Document vVRjQZopbxb4RD5djLOraRXy9
PRELIMINARY
AIR POLLUTION SURVEY OF
ASBESTOS
A LITERATURE REVIEW
i i
Ralph J. Sullivan Yanis C. Athanassiadis Litton Systems, Incorporated Environmental Systems Division
Prepared under Contract No. PH 22-68-25 I
U.S. DEPARTMENT OF HEALTH, EDUCATION, AND WELFARE Public Health Service
Consumer Protection and Environmental Health Service National Air Pollution Control Administration Raleigh, North Carolina October 1969
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The APTD series of reports Is Issued by the National Mr Pollution Control Administration to report technical data of interest to a limited reader ship. Copies of APTO reports may be obtained upon request, as supplies permit, from the Office of Technical Information and Publications, National Air Pollution Control Administration, U.S. Department of Health, Education, and Welfare, 1033 Wade Avenue, Raleigh, North Carolina 27605.
National Air Pollution Control Administration Publication No. APTD 69-27
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FOREWORD
As the concern for air quality grows, so does the con cern over the less ubiquitous but potentially harmful contami nants that are in our atmosphere. Thirty such pollutants have been identified, and available information has been summarised in a series of reports describing their sources, distribution, effects, and control technology for their abatement.
A total of 27 reports have been prepared covering the 30 pollutants. These reports were developed under contract for the National Air Pollution Control Administration (NAPCA) by Litton Systems, Inc. The complete listing is as follows:
Aeroallergens (pollens)
Ethylene
Aldehydes (includes acrolein Hydrochloric Acid
and formaldehyde)
Hydrogen Sulfide
Ammonia
` Iron and Its Compounds
Arsenic and Its Compounds
Manganese and Its Compounds
Asbestos
Mercury and Its Compounds
Barium and Its Compounds
Nickel and Its Compounds
Beryllium and Its Compounds Odorous Compounds
Biological Aerosols
Organic Carcinogens
(microorganisms)
Pesticides
Boron and Its Compounds
Phosphorus and Its Compounds
Cadmium and Its Compounds
Radioactive Substances
Chlorine Gas
Selenium and Its Compounds
Chromium and Its Compounds
Vanadium and Its Compounds
(includes chromic acid)
Zinc and Its Compounds
These reports represent current state-of-the-art literature reviews supplemented by discussions with selected knowledgeable individuals both within and outBide the Federal Government. They do not however presume to be a synthesis of available information but rather a summary without an attempt to interpret or reconcile conflicting data. The reports are
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necessarily limited in their discussion of health effects for some pollutants to descriptions of occupational health expo sures and animal laboratory studies since only a few epidemio logic studies were available.
Initially these reports were generally intended as internal documents within NAPCA to provide a basis for sound decision-making on program guidance for future research activities and to allow ranking of future activities relating to the development of criteria and control technology docu ments. However, it is apparent that these reports may also be of significant value to many others in air pollution control, such as State or local air pollution control officials, as a library of information on which to base informed decisions on pollutants to be controlled in their geographic areas. Addi tionally, these reports may stimulate scientific investigators to pursue research in needed areas. They also provide for the interested citizen readily available information about a given pollutant. Therefore, they are being given wide distribution with the assumption that they will be used with full knowledge of their'value and limitations.
This series of reports was compiled and prepared by the Litton personnel listed below:
Ralph J. Sullivan Quade R. Stahl, Ph.D. Norman L. Durocher Yanis C. Athanassiadis Sydney Miner Harold Finkelstein, Ph.D. Douglas A. Olsen, Ph.D. James L. Haynes
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The NAPCA project officer for the contract was Ronald C.
' Campbell, assisted by Dr. Emanuel Landau and Gerald Chapman.
; Appreciation is expressed to the many individuals both
outside and within NAPCA who provided information and reviewed
draft copies of these reports. Appreciation is also expressed
to the NAPCA Office of Technical Information and Publications
for their support in providing a significant portion of the
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technical literature.
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ABSTRACT
Inhalation of asbestos may cause asbestosis, pleural or peritoneal mesothelioma, or lung cancer. Mesothelioma is a rare form of cancer which occurs frequently in asbestos workers. All .three of these diseases are fatal once they become established. The dose necessary to produce asbestosis has been estimated to be 50 to 60 million particles per cubic foot-years. No information is available on the dose necessary to induce cancer. Random autopsies of lungs have shown "asbestos bodies" in the lungs of one-fourth to one-half of samples from urban populations. Thus, the apparent air pollution by asbestos reaches a large number of people.
Animals have been shown to develop asbestosis and cancer after exposure to asbestos.
No information has been found on the effectB of asbestos air pollution on plants or materials.
The likely sources of asbestos air pollution are uses of the asbestos products in the construction industry and asbestos mines and factories, observations in Finland and Russia indi cate that aebestoB does pollute air near mines and factories. However, no measurements were reported of the concentration of asbestos near likely sources in the United states. A concentra tion in urban air of 600 to 6,000 particles per cubic meter has been estimated.
Bag filters have been used in factories to control
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asbestos emissions; the cost of this type of control in a British factory was approximately 27.5 percent of the total capital cost and about 7 percent of the operating cost. No information has been found on the costs of damage resulting from asbestos air pollution.
No satisfactory analyticalmethod is available to determine asbestosin theatmosphere.
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LIST OF TABLES
1. Deaths of Asbestos Insulation Workers in New York* 1963-67 ......................................................................................................... 16
2. Distribution of "Asbestos (Ferruginous) Bodies" in Lungs in Pittsburgh........................................................................... 20
3. Type and Number of Tumors Induced by Intrapleural Inoculation of S.P.F. Rats with Asbestos.................... 22
4. Dust Counts in Asbestos Mines and Mills in South Africa, 1947 .......................................................................................... 29
5. Cancer of the Lung Among Asbestos Workers l . . . . 62
6. "Asbestos Bodies" in Consecutive or Random Autopsies ......... ....................................................... 64
7. Composition and Properties of Asbestos ...... 66
B. World Production of Asbestos .................................................. 69
9. The Production and Apparent Consumption of Asbestos
.
in the United States............................................................ ....
71
10. Regional Distribution ofAsbestos Mining and Processing...............................................................................................
72
11. Asbestos Mines in the United States, 1966 .................... 73
12. Apparent Asbestos Consumption, 1965 ................................... 74
13. Proportion of Asbestos in VariousAsbestosProducts 75
14. Quantity and Value of Asbestos Input by Industry,
1963
75
. 15. Population Groups with Occupational and Environmental Exposure to Asbestos.................... ..... ............................................ 76
16. Asbestos Control Equipment
.................................................. 77
17. Analysis of Asbestos and Asbestos Products Exports and Imports.........................................................................................
78
18. Selected Statistics for theAsbestosManufacturing
Industry ...................................................
79
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LIST OF TABLES (Continued)
19. Selected Statistics for the Asbestos Products In dustry ................................... .... ............................................. ....
80
20. Asbestos Uses ............. ..................... 81
21. 1967 List of Manufactured Asbestos Products ... 84
22. Asbestos Product Manufacturing Plants, 1963 ... 86
23. Penetration of Fibers Through Nasal Hairs .... 93
24. Particle-Mass Relationship of Asbestos as a- Function of Fiber Length............................................................................... .93
LIST OF FIGURES
1. Comparison of Trends in World Production and U.S. Consumption of Unmanufactured Asbestos ....... 30
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CONTENTS
ABSTRACT
1. INTRODUCTION .......................................................................................... 1
2. EFFECTS..........................................
3
2.1 Effects on Humans..........................................
3
2.1.1 Asbesto6is ...... ....................................... 4
2.1.2 Pleural Calcification andPlaques ... 2.1.3 Cancer ........................................................... . . . .
6 7
2.1.3.1 Cancer of theLung.......................... 2.1.3.2 Mesothelioma of the PleUra and
7
Peritoneum................................................ 11
2.1.3.3 other Cancers
15
2.1.3.4 Synergism...................................... .... . 15 2.1.4 "Asbestos Bodies" ...................................... .... . 17
2.2 Effects on Animals .............. 20 2.2.1 Cotwnercial and DomesticAnimals .... 20
2.2.2 Experimental Animals .................................................21
2.3 Effects on Plants........................................................................ 24 2.4 Effects on Materials .......................... ....... 24
2.5 Environmental Air Standards.................................................24
3. SOURCES...........................
26
3.1 Natural Occurrence .............................................................. 26
3.1.1 Mines ..................................................................
26
3.2 Production Sources .............................................................. 29
3.3 Product Sources..................................................... . . 31
3.4 Environmental Air Concentrations.....
33
4. ABATEMENT ....................................................................................
35
5. ECONOMICS...............................................................................
37
6. METHODS OF ANALYSIS.............................................................................33 REFERENCES.................................................................................................... 41
APPENDIX A...........................................................................................................61
APPENDIX B ....... .....................................................................
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1. INTRODUCTION
.
Asbestos is a general name given to a variety of useful fibrous minerals. The value of asbestos ensues from the indestructible nature of products fabricated from the various grades of mineral fibers. The major asbestos minerals are
chrysotile, crocidolite, amosite, and anthophyllite,. while .
tremolite and actinolite are considerably less important.
Over 90 percent of the asbestos is chrysotile. The United
States uses about one-fourth of the world production of this
substance, practically all imported from Canada and Africa.
Inhalation of asbestos dust has long been recognized as
161,165
an industrial hazard.
Early in this century, exposure
to high concentrations of the fibrous dust was causally
associated with asbestosis. In 1935, evidence began to
accumulate that cancer of the lung i6 also associated with inhalation of asbestos.55 More recently, certain rare cancers,
pleural mesotheliomas and peritoneal mesotheliomas, have been associated with inhalation of asbestos fibers by asbestos workers* 176 Heimann92 states that "The finding of several such rare tumors in any given group makes that group suspect of having special and distinct environmental characteristics, _ in this case, exposure to asbestos duBt."
Nonoccupational environmental exposure to asbestos was found as early as 1927 vfoen Haddow81 reported finding 60called "asbestos bodies" in the lungs of a person living near
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an asbestos factory. Since then, several investiga-
have reported finding .neighborhood
cases. The subject of nonoccupational environmental exposure
to asbestos assumed a new dimension beginning with the re ports of Thomson and his colleagues.213-216 After examining
the lungs in consecutive autopsies, they found that approximately one-fourth of the populations in both Capetown, South Africa, and Miami, Fla., have "asbestos bodies" in their lungs. Other investigators have confirmed that one-fourth
to one-half of the population in Pittsburgh,^ San Francisco, Milan,^ Glasgow,^ New York,^^ Montreal.^ Jerusalem,
#
Finland, 167 and Sweden82 have "asbestos bodies" in their lungs.
These findings indicate that either these asbeBtos particles or other particles that resemble asbestos in many ways, in-
eluding the way in which the body reacts to them, are being
inhaled either with the ambient urban air or through direct exposure to asbestos.
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2. EFFECTS
2.1 Effects on Humans
Asbestosis (a diffuse pulmonary fibrosis), pleural
calcification, pleural plaques, lung cancer, and pleural and
peritoneal mesotheliomas can result from exposure to
asbestos. Asbestos bodies are commonly found in the lungs of
persons exhibiting these complications. Diagnosis of any of
these or finding "asbestos bodies" in the lungs signifies the
need to review the case history for previous asbestos exposure.
Surveys of people living or working near asbestos mines and
factories have revealed that many nonoccupational cases of
asbestosis and mesothelioma have occurred either from the
polluted air or from asbestos carried home on the workers*
175,176,178
clothing.
However, in many cases no exposure to
asbestos can be established.
