 19 air samples (from a variety of manufac turing operations) by both SEM and PCM.1' The two sets of SEM counts varied by factors of 0.27 to 1.86. The two sets of PCM counts varied by 0.66 to 3.30.
Tillman's actual data show that the PCM missed 15ft on average of the smallest asbestos fibers in the comparison of SEM versus PCM on 30 different air samples.
A number of investigators have found that fibers shorter than 3-5 pm in length have very low, if any, carcinogenicity. The first work in this area by King et al." in 1946 showed that fibers 2.5 pm long showed much less fibrosis than fibers 15 pm long. Similar results were obtained by Vorvold et aL" in 1951. In 1968, Klosterkotter" found much greater reaction with long chrysotile and long croddolite fi bers. Subsequently, studies by HQscher et al.,'* Davis," Wright and Kuschner," Timbrdl and Skid more,1' and Webster" confirmed the general view that fibers shorter than about 5 pm are, at least, much less cardnogenic.
The most detailed data on the effects of fiber length were by Stanton and his colleagues." They concluded that the most dangerous fibers were longer than 8 pm and less than 1.5 pm in diameter. These data have been confirmed by Pott" and most recently by Ferguson."
These quotations yield considerable confidence in
the conclusion that the light microscope, properly used on proper samples, is the only practicaJ ap proach to the detection and identification of asbes-
: APRIL 1985
For Particle and Fiber Identification to obtain the most reliable results
Dispersion staining, double variation refractometry. focal masking, and polariscopic immersion techniques are among those used all over the world in conjunction with Cargille Retractive Index Liquids in optical analysis and identi fication of solids, glasses, crystals, stress and strain effects, and flow patterns.
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ASB ESTOS continued
tos in bulk and most air samples. We feel that the inability to detea the very finest fibrils is not a sig nificant handicap in determining the degree of haz ard represented by properly taken and properly ex amined air samples. Finally, the analytical (capable of elemental analysis for Mg, Na, Ca, and Fe) TEM should be used for ail water samples and for all air samples except those close to the source and where aggressive sampling can ensure re-entrainment of the coarser fibers. PCM should be used to evaluate the latter air samples and PLM to identify the mem brane- or Nuclepore -filtered air samples and all bulk samples.
Roloroncos
1. MC CRONE. W.C., The Asbestos Allas: IAnn Arbor Science Publishers (available from McCrone Research Institute. 2104 S. Michigan Ave. Chicago, Illinois 60616)]. A slide tape program, "Identification of Asbestos," is available from F.l. Scott A Associates. Check. VA 2-1072.
2. PRENTICE. J.. Personal Communication. 3. Proceedings of the Fourth International Colloquium. ''Dust
Measuring Technique and Strategy." Edinburgh, Scotland. September 20-23, 1982. 4. See Ref. 3.. p. 13. 3. HWANG. C.Y. and GIBBS. C.W.. Ann. Ocatp. Hyg. 24, 23-11 (1981).
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6. MARCONI. A., see Ref. 3., p. 171.
7. CHERR1E, J.. sec Ref. 3., p. 369.
I. MIDDLETON, A.P.. see Ref. 3.. p.459.
9. ROBOCK. K.. see Ref. 3., p. 33.
10. TILLMAN. C.. see Ref. 3.. p. 39J. 11. XING. E.J.. CLEGG, J.W., and RAE, V.M.. Thorax I. 188-197
(1946). 12. VORVOLD. AJ.. DURKAN. T.M.. and PRATT. P.C.. AMA
Arch. fnd. Hyg. Occ. Med. 3. M3 (1957).
13. KLOSTERKOTTER, W.. Proc. International Conference. Dresden, Deutchcs Zentral institul fur Arbeiismedidn. Ber lin 47-52(1968).
14. HIL5CHER. W.. SETHI. S.. and FRIEDRICKS, K.H.. Nantrwissenschaften 37. 356-357 (1970).
15. DAVIS. J.M.G.. Brit. J. Exp. Path. S3. 190-204 (1972).
16. WRIGHT. G.w. and KUSCHNER. M,, in Inhaled Particles IV (Pentagon Press. New York. 1977), pp. 4J5-472.
17. TtMBRELL, V. and SKIDMORE. J.W., set Ref. 12., pp. 52-56.
IS. WEBSTER. L, Proc. of International Conference on Pneumonoconiosa, Johnnesburg (Oxford Univ. Press, 1970), pp. 117-119.
19. STANTON. M.F. et al.. National Bureau of Standards Special Publication 506:143-131.
20. POTT. F,, Staub-Beinhalf Luft 38. 486-490-U978).
21. FERGUSON. J-S-. "Scanning and transmission electron microscopy applications in an asbestos inhalation toxicology study." paper presented at INTER/MICRO-84. Chicago. July 16-20,1984.