The fate of the asbestos fiber once it is inhaled* and
deposited in the lung is Btill questionable. The 6hort fibers,
<0.5 P in length, have been pathologically ignored, probably
because they are much too narrow to be visible under a light
microscope. The longer fibers which are encrusted in an iron
bearing protein (asbestos bodies) become easily visible. Wagner and Skidmore228 and Morris jst al.. 172 have shown that
rats which have inhaled asbestos lose the asbestos (probably
the short fibers) from their lungs. The biological half-life
*A discussion on respirable fibers is presented In Appendix B (page 92).
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for asbestOB appears to be 20 to 90 days, depending on the .mineral type. Some of the fibers are removed by phagocytosis
to the lymph nodes.
2.1.1 Asbestosis
Among asbestos workers, evidence of pulmonary asbestosis is common. This condition results in a diffuse fibrosis,
usually in the lower lobes of the lung. Pulmonary asbestosis
has been called a monosymptomatic disease, with dyspnea as the
main complaint.
The British Occupational Hygiene Society1,3"
has reported that basal rales are the first symptoms of asbestosis.
Asbestosis usually develops after long exposure to high
concentrations of asbestos dust. The risk varies directly with the length of exposure and the dust concentration. Following
continued exposure to high concentrations of dust, asbestosis
may develop fully in 2 to 9 years and may cause death as early
as 13 years from onset of exposure. The common exposure period
before recognition of asbestosis (as observed among asbestos
workers) iB 20 to 40 years, with death following about 2 to 10
years later. Once established, asbestosis progresses even after the exposure to dust ceases: illness or death can occur long
after exposure to concentrations not producing immediate effects.19^
The prolonged latency period between exposure and the
first signs of asbestosis makes it difficult to establish dosetime relationships. Cooper 4 3 suggested that a time-weighted
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average concentration of asbestos fibers of 5 mppcf** *is too ' hi.gh. He ci.tes Wells' 234 idea that multiplying average counts by years of exposure provides a rough guide to the total dose allowable. After 50 to 60-mppcf-years, workers began to show evidence of asbestosis. At an average concentration of 5 mppcf, this total allowable dose would be reached in 10 to 12 years. Unfortunately, dust concentrations have been infre quently reported and measurements have been hampered by the varied nature of the sources. Marr1^3 and Selikoff et al.****
have reported that insulation workers are exposed to dust
concentrations below 5 mppcf, yet have exhibited a high
prevalence of asbestosis. Thus, Cooper's argument is
strengthened.
In 1946, there were about 700 cases of asbestosis in
Germany among a total of approximately 8,000 employees in the
108 235
asbestos industry.
Negelius
found 125 cases qf;.asbestosis
of the lung in X-ray examinations of 476 asbestos workers in
a
one company in Finland. Of 132 asbestos workers examined by
Bohme, 29 percent showed X-ray evidence of asbestosis. The
occurrence of asbestosis in members of this worker group rose
with the duration of the employment< 5 percent in workers
exposed to asbestos for less than 3 years; 56 percent for those
employed for 5 to 10 years, and 79 percent for those with over
10 years' exposure. A similar morbidity of 80 percent among
*5 million particles per cubic foot based on total dust count and 8-hour-day, 40-hour-week exposure.
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English asbestos workers with over 20 years of employment waB reported by Merewether and Price*^ in 1930. Noro*77 noted
that the incidence of asbestosis was 65 percent in 167 asbestos
workers studi.ed by X-ray. Selikoff t.
197 investigated
1,522 asbestos insulation workers in the New York-New Jersey metropolitan area. Among 392 individuals examined more than 20 years from the onset of exposure, X-ray evidence of asbestosis
was found in 339. in half of these, the asbestosis was moderate
or extensive. In individuals with less than 20 years of exposure,
radiological evidence of asbestosis was less frequent and when present, was much less likely to be extensive.
2.1.2 Pleural Calcification and Plagues
Pleural calcification resulting from exposure to asbestos
. 120 16 usually bilateral and affects the parietal pleura.
193
Selikoff
stated that bilateral pleural calcification involving
the diaphragm is diagnostic of asbestosis. Thi6 pleural calcifleetion can be readily identified by X-ray.**7
Kiviluoto120 discovered 499 cases of pleural calcifica
tion during a community X-ray survey of 6,312 adults in the Kuu6jari commune in Finland. In Ilomantsi commune he found no
such calcification among 7,101 adults. He observed that the
Kuusjari commune contained an asbestos mine and suggested that these people had been subject to a localised environmental asbestos exposure. This investigator 121 also observed 77 cases of pleural plaques out of 35,000 routine chest X-rays. The case histories of these 77 revealed that 52 had previous
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.>vv'-'sure to asbestos either in the home or in their occupations, where they handled asbestos products. Of the Other 25 persons, 16 were questioned and no previous asbestos exposure could be ascertained. Raunioi86 continued the study And found 1,516 adult cases of pleural calcification from 633,201 x-rays taken in 13 Finnish towns and 106 rural communes. In Tuusniemi commune, where an asbestos quarry is- located, pleural calcifi cation was found in 9 percent of the population? in urban populations it was found in 0.7 percent of the people; and in rural areas calcifications were found in only 7 out of 265,273 people examined (0.002 percent). However, Meurman1^ found the pleural plaques were common (39.3 percent of his cases) in all Finland.
Approximately 2.B percent of the agricultural workers in Czechoslovakia*^ an(j Bulgarians have also been shown to have appreciable pleural calcification. In Bulgaria the soils worked by the farmers contained asbestos: even stone fences were made of outcrops of anthophyllite mineral. However, in Czechoslovakia no asbestos or known exposure to asbestos was found. After examining children living in the city of Asbest in the Soviet Union, Bobyleva fit jl.^*^ concluded that they were suffering from impaired health caused by air pollution from asbestos plants. ' 2.1.3 Cancer 2.1.3.1 Cancer of the Lung
The most common complication of asbestosis is cancer of the lung. However, cancer of the lung apparently induced by
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asbestos may appear unaccompanied by a&bestosis.
.
The association of lung cancer with exposure to asbestos
dust has been the subject of many investigations in the second
quarter of this century. In 1935, Lynch and Smith
in the
United States described lung cancer found during autopsy of a patient with asbestosis. According to Homburger' s data,i0i
over a 20-year period eight cases of asbestosis were found in 4,137 autopsies at the medical school of Yale University. Of these eight asbestosis cases, four were associated with lung cancer (SO percent). In contrast, lung cancer was found in only two (12 percent) of 17 cases of silicosis.
Lynch and Cannon 147 in 1949 found lung cancer in only three cases (7.5 percent) of 40 patients with asbestosis. Gloyne71 in 1951 reported that according to autopsy data for
the London Hospital of Chest Diseases, lung cancer was observed
in 14 percent of the 121 patients with asbestosis, but in only
6.9 percent of those with silicosis.
Usually, the lung cancer incidence in men is four to six
times higher than in women, but among patients with asbestosis
it is Only twice as high for men. This ha6 been confirmed by
Bohlig, Jacob, and Kalliabis.
They note that among women
working in the asbestos industry, lung cancer is observed at
an earlier age than among the rest of the population. In his review, Behrens 19 rep'orted 44 cases of lung cancer (14 percent)
in 309 autopsies of patients with asbestosis. After examining .
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the data of various authors, Xsselbacher gt, al..*** reported that of 603 persons vith asbestosis, lung cancer was found in 83 (13.8 percent) at autopsy. Hueper*^ and Doll^ record an even higher percentage (15 percent). Doll emphasizes that the majority of those who died had worked under conditions of high dust content in the air.
33 Braun and Truan found lung cancer in 12 (three cases were not conclusive) of 1B7 workers in the Canadian asbe6toB industry who had died. Boehme reported 74 patients with asbestosis; lung cancer was found in six of these. The average age of the patients was 53; the average period from the beginning of work to death was 28 years. Keal 114; points out that of 30 patients with asbestosis, 14 (47 percent) died of lung cancer and 10 from carcinoma of the peritoneum or ovaries. Some additional statistics on the association of lung cancer with asbestos workers are listed in Table 5 in the Appendix. Cancer of the lung produced by asbestos needs further study. The latent period between exposure and evidence of carcinoma may be even longer than for asbestosis. Hothing is known about the dose-time relationship. Cases of lung cancer have been observed when only a very short exposure or no exposure to asbestos was known. Furthermore, the low number of "asbestos bodies" observed in one-fourth to one-half of the urban population may be sufficient to cause cancer. Because
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the long "asbestos bodies" remain in the lungs, a person who
has inhaled asbestos may carry the potential (for the rest of
his life) to develop carcinoma of the lung. Moreover, it has not been determined whether more than one fiber is necessary to induce a malignant tumor. Cox^ has suggested that the
probability of cancer induction is proportional to the number of asbestos fibers, number of susceptible cells, the concen tration of carcinogens on the fibers, and the time from exposure.
Why asbestos is carcinogenic is not clearly understood. At least three hypotheses have been advanced*
.
(1) That the fibers act as a physical irritant vhich
after 20 to 30 years of constant irritation induces a tumor. (2) That the fibers contain small amounts of carcinogens--
such as bento (a) pyrene, nickel, and chromium--vAtich are eluted from the fibers by the serum in the lungs. These carcinogens then produce the cancer. Harington and Roe80 have shown that
(a) chrysotlle contains little or no benzo(a)pyrene, but about 100 M9 of chromium per g of fiber and 5,000 ug of nickel per g of fiber? (b) croeidolite contains 0.2 to 24 ug of bento(a)pyrene per 100 g of fiber and negligible amounts of nickel and chromium; and (c) amosite contains 0.2 to 2.4 ug of bentota)pyrene per 100 g of fiber, 100 wg of nickel per g of fiber and 15 ug of chromium per g of fiber (see Appendix B, page 92). The authors have not only shown that these agents can be dissolved in the lung serum, but also that airborne fibers can adsorb
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ituitions present in the air. In studies of the adsorption
of benzo(aJpyrene by asbestos, chrysotile adsorbed 100 percent
of benzo(a)pyrene from solution after 48 hours at 37C,
compared with 40 percent for crocidolite and 10 percent for
amosite. Harington and Roe suggest that these carcinogens
can be adsorbed on airborne fibers. Thu6, the fibers become
a transporting vehicle to carry a concentrated quantity of
carcinogens into the lung.
(3) That the fibers accumulate in the lung and are
immobilized as "asbestos bodies" which disintegrate after 20
to 40 years. The resulting free particles cause asbestosis
or carcinoma of the lung.
In addition, Hammond
.
has suggested that asbestos is
a cocarcinogen; i.e., it increases the cancer-producing poten
tial of 6mall amounts of some other agent. In a study of asbestos workers, he and his colleagues 199 found cancer of the
lung only in cigarette 6mokers. The number of deaths attributed
to cancer of the lung was eight times higher in asbestos workers
who smoked cigarettes than in smokers who were not exposed to
asbestos (see Section 2.1.3.4).
2.1.3.2 Mesothelioma of the Pleura and Peritoneum
Primary tvonors of the pleura and peritoneum are so rare
that for years they were considered to be pathologic curiosi
ties. In 1960 the first large series of cases of diffuse
mesothelioma were reported by Wagner et.
229 in South Africa.
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. * 226 In trying to explain this mysterious epidemic, Wagner, *
noting that "asbestos bodies" were found in the lungs of some
of their patients, obtained detailed life histories of these
patients. By 1960, he was able to establish an association
with exposure to the Cape of Good Hope asbestos fields, or the
industrial use of asbestos, in 32 of 33 patients with histolog
ically proved pleural mesothelioma. The majority of these
patients had not actually worked with asbestos but had lived
in the vicinity of the mines and mills, and some had left these
areas of exposure as young children. The average period between
exposure and development of the tumor was 20 to 40 years. By
556
1962, Wagner
had diagnosed a total of 87 pleural and two
peritoneal mesotheliomas. In only two cases was it impossible
to establish a history of exposure to asbestos dust. Of these
B7 cases, 12 had been industrially exposed and the remainder
had been environmentally exposed from living in the vicinity
of the mills and dumps. This association between mesothelioma
and asbestosis became even more intriguing when in 1955, Bonser et al. 30 described a series of 72 autopsies on patients with
asbestosis in which four cases of peritoneal mesothelioma were
152
found. Subsequently, Mancuso and Coulter
found five
peritoneal mesotheliomas in 1,495 asbestos workers, and Hourihane, 102 upon reviewing the necropsy files of the London
Hospital from 1917 to 1962, found 34 cases of mesothelioma,
half of the pleura and the other half of the peritoneum. All
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of these patients had pulmonary asbestosis, even though in a few there was no history of exposure to the asbestos dust. In
103 a subsequent study Hourihane found 74 cases of mesothelioma in a London hospital over a 10-year period.
Borow et, o. 31 report that in two years they observed 11 cases of mesothelioma during surgery in New Jersey. These cases, added to six others previously diagnosed by them, totaled 17 cases of mesothelioma, eight of which were peritoneal and nine pleural. They suggest that the high prevalence of these rare tumors in New Jersey can be explained by its close proxim ity to a major asbestos mill, where a large percentage of all the asbestos fiber mined in North America is converted to commercial use.
In an attempt to determine whether mesotheliqma of the serosal surfaces was related in any way to asbestos exposure in the United States, Selikoff e_t a 1. 198 studied 307, consecutive deaths among asbestos insulation workers in the Northeastern United States. They found 10 deaths caused by four pleural and six peritoneal mesotheliomas. In addition, these workers had a high death rate attributed to cancer of the stomach, colon, and rectum. Of the 307 deaths, 40.4 percent were attributed to cancer, 5.5 percent to asbestosis, and 54.1 percent to other causes. In a second study, the investigators reviewed 26 consecutive autopsies of patients with asbestosis, and found four mesotheliomas of the pleura and three of the peritoneum.'
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A series of B3 patients from the London Hospital with 6 diagnosis of mesothelioma (confirmed by necropsy or biopsy) were studied by Newhouse and Thompson^^ for possible exposure
to asbestos. The series consisted of 41 men and 42 women; 27 of the patients had peritoneal and 56 pleural tumors. Although the earliest death recorded from this group was in 1917, only 10 patients died before 1950, while 40 (48 percent) died between 1960 and 1964. In 76 of the 83 cases, full occupational and residential histories were obtained. Porty patients (52.6 percent) had a history of occupational exposure to asbestos or of domestic exposure (living in the house with an asbestos worker). In comparison, only 11.8 percent (9 of 76) of the patients from the same hospital suffering from other diseases had previous exposure to asbestos. There was also evidence that neighborhood exposures may be important. Among those in this study with no history of occupational or domestic expo sures to asbestos, 30.6 percent of the mesothelioma patients and 7.6 percent of the inpatients with other diseases lived within half a mile of an asbestos factory, of the 31 patients with occupational exposures to asbestos, only 10 held jobs scheduled under the British Asbestos Regulations of 1931. The interval between first exposure .and the development of the terminal illness from mesothelioma ranged between 16 and 55 years. The duration of exposure varied widely, ranging from two months to over 50 years. In 47 patients in this mesothelioma
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series, lung tissue or sputum was available for examination. In 30 (62.5 percent), either asbestosis or the presence of asbestos bodies was noted.
Mesothelioma is now-considered a frequent cause of death among asbestos workers. No attempt has been made to summarize the reports of mesothelioma, since they appear almost weekly in the current literature. So far, however, there appear to be few cases among the general population. Selikoff 198 reviewed 31,652 deaths among the general popula tion of over 1,048,183 in the United States and found only three cases of mesothelioma. Moreover, he 195 points; out that asbestos is not the only cause of mesothelioma; it has also been produced by silica224 and polyurethane.107 2.1.3.3 Other Cancers
Extrapulmonary cancer has also been noted as a cauBe of death among asbestos workers. Kogan et. al_.172 in 1966 reported 14 cases (31.1 percent), 11 women and 3 mep. Pour of the women died of uterine cancer, two of intestinal cancer, two Of breast cancer, and one of liver cancer. Among the men, one died of stomach cancer, another of cancer of the urinary bladder, and a third of cancer of the prostate* Other cases of extrapulmonary cancer have been cited in Section 2.1.3.2. 2.1.3.4 Synergism
While the exact cause of lung cancer or pleural peritoneal mesothelioma Induced by asbestos is not known, air pollution by
8000 1928
' PRODUCED BY FORD
16
other pollutants may accelerate the morbidity. One form of air pollution which is easily studied in individuals is smoking. . Selikoff t al_.199 recently studied the mortality of 370 asbestos insulation workers. in this group 24 men died of lung cancer and all had a history of smoking. (See Table 1 below.) This rate was eight times greater than the expected mortality rate, with age and smoking habits taken into account.
TABLE 1 DEATHS OP ASBESTOS INSULATION WORKERS 1H NEW YORK, 1963-67199
(By Smoking Habits)
Smokina Habits
Never smoked regularly
History of pipe, cigarsmoking only
History of regular . cigarette smoking
Total
No. of Cases
48
39
283 370
Observed Deaths O
0
. 24 24
Expected Deaths O.OS
0.13
2.98 3.16
aAll with more than 20 years from onset of exposure.
blncludes cigarette smokers who also smoked pipes or cigars.
The blue asbestos. crocidolite, from South Africa is
believed by many53'79'136' 140,209 to jje muCh more carcinogenic than the other .minerals of asbestos. Studies in Finl,and.167
2 26 Indicate that anthophyllite also produces cancer. Wagner,
8000 1429
L
PRODUCED BY FORD
17
Smith et. al..
and recently Godwin and Jagati'c?^ reported
that they had induced mesothelioma in mice using chrysotile. Moreover, animal experiments 76,78,98-100,113,172,225,228 have demonstrated that pulmonary complications occur with crocidolite, chrysotile, amosite, and anthophyllite. Some investigators believe that the fiber is not the carcinogenic agent, but rather the vehicle on which the carcinogens are carried to the target tissue. As Btated earlier, chrysotile contains the most nickel and chromium of all asbestos minerals, while crocidolite contains the most benzo(a)pyrene.^9
three of these impurities in asbestos are suspected'of being carcinogenic. This knowledge, together with results which indicate carcinogens can be adsorbed from urban air or tobacco smoke, indicate that there may be no necessity to distinguish urban asbestos dust by mineral types.
2.1.4 "Asbestos Bodies" as stated earlier, the recent finding of "asbestos
bodies" in one-fourth to one-half of the urban population (see Table 6 in the Appendix) has added new impetus to the examination of asbestos as a general air pollutant.
An "asbestos body" has been defined as "an elongated golden or reddish-brown structure usually with clubbed ends; . the shaft, vftiich often shows a segmented or beaded appearance, is usually straight, but sometimes curvilinear with a tendency toward symmetry} usually it is from 3 to 5 u in diameter and
8000 1^30 ' PRODUCED BY FOR n
mmm
iiA. U
IB
20 to 100 M In length. The coating contains iron demonstrable by Perle's stain (Prussian blue reaction}, and probably composed of ferritin or ferritin-like material; it may cover the structure completely, masking the central fiber from direct view, or may be incomplete in the central portion of the 6haft or in the interstices of the body, revealing an expanse of naked fiber.220
There is no doubt that the "asbestos bodies" formed in the lungs of the asbestos workers contain asbestos. Stumphius and Meyer 210 have investigated the composition of the "kernel" in the "asbestos bodies" removed from deceased shipyard workers (an occupational group with only indirect exposure). They found by electron microscopy and X-ray microanalyses that the "asbestos bodies" did indeed contain Borne minerals of asbestos. Out of 27 fibers, 17 were classified as serpentine (possibly chrysotile) and 10 as amphibole (possibly crocidolite) But what about the so-called "asbestos bodies" in the lungs of the general population? While these "asbestos bodies" probably contain some asbestos, there is no experimental evidence to date which shows vdiat fractions contain asbestos or whether they contain any asbestos at all.^'*^ This subject is currently being debated by several investigators.53,79,209 ln fact, some object to the use of the term "asbestos bodies" end prefer to call them "ferruginous bodies." htoreover, Gross
79 et al.. have shown that "ferruginous bodies"--which appear identical under the microscope to those formed from asbestos--
ebOOO H31
l
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I
PRODUCED BY FORD
19
can be produced from ceramic aluminium eilicate, glace fibers,
and silicon carbide fibers. However, Thomson
claims that
a skilled pathologist can tell the difference. This cont.roc5 194
versy should soon be resolved, since both Gros6JJ and Selikoff
are investigating the composition of the central fiber with
the electron microprobe.
Generalized contamination with fibrous material is
evidenced by the figures in Table 6 in the Appendix. Two other
obvious conclusions are that "asbestos bodies" are found more
frequently in older people than in younger, and more frequently
in men than in women.
In none of the aforementioned studies has there been
any quantitative count of "asbestos bodies" in the lungs of
the general public. In most studies, "asbestos-bodies" found were
scanty, although in some instances the bodies were numerous. 214
214
In most of the investigations, the method of Thomson
was
used (smears taken from basal lobes of the lung were examined
and the asbestos bodies counted). Since only about one-half
millionth of a lung is examined, the finding of only one asbestos
particle may be extrapolated to mean that perhaps a half-million fibers are present in the lung. 214 In one recent study in - Pittsburgh, Utldjian t fil.. 220 made an attempt to quantify their
results. In thiB study 98 percent of the 100 lungs examined
contained "asbestos bodies" ("ferruginous bodies"). The results
are given in Table 2. Por comparison they suggested that if
those cases with only one "asbestos body" were ignored, then
6000 U3?
PRODUCED BY FORD
y mm 20
42 percent of the lungB examined contained two or more bodies, (20.5 percent of the women and 60.7 percent of the men). This 47 percent is in substantial agreement with the compar able 41 percent reported by Cauna^ (see Table 6 in the Appendix) for residents of Pittsburgh.
table 2 DISTRIBUTIOtt OP "ASBESTOS (FERRUGINOUS) BODIES"
IN LUNGS IN PITTSBURGH220
Sex Men
Total Women
Total
No. of Caaea
1 21 15 19 56
2 29
B 5 44
Mean Ape
89 62 64 70 65
29 57 68 64 60
Fibers/Unit of Luno
0 1 2-5 >5
0 1 2-5 >5
Distribution (Percent)
2 37 27 34 100
5 66 16 11 100
2.2 Effects on Animals
2.2.1 Commercial and Domestic Animal a
Krviluoto 121 reported finding some asbestos bodies in
201
a cow near an asbestos mine. In 1931, Shuster
reported
finding extensive pulmonary fibrosis in a dog kept for ratting
in an asbestos factory. The lungs of the dog also contained
some asbestos fiberB but no asbestos bodies were found.
8000 1433
i)
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* PRODUCED BY FORD
21
Peacock and Peacock 182 have studied the effect of asbestos on white leghorn fowl. They tried dusting the birds with asbestos but found that the fibers did not penetrate far into the lung. When the fibers were injected into the lumen of the air sac, an immediate inflammatory reaction occurred, macrophages appeared and engulfed the fibers, and giant cell formation was observed. Four of the 17 chickens examined developed tumors: of the six injected with crocidolite, two developed tumors; of the 10 injected with amosite, only one developed a tumor; and one chicken injected with an unidenti fied variety of asbestos also developed a tumor. 2.2.2 Experimental Animals
Studies with experimental animals have shown that asbestos can induce fibrosis (asbestosis), cancer of the lung, and mesothelioma and can form 'asbestos bodies."
Wagner 234 described experiments with rats in >A:ich 600 animals were exposed to various minerals of asbestos. The results are given in Table 3.
Gross and De Treville"^ made the following observations in studies on rats, hamsters, and guinea pigs. In rats that have inhaled high concentrations (86,000 pg/ma) of chrysotile asbestos fibers for only a few months, minimal fibrotic lesions can be observed in the lungs of all animals. However, this form of asbestosis in rats is nonprogressive. In hamsters that have inhaled chrysotile dust, a fibrosis develops *dtich is
WSP*pi.!!8y!!W!5 WS&
8000 1*34
PRODUCED BY FORD
i;
TABLE 3
TYPE AND NUMBER OP TUMORS INEUCED BY INTRAPLEURAL INOCULATION OP S.P.F. RATS WITH ASBESTOS234
f Asbestos ' minerals 1 Croc. Ia Croc. IIb
Amosite
Chrysotile
Silica
Saline
Total
Animals Exposed
100 100 100 100 100 100
600
Animals Died 19 10 4 25 11 5 74
Mi sc. Nonmalio.
5 4 1 5 1 2
18
Misc. Tumors
1
1 1 3
Reticulum-cell Sarcomas 1
1 2 2 2 8
Mesotheliomas 12 6 2 18 7'
45
&. Crocidolite from Northwest Cape, South Africa.
bCrocidolite with oil extracted from it.
i vn
i ft N>
PRODUCED BY FORD
23
progressive; "asbestos bodies" are also formed. In guinea
pig8, the inhalation of chryeotile dust produces fibrotic
lesions similar to those observed in rats. The data indicate
that the minimum time to produce asbestosis in rats and guinea
pigs is 60 to 120 hours at an asbestos dust concentration of
86,000 ug/mS. The investigators thinX the time required is
shorter for hamsters.
228
Wagner and Skidmore
have shown that asbestos dust
tends to accumulate in the alveoli arising directly from the respiratory bronchioles of rats. They also investigated the
elimination of asbestos from the lungs as discussed in Section 2.1. Gross and be Treville76 also observed a decrease in fiber
content as the time from end of exposure increased.
Ho' lt et al_. 98 suggest from their observations on rats
that fibrotic lesions in the lungs are caused by asbestos fibers (chryeotile) which are less than 3 u long. Longer fibers are stored in the lungs as "asbestos bodies;" shorter fibers are removed from the lungs by phagocytosis. After some years, the larger fibers disintegrate, producing a- large -
number of small particles. These small particles are then
phagocytosed and produce fibrosis. They also suggest that asbestos is only fibrogenic when it is ingested by phagocytes.
Holt et al.*^ exposed guinea pigs to asbestos du6t.
After 14 days of exposure to dust, bronchiolitis was observed; after 21 days the damage was very severe, and "asbestos bodies"
8000 i<*36 PRODUCED BY FORD
tfrtNrtM
lit* !
24
were observed along with asbestos fibers. After 226 days the lungs of animals dusted for more than 1,000 hours over a 76day period developed a wide-spread, progressive fibrosis with
only a few asbestos fibers and "asbestos bodies" present in
the lung tissue. The experimenters concluded that asbestos
fibers too small to be seen under the microscope will produce
asbestosis.
-
In order to evaluate the possible distribution of
194,195
asbestos within New York City, Selikoff '
is now examining
'
the lungs of rats found in the city for asbestos fibers.
In a similar investigation carried out in South Africa.
wild animals captured near an asbestos mine were examined.
However, the small nuntoer of "asbestos bodies" found in them
precluded any conclusions. ^4
* 2.3 Effects on Plants
No information has been found in the literature on the
effects of asbestos air pollution on plants. .
2.4 Effects on Materials
No information has been found in the literature on the
effectB ofasbestos airpollutionon materials.
2.5 Environmental Standards
Both theAmerican Conference ofGovernmental Industrial
21B
Hygienists
and the American Industrial Hygiene Associa
tion110 have recommended an industrial threshold limit value
for asbestos dust of 5,000,000 particles per cubic foot
6000 )437
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' PRODUCED BY FORD
25
(5 mppcf), based on total dust count and on an 8~hour day, 40I
hour week. This value was recommended by Dreessen et al.^
after a study of 541 employees in three textile plants using chrysotile. Only three doubtful cases of asbestosis were found in those exposed to dust concentrations of less than 5 mppcf, whereas numerous cases were found above 5 mppcf.
136 Recently, the British Occupational Hygiene Society published its standards for chrysotile. The Society has I recommended a maximum accumulated exposure of 2.8 mppcf-years i (108 particle-year6 per m3). For example, maximum doses of 0.056 mppcf-years (2 x 106 particle-years/m3) for 50 years,
0.112 mppcf-years (4 x 10 particle-years/m ) for 25 yearB, or 0.28 mppcf-years (107 particle-years/m^) for 10 years are recommended. They have also recommended that dustiness be designated by categories according to the following schemei
Concentration Averaged
Over 3 Months
I
Dust Category
{Million Particles/ro3)
i Negligible
0-0.4
Low
.5-1.9
Medium i
High
2.0-10 Over 10.0
Only fibers longer than 5.0 u in length with a 3*1 length-to-breadth ratio are counted.
With these standards the risk of asbestosis may be reduced to 1 percent; that is, 1 percent of the workers exposed to a dose of 10 particle-years/m3 would contract asbestosis.
a00 0 U38
' PRODUCED BY FORD
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3. SOURCES
.
3.1 Natural Occurrence
Asbestos is a broad term embracing several fibrous
minerals. The minerals are divided into two groups* (l) '
Pyroxenes--chrysotile; (2) Amphiboles--crocidolite, amosite,
tremolite, actinolite, and anthophyllite. Properties of these
minerals are listed in Table 7 of the Appendix.
Asbestos probably occurs in nearly every country in the
world, but only a few of the deposits are commercially
valuable. Over 90 percent of the world asbestos production is
Chrysotile, and Canada is the major source of this mineral for
93
the United States.
Table 8 in the Appendix lists the world
production. Prom these figures an estimate of known free-
world deposits is possible.
It is noteworthy that some soils near asbestos mines
contain considerable quantities of asbestos. In Finland,
farmers working these high-asbestos-content soils have been
120 observed to suffer from asbestosis.
'
. 3.1.1 Mines
The mining of asbestos in the United StateB has in-
creased 180 percent in the last 10 years. (See Table 9 in the
Appendix.) This mining may constitutea source of air
pollution. A high percentage of the increase in domestic
production has been credited to California producers, who
accounted for 65 percent of the total output in 1966. Four
x :
8000 H39
L.
PRODUCED BY FORD
t
i I
27
companies produced chrysotile asbestos fiber: Atlas Minerals
Corp. and Coalinga Asbestos Co., Fresno County; Pacific
Asbestos Corp., Calaveras County; and Union Carbide Corp.,
San Benito County. The latter company processed the crude
material in a plant at King City, Monterey County, whereas the other producers operated plants near the mine sites. 171
Amphibole asbestos was mined by Powhatan Mining Co.
near Burnsville, Yancey County, N.C. Their output increased
66 percent during 1966.171
.
There are four chrysotile mine6 in Arizona in the Salt River Valley near Globe. Since these mines are underground, only the waste needs to be considered in connection with air pollution (other than the possible pollution from transporting the mineral). Nearly all of the output from these mines was used in the cement industry to manufacture asbestos cement and building products: 28 percent was classified as filter fiber and 2 percent as spinning grade; the rest consisted of sand and waste, floats, or other short fibers. Jacquays Mining Corp. operated the Regal and Chrysotile Mines and shipped the ore to a company mill at Globe after hand-sorting the chrysotile. Western Asbestos Manufacturing Co. operated the Phillips Mine, and the Metal Asbestos Corp. the tucVy Seven Mine.^7^
In Vermont, the Vermont Asbestos Mines Division of the Ruberoid Co. quarried and processed chrysotile near Lowell in Orleans County. Twenty-four grades were produced for spinning, cement stock, paper stock, and other uses. Some waste rock
8000 1440
PRODUCED BY FORD
mrnU i
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28
'
was used for roadstone.
,
Data on these mines are summarized in Tables 10 and 11
in the Appendix.
.
Other deposits of asbestos have been found in Georgia
and Maryland.
Although no measurements have been made of the asbestos
air pollution from mining in the United States, some evidence
of the extent of pollution can be drawn from measurements and
observations in foreign countries. The extent of air pollution
from an asbestos mine in Finland was studied by Laamanen, Noro,
133
and Raunio.
They found asbestos dust at distances up to
50 km from the mines, including dust-fall rates ranging from
1.52 g/100 nr/month at 4 km to 34.6 g/100 m /month at 0.5 km.
They concluded that asbestos dust is disseminated from mining and milling areas rather extensively and that the degree of
pollution varies according to thedistance from themine or mill and the prevailing winds.
Schepers 234 described the dust from asbestos mines and mills in South Africa ae duBt which "rolled through like a morning mist," producing "itching skins caused by asbestos adhering to our clothes. Erven the food at the local hotel was gritty with dust."
Sluis-Cremer20* reports dust counts inasbestos mines and mill6 of South Africa as listed in Table 4. He pointed out that living quarters near the mines were polluted with asbestos </o that the main source of pollution was airborne asbestos
eooo im
'
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PRODUCED BY FORD
29
blown off dumps and roads made from the mine tailings.
TABLE 4 DUST COUNTS IN ASBESTOS MINES AND
MILLS IN SOUTH AFRICA, 1947202
Location
Dust Count, mppcf (mppm2)
Mines
Mill
Northwest Cape Province 2.8-24 (100-840)
10-55 (360-1920)
Transvaal
2.3-6.5 (80-228)
4.6-20 (162-720)
3.2 Production Sources World production of asbestos during the period 1956 to
1967 increased at the average rate of approximately 13 percent per year. Figure 1 shows that the world production nearly tripled during the period 1945 to 1965, while United States consumption only doubled during the same period. However, during the period 1956 to 1967, domestic apparent consumption fluctuated between 665,000 and 813,000 short tons per year and may be leveling off as substitute materials (such as fiberglass and plastics) provide competition.
The relative importance of the various industrial uses of asbestos is given in Table 12 in the Appendix. It is seen that the highest input of asbestos occurs in the asbestos cement,.floor tile, asbestos paper products, and asbestos textile industries. The proportions of asbestos used in various products are shown in Tables 13 and 14 in the Appendix.
6000 1442
PRODUCED BY FORD
Thousands of Short Tons U. S. WORLD
CONS. PROD.
30
FIGURE 1 Comparison of Trends in World Production and U.S.
Consumption of Unmanufactured Asbestos170'171_ 6000 1443
PRODUCED BY FORD
31
Of the 78,056 short tons of domestic production in 1965, 66 percent were produced in California and 31 percent* in Vermont, amounting to 97 percent of the total production. This 97 percent was produced and processed in five counties.^
More than 50 percent of the 124 plants comprising the asbestos
products industry were located (in 1963) in the States of
California, New Jersey, Illinois, Pennsylvania, and TexaB, in
decreasing order.^
Bobyleva
a 1 24 25 have shown that the air can be
polluted by asbestos from plants manufacturing asbestos products.
This asbestos may be carried in the air for distances of 25 to
50 miles. In a study of asbestos air pollution from three
plants in the U.S.S.R., they found that at a distance of 3 km
from the plant, the dust concentration ranged from 0 to 6,000
ug/m*. at 1.0-1.5 km it was 3,000-33,000 ug/m*; and at 0.5 km
it was 6,000 to 34,000 ug/m*.
In the United States some' attempts
have been made to
determine the concentration of asbestos near asbestos factories,
but the asbestOB content of the atmosphere was masked by the
Other dusts. Asbestos fibers were detected, but a quantitative
count was not possible.
3.3 Product Sources The uses of asbestos are numerous. Some products which
use asbestos are the following! asbestos cement which may be
Extrapolated.*
8ooo
PRODUCED BY FORD
r
32
applied as mortar or plaster, or sprayed on walls; insulating
materials for the covering of pipes, ducts, boilers, cables,
and conduitB; siding shingles, roofing shingies, tiles, flat
and corrugated sheets, wallboard, clapboard, and automobile
undercoating; threads, yarns, wicks, cords, tapes, cloths,
sheets, and blankets; friction materials, brake linings, clutch
facings, gaskets, and lagging cloths; and asphalt tiles,
plastics, and similar materials. 108
Abrasion of brake linings and clutch facings has been
suggested as a primary source of asbestos air pollution. Ayer13 and Lynch145 have examined the emissions from brakes on
automobiles and found that the fiber is destroyed by the heat of friction. Asbestos crystalline structures are also destroyed
and are recognizable only by the chemical composition. Newhouse and Thompson175 have reported one case of mesothelioma
in a mechanic.
..
The existence of a wide potential for direct or in direct occupational exposure has been cited^' ^4 'as a
possible explanation for the frequent occurrence of "asbestos bodies" in the general public. Asbestos is now used in more than 3,000 products. Most people working in the construction and demolition of buildings come into contact with asbestos.
Electricians and homeowners strip asbestos insulation off wires;
the carpenter saws asbestos boards and often pounds the asbestos
insulated furnace ducts to make them fit. As a result, the air
around a construction site is contaminated with asbestos fibers.
i 1
8000 la&S
PRODUCED BY FORD
33
and the foreman, carpenter, painter, plumber, or new occupants all breathe this dust. In most homes, the owner will at some time handle these asbestos products during normal home main tenance. A large number of workers in other industries are similarly exposed. Some of these are listed in Table 15 in the Appendix.
Although only a few of these people work in the asbestos industry, all may have inhaled sufficient asbestos to show "asbestos bodies" upon autopsy. The hazard is there, but how great is the hazard? It will be necessary to obtain quantita tive concentration data to delineate its seriousness.
Prom the above discussion it may be concluded- that approximately 100,000 asbestos workers in the United States have a high exposure to asbestos.195 An additional 3.5 million construction workers--carpenters, welders, electricians, masons, plumbers, steamfitters, tile setters, etc.--are indirectly exposed,either by themselves handling asbestos products or by worki.ng on the job with people handling asbestos. 195
3.4 Environmental Air Concentrations Only one estimate of the environmental air concentrations
of asbestos in the United States was found. Smith and Tabor206 have roughly estimated that urban air in the vicinity of heavily
3 traveled streets contains 600 to 6,000 particles/m . They indicate that the validity of these values is highly suspect because the methods available for the determination of asbestos
w gijyi jimiuwi
8006 1^46
PRODUCED BY FORD
34 are Inadequate at the concentrations found in the urban air.
/ 6000 l**4*? PRODUCED BY FORD
35
4. ABATEMENT The asbestos industries in the United States have
developed elaborate ventilation systems to prevent high dust concentrati.ons wh.ich m.ight be i.nhaled by the workers. 13,95 This dusty air is passed from the ventilators through fabric sleeve filters and then discharged to the atmosphere. The asbestos fibers are easily filtered out since the fibers form a mat which becomes an absolute filter.*^ In addition to the
ventilation system, it has been necessary to carry out some
operations (such as spinning and weaving) as wet processes to
eliminate duBt. As a result, the pollution from factories is
minimal. Attempts to measure concentrations in the vicinity
of an asbestos plant have proved futile with present analytical
methods.
Pollution during the transportation of asbestos has
been controlled by enclosing the material in plastic-coated
bags.
Although the most common procedure used to suppress
- dust emission is wetting of the material, it is unfortunately
not desirable to wet a large number of asbestos products.
In New York, insulators are required to enclose the
area vhen asbestos fireproofing is blown onto steel frames, but
even this does not prevent pollution. Asbestos fibers are
reported to be a common occurrence in the air around construe*
ti,on s.ites. 34
.
wi'j-.i .ji'.!.r.,ij,u
WJ4JWM
6<M)0 1A4B PRODUCED BY FORD
I
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; \ -*.,
36
No information has been found on the abatement methods used in United States asbestos mines"and in asbestos mills near the mines.
S. t c
i
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.0 00 ]449 ' PRODUCED BY FORD
37
5. ECONOMICS
No information has been found in the literature on the
damage costs or economic losses due to the effects of asbestos
air pollution on humans, animals, plants, or materials. However,
a large fraction of the people in the United States have been
. exposed to asbestos, including the following:
(1) approximately 100,000 workers using asbestos in their occupations,
(2) approximately 3,500,000 construction workers ex posed indirectly to asbestos as they work with asbestos products or near those who handle asbestos products,
(3) approximately 50,000,000 Americans who possibly have "asbestos bodies" in their lungs.
No attempt has been made to assess the cost of health
impairment for these people. Workmen's compensation laws for dust di.seases are in effect -in most States. 234
No information has been found on the cost of the present
and future abatement of air pollution by asbestos in this country.
The data in Table 16 in the Appendix, which refer to the asbestos
industry in Britain, show that the dust extraction equipment
cost alone, for a given size and type of plant, amounts to 27.5
percent of the total capital cost and approximately 7 percent
of the operating cost of that plant. The type of control
equipment used is primarily designed to meet government speci
fications relating to occupational health standards.
Data on the production and consumption of asbestos are
presented in Section 3.
-
8000 1450 PRODUCED BY FOPn
aMsi
38
6. METHODS OP ANALYSIS Of the methods presently being used 1,2,206 to count
dust samples in the asbestos industry,* none is applicable to
atmospheric asbestos air pollution. There are at present no
proven satisfactory methods for the collection, detection,
and identification of asbestos fibers in the 0.1 to 5.0 u
range in ambient air. Satisfactory sampling can probably be
accomplished by use of a membrane filter-pump system. The
major difficulty lies in the problem of identifying a very
few asbestos fibers in the presence of relatively large num
bers of a wide variety of other inorganic particulate matter
found in the same air. Attempts to determine the asbestos
content of urban air have revealed the need for development
of new methods. Battelle Memorial Institute is currently
developing one such method for the National Air Pollution 20S
Control Administration.
Mn all the asbestos monitoring methods used, microscopic counting of th'e fibrous particles is necessary to determine the proportion of fibrous material, and even then it i6 not known what fraction of the fibers are asbestos. Counting of fibers by eye under the microscope is tedious and difficult. If the number of fibers is less than 1 percent (<5 wt*) of total dust, the other dust masks the fibers, and quantitative results cannot be obtained.
In parts of the asbestos industry where the asbestos-todust ratio is high (>5 wt%), it is often possible to determine the asbestos content indirectly.136 For example, if the pro portion of asbestos in the airborne dust was known by microscopic count for a given sampling location, the concentration (at least the order of magnitude) could then be inferred from a simple measurement of the concentration of the total dust.
8006 1S1
PRODUCED BY FORD
39
Modern analytical methods and instrumentation used in.
the asbestos industry are listed below:
'
Microscopic particle counting of samples on membrane filters1'2*14,15*57'97,136'187
Thermal precipitators1 Impingers12#1415*136,187
Royco particle counter1'2*136,187
Mass concentration methods1'1^'136'187
Microsieving116
Digestion116
`
Column chromatography of organics adsorbed on the surface116
X-ray diffraction14'46,47'116 Low-temperature ashing116 Atomic adsorption spectrophotometry14,116 Electron microprobe116 Neutron activation116 Owens jet counter12 Konimeter12
PPPifRpp
8600 1452 PRODUCED BY FORD
41
REFERENCES
1. Addingley, C. G., Dust Measurement and Monitoring in the Asbestos Industry, Ann. N.Y. Acad. Sci. 132:298 (1965).
2. Addingley, C. G., Asbestos Dust and Its Measurement, Ann. Occup. Hyq. (London) 9_:73 (1966).
3. Allen, G. L., F. H. Viets, and L. C. McCabe, Control of
Metallurgical and Mineral Dusts and Fumes in Los Angeles County, California, U.S. Bur. Mines Inform. Circ. 7627 (1952).
4. Anderson, D. 0., The Effects of Air Contamination on
Health: A Review. Part II, Can. Med. Assoc. J. 97:585 (1967).
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164. Merewether, E. R. A., Annual Report of the Chief Inspector of Factories for the Year 1955, vol. 206 (London: Her
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Dust on Lungs and Dust Suppression (London: Her Majesty's Stationery Office, 1930).
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167. Meurman, L., Asbestos Bodies and Pleural Plaques in a Finnish Series of Autopsy Cases, Acta Path. Microbiol. Scand. Suppl. 181 (1966).
168. Mikov, M. 1., Asbestosis in Employees of the "Korlace* Asbestos and Separating works. Text in Serbo-Croatian, Archiv. Hig. Rada Toksikol. (Yugoslavia) i.7:63 (1966),
169. Miller, L., W. E. Smith, and S. w. Berliner, Tests for Effect of Asbestos on Benzo(a)Pyrene Carcinogenesis in the Respiratory Tract, Ann. N.Y. Acad. Sci. 132:489 (1965).
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(1965).
i I
. j
<rw
r -
,r
8000 346?
' PRODUCED BY FORD
!I 54
174. Nakamura* I., Clinical and Pathological Studies of Pulnonary Asbestosis, J. Nara Med. Assoc. 18(4) :455 (1967).
175.
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176.
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179.
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180. 181.
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182.
183.
Peacock, P. R., and A. Peacock, Asbestos-Induced Tumors in White Leghorn Fowls, Ann. N.Y. Acad. Sci. 132:501 (1965).
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I
' [ ! j j
j ;
: i
j j I , |
' |
&000 1466
I____
' PRODUCED BY FORD
55
107. Roach, S. A., Measurement of Airborne Asbestos Dust by ' Instruments Measuring Different Parameters, Ann. N.Y.
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' ' --'.r
8000 1467
' PRODUCED BY FORD
( \ 7 -V;7
II
II I
202. Siuie-Cremer, G. K., Asbestos in South Africa*--Cfertain Geographical and Environmental Considerations, Ann. N.Y. Acad. Sci. 132:215 (1965);
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|
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1
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8000 1468
PRODUCED BY FORD
57
215. Thomson, J. G., and W. M. Graves, Asbestos An an Urban Air Contaminant, Arch. Pathol. 81(S):4S8 (1066).
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*
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'
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.
226. :
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\
8000 1469 ----------
PRODUCED BY FORD
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(
-.1
6-:>!^
jgfiiii*
:M I WlMlM
58
227. Wagner. J. C., The Sequelae of Exposure to Asbestos Dust.. Ann. N. Y\ Acad. Scl. 132:691 (1965).
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'
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: j
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8>00 H?o PRODUCED BY FORD
OTHER REFERENCES
Asbestos (Philadelphia: Secretarial Service, 1968).
A-S'restcs. Ce-er.t Quarterly (New York: Asbestos Cement Products Assoc., 1968).
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Bankoff, E., The Canadian. Asbestos Industry (Toronto: General Research Associates, p. 41, 1958).
Berger, H., Asbestos Fundamentals. Translated from the German (New York: Chemical Publishing Company, 1963).
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Bowles, 0., The Asbestos Industry, D.B. Bur. Mines Bulletin_.5_S2 V (1959).
Monthly Report--Asbestos Production, in Canada (Ottawa: Bureau
of Statistics, 1968).
"
6000
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"\ APPENDIX A
I 8000
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mm
PRODUCED BY FORD
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APPENDIX A
TABLE 5
CANCER OF
THE
LUNG
AMONG
ASBESTOS
43
WORKERS
ft
Place United Kingdom
United Kingdom
Population Studied
Reported deaths from asbestos
Cases of asbestosis in 1,247 autopsies with pneumoconiosis
No. of
Years
Workers Followed
235 1924-1947
121
No. With Lung
Cancer
31/235 <13.1*)
17/121
Comparison Groups
Silicotics (1.32*)
Silicotics (6.9*)
United Kingdom
Asbestos textile workers, industry areas, 20 years' or more exposure
113 1922-1953
11/39 deaths
0.8
Expected
United Kingdom Quebec
Reported deaths from asbestosis
Chrysotile miners and mill workers with over 5 years' enployment
365 5,958
1924-1955 1950-195$
65/365 (17.8*)
9/187 deaths
6+ Expected
T
Pennsylvania
<o37 New York & New Jersey
Workers in asbestos products plant employed in 1938-39, aged 25-64
Insulating workers, over 20 years' union membership
1,495 632
1940-1960 1932-1962
19/186 deaths
45/255 deaths
5.61 Expected
6.6
*
Expected
1*1
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APPENDIX A
TABLE 5 CANCER OF THE LUNG AMONG ASBESTOS WORKERS (Con titlued)
Place California
Dresden
Population Studied
Insulating workers. mixed, 15 years in trade, aged 35-64
All asbestos trade mixed exposures
No. of
Years
workers Followed
529 1954-1957
2,636 1924-1963
No. With Lung
Cancer
10/41 deaths
'
34/150 deaths
Comparison Groups
2.8
Expected
11.4 Expected
United States
Asbestos textile workers employed in 1948-1951, aged 15-64
2,833 1951-1963
24/285 deaths
11.9 Expected
United Kingdom Reported deaths from asbestosis
584 1924-1963 146/584 (25%)
Bulgaria
Agricultural workers near 3,325 an asbestos mine
1962
155/3325 asbestosis
New York
Asbestos insulators employed more than 15 years, aged 40-80
152 1945-1965
18/46 deaths
3.1 Expected
Pennsylvania
Asbestos textile and friction workers
- - ---
-------
68 1957-J.962
13/68 deaths
w
J
APPENDIX A
TABLE 6 "ASBESTOS BODIES IN CONSECUTIVE OR RANDOM AUTOPSIES
T.nrtion
Capetown Miami Pittsburgh Milan Tyneside Jerusalem Glasgow Finland Sweden
%
Total PosiCases tive <24
,, Positive bv Aoe* 25-34 35-44 45-54 55-64 65-74
500 26.4 .5 2.4 4.4 4.6 7.4 7.4 (4.3) (25.6) (28.4) (22.4) (31.6) (28.0)
>75
Sex Year
% Positive*
of Refer-
Female Male Study ence
7.8 18.6 1960 214,216 (20) (30.4)
500 27.2
0
0
1 3.4 5.6
9 8 19.2 1961 214,216
(16.1) (23) (27.2) (3o!6) (31.9) (20.4) (31.6)
100 41
0 5 5 3 13 8 6 16 25 (0) (83) (46) (38) (54) (40) (30) (34) (47)
1964
40
100 51
-------
3 (14)
------r*) 30 (60)
18 (66)
16 (44)
35 (54)
1966
67
311 20.3
0
0.3 1.6 2.9 4.8 7.7 2.9 4.2 16.1 1967
(0) (25) (19.2) (17.3) (18.5) (28.9) (15) (13) (25.5)
11
100 26
(14)
7 Trtf- -1 o (21) (30)
10 16 1967 (29.1) (22.2)
184
100 23
0
0
01
4 11
7
0 23 1967 188
(12) (22) (32) (19)
(0) (37)
264 57.6
1.5 (57)
3.0 3.8
8.7 20.0 16.7 3.8
23.9 33.7
(57) (71) (55) (64) (58.7) (34.5) (54.3) (60)
1966
167
34 35.3
0
0
0
0
11.7 14.7 18.8 14.7 20.6 1966
82
(80) (25) (43) (38) (33)
$L*)\ 0009
)
(continued)
Oi
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APPENDIX A
TABLE 6
"ASBESTOS BODIES" IN CONSECUTIVE OR RANDOM AUTOPSIES (Continued)
Location
%
Total Posi-
% Positive bv Aoe*
Cases tive <24 25-34 35-44 45-54 1 55-64 65-74
Johannesburg
39.2
San Francisco
42
Belfast
200 20
London Montreal
50 6 100 48
(30)* (50)
- -7 (50)
New York
355 50.5
Year
% Positive*
of Refer-
>75 Female Male Study ence
1965
234
1966
43
1965
60
16 (36)
3.9 (29.8)
32 (57)
1964
102
1966
%
y
46.5 1966 (53.7)
195
Numbers in parenthesis represent percentage of group-age or sex.
X*
av\
PRODUCED BY FORD
V,
s APPENDIX A
TABLE 7
COMPOSITION AND PROPERTIES OF ASBESTOS MINERALS66
Approximate Formula
Percentaoe of Maior Comoonents Silica Si02 Alumina AI2O3 Ferrous Oxide FeO Ferric Oxide Fe203 Manganous Oxide MnO Calcium Oxide CaO Magnesium Oxide MgO Sodium Oxide Na20 Potassium Oxide KjO Carbon Dioxide C02 Water of Crystallization HjO
Chrvsotile 3MgO-2SiO2-2H20
40.3
0.7
1.0
.. 1-5
0.2
42.4
0.2
13.7
Crocidolite Na20-3FeOFe2O8Si02*H2O
51.4
20.3 17.5
0.1 0.8
1.4
6.2
0.4 1.9
Amosite 1.5 MgO-5.5FeO8Si02 *H20
49.3
40.9 0.4 0.7 0.4 5.7
0.2
0.3
0.2
1.9 (continued)
t
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PRODUCED BY FORD
)
\
APPENDIX A , TABLE 7
COMPOSITION AND PROPERTIES OF ASBESTOS MINERALS (Continued)
y
Approximate Formula
Chrysotile 3Mg0-2SiO2*2H20
Crocidolite Na20-3FeOFe2O8Si02*H20
Arosite 1.5 MgO-5.5Fe08Si02*H2O
Trace Organic Impurities
..
Oil^ax (mg/100 g fiber) Benso (a )pyrene (uo/100 a fiber)
Trace Inoraanic Impurities (ug/g fiber)
4-7.6
none detected *
4-200 0.2-24
..
" 4-20 0.2-2.4
Pb Sn Ga Bi V Mo Cu Ti Ag Ni
<0 Zv
o
Co .
o Mn
i> Cr w oo
' ..... ,,
"
2
<5
<2
<5 50
<2
35 50 <0.2 5.000 (1.000-14,000)
<200
<5 (<100) 130 (400-500) 1,000 (400-900)
5 <5
<2
<5
<2
<2
7 50
0.2
<10
(<100) 700
<5 (<100) 180 (200)
20 (<100)
20
<5
2
<5
<2 <2
7 300
0.2 1,000
(<100)
1,000
<5 (<100) 7,000 (7,900)
150 (<100)
(continued)
PRODUCED BY FORD
1
J
APPENDIX A
TABLE 7
COMPOSITION AND PROPERTIES OF ASBESTOS MINERALS (Continued)
Approximate Formula Radioactive Contaminants
(uuc/g fiber) *40
Th238 Ra226
Phvsical Properties
Flexibility
Length
\
Texture
Tensile strength
Acid resistance
Heat resistance
Ob Spinnability
%
xs>
Chrvsotile 0.14 0.07
Crocidolite
0.02
<0.01
Amosite
0.55 0.05 0.15
Very flexible Short to 3* Harsh to silky Very high Fairly soluble Good Very good
Fair to good Short to 3" Harsh to soft Very high Very good Poor Fair
Good h" to 6" Coarse but plial Fair Good Good Fair
CD
PRODUCED BY FORD
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APPENDIX A
TABLE 8
WORLD PRODUCTION OF ASBESTOS170 {Short Tons)
M Location
1962
*? North America
Canada (sales) . . . . 1,215,814
United States
(shipments) . . . .
53,190
1963
1964
1,275,530 66,396
1.420,769 101,092
1965
1966b'e
1,387,555 1,479,281
118,275
125,928
South America
Argentina ......
203
Bolivia (exports) . .
56
>
Brasil ... ..................
4,900*
365
10
l,440f
542 7
1,430''f
243 3
1,204
240* 4
1,820
Europe Austria . ....................... Bulgaria ....... Finland? .......
France ................................ Greece ........ Italy ... .................. Portugal ........................... U.5.S.R............................
Yugoslavia .......................
503 l323c 10,869 28,034c
60,860
710,000*'c 7,401
638 l,323c
10,201
26,094 74
63,016 29
755,000*' 9,074
1,433 11,611 24,289
65* 75,573
810,000*' 9,280
' l,433c 13,307
7,506 85*
79,214 53
865,000 10,585
1,430* 13,250
7,720* 85*
90,464
10
925,000 8,411
Africa
00 Botswana ........................... 2,375
o
o
o
Kenya ........ Mozambique ......
212
370
2,368 78
2.161 204
888
136
880 73
3 O C7
Rhodesia, Southern . . 142,195
Oco
o
South Africa .................. Swaziland . ~..................
221,302 32,830
United Arab Republic .
606
142,254 205,744
33,350
192
153,450
215,592 39,862 1,739
176,149
240,752 40,884 3,225
175,000 276,597
36.142 2,057
C
8 o
(continued)
w
<
o
(O
APPENDIX A . i.
TABLE 8
WORLD PRODUCTION OF ASBESTOS (Continued) (Short Tons)
Location
1962
Asia China ........ Cyprus .......
Japan ............................... Korea, South .... Philippines ..... Taiwan ....... TurXey ..;....
100,000
22,391
1,865 15,407
1,333 1,037
525 * 709
Oceania Australia ...................... New Zealand .....
a World Total * . *
18,416 457
2,655OOOc
1963
1964
110,000
19,962 3,038c
18,210
2,120
421 604 408
130,000
13,755 3,710c
17,979
1,402 586
526 1,291
' 13,374 439
2,760,000c
13,545 3,050,000
1965
1966. b, e
140,000 17,622c 4,989 16,451c 1,710
883 1,376
140,000 24,449 7,646 17,067 687
721 1,258
11,647
13,472
3,140,000 3,350,000
wo J"h Estimated. ^ bPreliminary.
*
cRevised.
^Asbestos also is produced in CzechoslovaXia, Eritrea, Malagasy, North Korea, and Rumania. No estimates for these countries are included in the total because production is believed to be negligible.
eCompiled from data available May 1967.
^Bahia only.
^Includes asbestos flour.
`
PRODUCED BY
m O
APPENDIX A
TABLE 9 THE PRODUCTION AND APPARENT CONSUMPTION OF ASBESTOS IN THE UNITED STATES41,170,171
71
^ar
1967 1966 1965 1964 1963 1962 1961 1960 1959 1958 1957 1956 1955 1950 1945 1940
1935
_ Quantities in Short Tons
Product!on
123,190 ;;
125,928 118,275 101,092
66,396 53,190 52,814 45,223 45,459 43,979 43,653 41,312 50,431
Imports
645,110 726,459 719,559 739,361 667,860 675,953 616,529 669,945 713,047 644,331 682.732 689,910 716,480
.
Exports
47,710 46,996 43,126 27,147 10,044
2,949 3,799 5,525 4,461 3,026 2,893 2,950 7,001
Consumption
720,580 805,391 794,708 813,306 . 7241212 726,194 (665,440) 709,193 754,045 685,284 723,492 782,272 759,910 727,002 378,030 270,000 170,000
year .Production_
1967
1966 1965 1964 1963
1962 1961
1960 1959 1958 1957
1956
811,100
11,056 10,162
6,143 5,108 4,677 4,347 4,231 4,391 5,127 4,918
4,742 4,534
.
values. _(X X.-O0OJ
Imports Asbestos . _ Asbestos Products _
866,000 73,100
70,457 72,973 61,739 64,112 (63,000) 63,345 65,006 58,314 60,104 61,939 59,339
86,030 5,763 5,294 3,199
1,304 598 759 857
793 424
350 375 1,497
.
621,963 19,139 16,288 16,267 14,274
13,233 15,223 14,181 12,464
6000 ^62
PRODUCED BY FORD
/: f
\'
\
J * ---
APPENDIX A
* TABLE 10
REGIONAL DISTRIBUTION OF ASBESTOS MINING AND PROCESSING170'171 (Ranging and Production)
Ranh I960
1 Vt.
2 Arir.
3 N .C. 4 Calif.
State 1964
Cf.lif.
Vt. Arir.
N.C.
1966 Calif. Vt. Aris. N.C.
Ouantitv (Short Tons)
1964
1965
1966
55.041
74,587 *
81,671 *
3,469
*
*# *
(55.041) (78,056) (81,671)
Value (X 1.000)
1964
1965
1966
54,419 $6,177 **
$6,945 *
* 441
#*
*
(4,419) (6,177) (6.945)
Data withheld to avoid disclosure of producer's confidential information to the Bureau of Mines.
PRODUCED BY
o09 o Sao'
w
3
iv
V-V
J '
APPENDIX A
\ r.` \
TABLE II ASBESTOS MINES IN THE UNITED STATES, 1966 170
State California
4 3
\%
\
Mineral Chrysotile Chrysotile Chrysotile
Production Rank*
'
Name of Producer
1 Atlas Minerals Corp.
2 Coalinga Asbestos Co.
3 Pacific Asbestos Corp.
Chrysotile
4 Union Carbide Corp. b
Ash Bonding Co.
Location--Coun' v or City of
Mine
Processina Plant
Fresno County Near Mine
Fresno County Near Mine
Calaveras County
Near Mine
San Benito County
Monterey County (King City)
Napa
Vermont
Chrysotile
1 Vermont Asbestos Mines Div. of Ruberoid Co.
Orleans County (Lowell)
Arizona
Chrysotile Chrysotile
1 Jacquays Mining Corp.
Salt River
Valley
(North of
2 Western Asbestos Mfg. Co.
Globe)
o<oP
Chrysotile
3 Metate Asbestos Corp.
o
Kyle Asbestos Mines Of `AYiz?
*
CD
*
LeTourneau Asbestos Corp.a
| North Carolina Crocidolite l Povhatan Mining Co.
aRanked by production only within the State. Tlot in operation during previous years.
Yancey County (Burnsville)
wNJ
PRODUCED BY FORD
APPENDIX A
TABLE 12
APPARENT ASBESTOS CONSUMPTION, 1965170 (In Thousands of Short Tons)
74
Use
Asbestos Industry Production Mining and Processing
Asbestos in Products Textiles Cement Friction Materials Asbestos Paper Floor Tile Paints, Roof Coating, Caulks Plastics Miscellaneous Total Products
World97
66
2,190
111 220
307 85
21 221
3,221
"Based on 25% of world consumption.
United States*
78
17 548
28 55 77
21
5 55
806
i l
6000 1485
i
PRODUCED BY FORD
APPENDIX A
TABLE 13
PROPORTION OF ASBESTOS IN VARIOUS ASBESTOS PRODUCTS170
7S
Product Asbestos textiles ' Asbestos cement Friction materials and gaskets Asbestos paper and products Floor tile Other asbestos products
Percenta Asbestos
B0-100 15-90b
30-80
80-90
10-30 c
U.D.
Chrysotile asbestos is used unless otherwise stated. ^594 to 9 OX chrysotile, with some materials containing as
much as 85# amosite and small amounts of crocidolite and antho-
phyllite.
'
cThese products contain undetermined quantities of chrysotile. tremolite, actinolite. and anfhophyllite.
TABLE 14 QUANTITY AND VALUE OF ASBESTOS INPUT BY INDUSTRY 1963170
Product
. Quantity
Value
Short
Fraction
Fraction
Tons(000) of Total 5(000,000J of Total.
Asbestos textiles
Asbestos cement Friction materials
and gaskets Paper and products Floor tile
Paint and coating fillers
Plastics Other
66
2,190
111 220
307
es
21
220.7
0.02 0.68
0.04 0.07 0.09
0.02 0.01
0.07
26.4 328.5
11.1
19.8 13.2
3.7 9.2 19.7
0.06 0.78
0.03 0.05 0.03
0.01
0.04
Total
3,220.7
1.00
423.3
1.00
e*oo met>
r -i
* PRODUCED BY FOPD
i y :.y i mmm
. -w- L. *v. *****<
APPENDIX A
TABLE 15
POPULATION GROUPS WITH OCCUPATIONAL AND ENVIRONMENTAL EXPOSURE TO ASBESTOS108
Occupational Groups
Asbestos rock miners, loaders, truckers, crushers, millers, asbestos spinners, weavers, electrical appli ance and wire manufacturers, masons, carpenters, heating equipment workers, rubber workers, shingle and tile manufacturers, building material manufacturers, filtering material manufac turers, molders of asbestos products,, asbestos-asphalt makers, putty manufacturers, asbestos cement makers,
asbestos paper, cardboard and brake-lining producers, asbestos felt insulation workers, asbestos sound insu
lation workers, asbestos insu lators, pipe coverers, asbes tos tube wrappers, asbestos cork insulation workers, con struction workers, automobile makers, garage attendants
Nonoccupational Groups
Residents in vicinity of asbestos processing and tex tile mills inhaling plant effluents polluted with asbestos dust, and indivi duals living and working along roads on which asbestos is trucked: residents in the vicinity of asbestos mines; residents in vicinity of building construction and demolition, inhabitants of homes or offices with asbes tos acoustical tile
i
!
PRODUCED BY FORD
APPENDIX A
TABLE 16 ASBESTOS CONTROL EQUIPMENT95
Cost Data
Asbestos Textile Industry Dust extraction equipment
Total capital cost (fixed) Operating cost per year
Operating cost/labor cost Operating cost/total cost
conversion
Asbestos Mines'3
'
Dust extraction equipment
Total capital cost (TCC)
(TCC/TCC of plant) x 100
Operating cost (per year)
,
~ $1,500,000 ~ $ 250,000 ~ 7. % ~ 2.7*
~ $ 360,000 ~ 27.5* ~ $ 195,00Q
77
Specifications
Asbestos Textile Industry Volume of dust-containing air extracted from textile machines
Quantity of asbestos dust filtered per year (at above rate)
Asbestos Mines Total installed horsepower Part used to generate air for dust removal Total air needed (for aspiration and dust removal) per pound of fiber produced
1,000,000 ft3/min or 700 ft3/min/operative 700 tons or 2.B tons/working day
796 230 (29*)
1,350 ft3
^Figures apply to the Turner Bros. Asbestos Co. plant at Rochdale. England.
^Figures apply to the Cape Asbestos Co. at Penge in the
Transvaal. The most modern mill (in Canada), which is 10 times larger, needs only about half the quantity of air stated (using
gravity instead of air-swept mills and horizontal transportation
of ore).
'
m
~
sVy?, -I.Vf
-
6000 1488
PRODUCED BY FORD
/.
V'
APPENDIX A
TABLE 17
ANALYSIS OF ASBESTOS AND ASBESTOS PRODUCTS EXPORTS AND IMPORTS170
Exports
Short Tons
.
1965
1966
Dollars (000) 1965 1966
Re-exports Short Tons ,Dollars(000) 1965 1966 1965 1966
Crude and spinning fibers Nonspinning fibers Waste and refuse
1 ,251 24 ,221 17 ,523
1,455
326
28,017 3,622
17,218 1,323
325 3,973
1,414
50 176 10 30 81 130 13 21
Total
42 ,995
46,690 5,271 5,712
131 306 23 51
Gaskets and packing Brake lining Clutch lining (number) Textiles and yarn Shingles and clapboard Asbestos-cement
Sub total
Other products.
1 ,732 3 ,065 2, 020 ,864
794 5 ,465 6 ,101
*
2,678 4,528 3,630 4,728 2,246,986 1.691
900 1,067 10,010 1,096
4,742 1,588 14,698
4,389
5,261 5,236 1,897 1,326 1,797 1,332 16,849
5,058
11
5,000 5,000
113 231
5,114 5,232 *
1 2
4
37
44
8
1 2 1
41
45
11
Total .
^
19,087 21.907
Imports
Short Tons
Dollars (000)
1965
1966
1965
1966
52 56
Chrysolite
Crude Spinning/
Textiles
All Other
12,496
17,339 643,149
6 ,596
16 ,839 642 ,894
6,245 55,077
6 ,319 56 ,308
Total
672,984
666 ,329
Crocidolite Amosite
Total
Not available
21,165 17,042
711,191
26 ,995 23 ,934
716 .258
70,454
73 ,100
6000 U 8 9
79
APPENDIX A TABLE IB
SELECTED STATISTICS FOR THE ASBESTOS MANUFACTURING INDUSTRY41
(Employment Size)
Number of Employees*
1-49 50-99 100-2,499 over 2,500
Total
Number of Companies
39
6
10
18
73
Number of Plants
39
6
17 62
124
Number of Production ,
Workers
308
231
2,445
12,754
Value of Shipment*
$ (000)
B, 264
4,827
89,131
407,014
15.73B
.509,236
*The employment size cla6B is determined by the total
company employment in all manufacturing activities in the
U.S., including central offices and auxiliaries serving
manufacturing establishments. All establishments of a
company are therefore included in the same employments size
column regardless of establishment size.
i
6000 1490 PRODUCED BY FORD
APPENDIX A ` TABLE 19
SELECTED STATISTICS FOR THE ASBESTOS PRODUCTS INDUSTRY41
BO
Expenditures (in $000) New plant and equipment New structures New machinery and equipment
Total Used plant and equipment
Total
1958
2,419 10,418 12,837 ^ 428 13,265
1963
2,613 9,768 12,381 1.289 13,670
I i i
l
i
/
ii i
%
i
I>
6000 1991
PRODUCED BY FORD
APPENDIX A
81
TABLE 20 ASBESTOS USES85
Textiles:
Varieties used: Yarns and Cords:
Chrysotile, crocidolite, and in part amosite
Processes: Weaving of yarns and cords Braiding (interlacing)
Classification of chrysotile fabrics:
Class 1
2 3 4
5
Quality Code AAAA
AAA
AA A
Underwriters Commercial
Asbestos Content (K)
75-79.9
80-84.9
85-89.9
90-94.9
95-100
Sealing and Packing Materials:
( Packing (woven fabrics.) stuffing for boxes and sleeves manhole rings, boiler covers
Flat Packing:
Gaskets, flanges (on pipes) and containers
1. Without metal: high pressure gasket sheets (rubber)
2. With metal material for sealing cylinder heads and exhausts in motors and combustion engines, and for sealing compressors and turbines
Asbestos Boards and Papers:
Boards
Filtering and clarifying
Coverings, coatings, casings, and jacketings for all
kinds of surfaces
...............
Manufacturing of welders' and melters' shields
Slideways in the glass industry
Handles and fire-doors
Auto Parts
Safes
Protective walls
Curtains, etc.
I
1 . ipww?^w>!|^iwggggpwgggg^
. (continued) 6000
PRODUCED BY FORD
APPENDIX a
. >
WUttii'-
iii
TABLE 20 (Continued) ASBESTOS USES85
Sheets
Inner/outer linings of furnaces and heating vessels drying ovens, incubators, heaters, climatecontrolled spaces, etc.
Plates
Insulating buildings against vibrations (aluminumasbestos)
solar-heat reflecting surfaces (70% of Bolar heat)
Special Asbestos Papers
Filters
Asbestos Cement (10 to 25% asbestos):
Slabs
Corrugated sheets
Pipes
Corrugated tiles for roofs in industry, agriculture, and
dwellings
Planks for platforms in buildings under construction
Balcony canopies
.
Rain gutters
Interior walls
Ventilating shafts
-
Air conditioning assemblies
Pressure piping (for underground drinking water
distribution systems, fuel gas, and sewage)
Cooling towers (electricity-generating stations)
.
Thermal Insulants and Fire-Proofing:
Sprayed asbestos (insulant in both heating and
refrigeration\ sound absorbent (eliminates booming and
improves acoustical properties' of walls and ceilings)
Magnesia asbestos (85S magnesia, 15% asbestos) as
thermal insulant for covering pipes
-
Friction Material:
woven:
Brake lining
Nonwoven: Clutch lining
Transmission lining
(continued)
8000 1493
appendix A
B3
TABLE 20 (Continued)
ASBESTOS USES85
Asbestos Plastics Flooring tiles (asbestos-asphalt tiles and, increasingly, asbestos-polymers of vinyl) Pressed or molded (thermal insulation and in electrical machinery) Resinated asbestos felt (manufacturing of wings and firing of missiles and expansion cones for nozzles of boost motors). Other uses in aircraft industry: nozzles for motor tubes, missile tailpipes, and missile-heat barriers; fuselages for guided missiles, fuel tanks for fighter bombers, cabin floors, etc. Radar (large molded reflectors and scanners)
Asbestos Acid-Resistant Compositionsj
Used mostly in chemical industry
**'
/
8000 )494
MP
PRODUCED BY FORD
'Hitimmk
MMHia
APPENDIX A TABLE 21
1967 LIST OF MANUFACTURED ASBESTOS PRODUCTS85
84
Industry and Product Description
Quantity Measure
Miscellaneous Nonmetallie Mineral Products
Asbestos Products
Asbestos Friction Materials Brake Linings
Woven, containing asbestos yarn, tape, or cloth Molded, including all nonwoven types
Clutch facing
Woven, containing asbestos yarn,
tape, or cloth
Molded,; including all nonwoven types
Linear feet Cubic feet
Thousand pieces Thousand pieces
Asbestos-Cement Shingles and Clapboard Siding shingles and clapboard, including accessories Roofing shingles
Squares Squares
Asphalt Floor Tile Asphalt floor tile
Thousand square yards
Vinyl Asbestos Floor Tile Vinyl asbestos floor tile
'
Thousand Bquare
yards
'
Asbestos Textiles and Other AsbestosCement Products Asbestos textiles
Yarn, cord, and thread Cloth Other asbestos textiles, including
roving, lap, wick, rope, tape, carded fibers, etc.
Pounds Pounds
.
Pounds
;
Asbestos-cement products Flat sheets and wallboard, all
: thicknesses converted to basis
Corrugated sheets Pipe, conduits, and ducts, including
pressure pipe
.100 square feet 100 square feet
Short tons
*
(continued)
6000 1h95
PRODUCED BY FORD
APPENDIX A tl
TABLE 21 (Continued)
B5
1967 LIST OP MANUFACTURED ASBESTOS PRODUCTS85
I i
Industry and Product Description
Quantity Measure
Asbestos felts Roofing-asphalt or tar saturated
Other Other asbestos and asbestos-cement
products, including millboard and prefabricated housing components
Short Tons Short Tons
Gaskets and Insulation
Gaskets, All TypcB Gaskets (for Booling nonmoving parts')
Asbestos, asbestos-metallic, and
asbestos-rubber
'
Packing (except leather, rubber, and metal) and Asbestos Insulations
A6be6t08 compressed sheet
Pounds
Packing (for sealing moving parts)
(
Asbestos, asbestos-metallic, and asbestos-rubber
Thousand pounds
'
Insulation materials containing
asbestos pipe insulation
Cellular and laminated
Linear feet
i 85 percent magnesia
Linear feet
Diatomaceous silica, calcium,
silicate, expanded 6ilica, and
asbestos fiber
Linear feet
Other pipe insulation
Linear feet
Block insulation, including sheet
and lagging
Thousand
i 85 percent magnesia
board feet
i Diatomaceous silica, calcium
i
silicate, expanded silica, and
Thousand
asbestos fiber
board feet
Other block insulation, including celluar and laminated
Thousand board feet
All other asbestos insulation
6909 1496
' PRODUCED BY FORD
APPENDIX A
86
TABLE 22 ASBESTOS PRODUCT MANUFACTURING PLANTS, 196341
vocation
Jew Hampshire Belknap ^ Hillsborough
Total
Massachusetts Essex Franklin Middlesex Suffolk Worcester
Total
Connecticut Fairfield Hartford Middlesex
Total
lew York Albany Kings Orange Suffolk
Total
Jew Jersey Bergen Essex Hudson Mercer Morris
Passaic Somerset Union
Total
No. of Plants with Emplo'/ment of
Total
2 20 50 100 250 500 1,000
Plants 19 49 99 249 499 999 or more
11 11
2 11
1 11 21 22 1
74
1 1 1 3
3 11 11 11
5 1111
1 1
1 3 11 1 11
6 21
1 1
,2
1 1
11 3 21 1 2 1 32 4
1
16 5 2
1 2 il 1 211
3 51
(continued)
8000 169?
PRODUCED BY FORD
i APPENDIX A
87
TABLE 22 (Continued)
ASBESTOS PRODUCT MANUFACTURING PLANTS, 196341
--------------------------- ---.----
No . of Plants with Employment of
Location
Total
1 20 S0- 1 DO- 250 500
1,000
Plants 19 49 99 249 499 999 or more
Pennsylvania Elk Lancaster
Montgomery Northampton
Philadelphia Cit) Potter
1 1.
2 l
3 1
2 1
1 2 1
1
1
Total
Ohio Cuyahoga Paulding Portage Ross
Total
Indiana Henry Huntington Kosciusko Lagrange Lake Rush
93
13
1
11 1 1 1
41
1 1 1
3
1
1
1
11
1 1
1
1 1 1
1
l
Y
Total
Illinois Cook Kankakee Lake Will
Total
6 11
8 S1 1 4 1
14 s 1
22
2 1 21l 1
3 4l
Michigan Wayne
11
Total
11
(continued)
8000 1498 .... mmmmmm wua**
PRODUCED RY POn
APPENDIX A
/
88
TABLE 22 (Continued) ASBESTOS PRODUCT MANUFACTURING PLANTS, 19634*
Location
Total Plants
Wisconsin Milwaukee
1
Total
1
Missouri St. Louis
St. Louis City
2 3
Total
5
Kansas Barton
1
Total
1
Virginia Essex Frederick-,
Norfolk City
1 1
1
Total
3
forth Carolina
Mecklenburg Union
2 1
Total
3
south Carolina Charleston Marlboro
1 1
Total
2
leorgia DeKalb
Talbot Troup
1
1 1
Total
3
1 19
1 1
1 1 1 1 1 1 2
1 1 2
No. 20
of PI ints with EmDlovrnent 50 1 DO- 250 500
of 1,000
49 99 249 499 999
2 2
22
1 1 1
1 1
1
1 1
J // i
1
1 1 1 1 1
1 1
(continued) 8000 r<*99
PRODUCED BY FORD
APPENDIX A
i
*
TABLE 22 (Continued)
ASBESTOS PRODUCT MANUFACTURING PLANTS, 196341
69
Location
Total Plants
119
Florida Dade
11
Total
1'
1
Alabama Mobile
1
Total
1
Mississippi
Hinds Union
1 11
Total
21
Louisiana Jefferson
Orleans
3 3
Total
6
Texas Dallas Ector Grayson Harris
Hill
22 11 1 3
1
Total
83
California A1 ameda Contra Costa Los Angeles Orange Sacramento San Benito San Joaquin San Mateo Santa Clara
Total
2 1 9 1 1 1 1 1 1
18
1 1 '1 1
1
S
JN1TED STATES TOTAL
124
---------------------------- 1-------------------
40
No of Plants with Employment of 2 b- 50- 100- 250- 500- ~ 1,000 49 99 249 499 999 or more
1 1
1
1
2 -1 1
1 ^3
1 1
2
1 21 1
41
11
1 214
1
."
1 1 336
1
10 13 34
21
4
2
wmzmpm
iwwuwwiimmmmim
6000 1500
PRODUCED BY FORD
I
iI APPENDIX B
t!
Y
eooo> 1501 PRODUCED BY FORD
riMWAHMIilMklfel
>i
'I
i (.
92
RESPIRABLE ASBESTOS PIBERS A number of question* arise regarding respirable
asbestos fibers. What length of fiber is respirable? What is the particle-to-mass ratio? Should all fibers, whatever their length or diameter, be counted? if not, can any instrument be designed to select the right size distribution in the atmosphere?
Timbrell2.19 has Btudied the deposition of fibrous material in the respiratory system. Fibers 50 or even 200 u long are found in the lungs because the free-falling speed depends largely on the diameter. Thus, particles less than 3.5 u (moBt asbestos particles are less than 0.5 p) in diameter can possibly penetrate deeply into the lung. The more symmetrical a fiber is, the greater its chance of pene trating. The largest compact particles normally found in the lung are about 10 M in diameter. Limitation on the lengths of the fibers which reach pulmonary air spaces is imposed by the nasal hairs and the small diameters of the respiratory bronchioles. These limitations are summarized in Table 23.
Respirable fibers have been defined by the British Occupational Hygiene Society^^ as fibers less than 200 u long, less than 3.5 U in diameter, and having a length-tobreadth ratio of 3 si. Only the fiberB longer than 5 m in length are counted.
/ <sfi
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j
j . j ; I -
I
.
8000 1502 PRODUCED BY FORD
93
TABLE 23 PENETRATION OF FIBERS THROUGH NASAL HAIRS2*1*9'
Length of Fiber (microns)
% Penetration throuqh Nasal Hairs
. 1st Staqe
2nd Stacie
3rd Staqe
0.5 ' 100 100 100
50 75 57 42
100 .
53
24
11
150
31 10
3
200 26 5 1
250 20 3
300 17 2
350 14 1
Walter23 has investigated the mass of average particles
in the asbestos textile industry (see Table 24). He found that respirable duet contains approximately SO percent asbestos and that 10 particles of dust per ug contain 5 x 105 particles
of asbestos per Mg. Prom this conversion factor the threshold limit value for asbestos can be calculated* as approximately 350 pg/m^ (5 mppcf).
TABLE 24 PARTICLE-MASS RELATIONSHIP OP ASBESTOS AS
A FUNCTION OF FIBER LENGTH229
Total Concentration
, Mg/nr Particles*/cnr (approx)
100 200
400 600
100 400
1,000 2,500
Incineration Residue
ug/nr (aoorox)
50--60 200-300 700-000 1,800-2,000
.
Fiber Length in Microns (approx)
< 150 < 500 < 700 <10,000
. ^Particles counted with a Ronimeter.
*5 mppcfl?7 x 106 p/m3*350 Mg/m3. The concentration estimated in air is 600-6,000 p/m3*1.2 - 12 x 10 9 wg/nr.
8006 1603
' PRODUCED BY FORD
f.Lm
1
lUm
mmimSim
94
Finally, there remains the problem of counting respirable fibers in ambient air. It appears that a fairly sophisticated instrument will be required which can (1) separate the other particles from fibers, (2) identify the asbestos fibers in a host of other fibers, and (3) count only those fibers longer than 5 m and shorter than 200 p with diameters less than 3S m
]
I
I
8000 1504
iI I
PRODUCED BY FORD