Document a4rm9pqNqpbqad03D46XBaoOa
/.ecepieu Tor presentation at the 32nd Annual Technical Conference of the Society of Plastics Engineers May 13-16, 1974
Not for publication, do not copy or excerpt any portion of this paper.
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CHRYSOTILE ASBESTOS IN PLASTICS
A*
John L. Myers
"CALIDR!A" ASBESTd^fs? o
UNION CARBIDE CORPORATION MINING AND METALS DIVISION NIAGARA FALLS, NEW YORK
.
December 20, 1973 UCC 016074
INTRODUCTION ,
Asbestos has received a great deal of attention and publicity In recent years, especially after it W3s designated a "target health hazard" by OSHA and a "hazardous air pollutanf" by the EPA. Many of the articles on asbestos by the press have been notional ly oriented or distorted and in sane cases stories have been sensationalized, based on obvious misinterpretation of facts. The use of half-truths or unsubstantiated statements has led to general confusion and the unfair castigation of asbestos and products containing asbestos. The purpose of this paper is to put the matter of asbestos use and asbestos hazards in a logical and practical perspective. In this paper the different types of asbestos and their many uses are discussed along with government regulations controlling the use of asbestos. The health hazards associated with asbestos, both occupational and environmental, and some industrial experience with air sampling and dust control measures are also covered.
Y/HAT IS ASBESTOS?
Asbestos is a commerical or generic term used to describe six naturally-occurring "asbestiform" minerals that are fibrous, hydrated metal silicates. The six varieties are divided into two classes, serpentine and amphibole, based on their crystal structure. Chrysotile is the only member of the serpentine class while the amphiboles include crocidolite, amosite, anthophyI I ite, tremolite and actinolite. Chrysotile is by far the most used variety and accounts for over 95 of U.S. consumption, as noted in Table I.
Crocidolite, also known as blue asbestos, is imported from
South Africa. Because of its high mechanical strength and good
resistance to acids and alkalis, it is used to reinforce a
limited variety of plastics where its pronounced color is not
objectionable. Amosite, also imported from South Africa, is
used primarily in thermal insulation. Although there are seme
deposits of anthophyI Iite in the U.S., most of it is imported
from Finland. It is used primarily as a filler for polypropylene
and in insulating materials. A comparison of the four varieties
of asbestos which are of commercial importance is presented in
Table II. It should be noted that there are significant
differences between chrysotile and the amphiboles with regard to
chemical composition and certain physical properties.
WHERE IS ASBESTOS USED AMD WHY?
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Asbestos has served mankind for over 100 years in a broad variety of applications. The general areas in which asbestos is used in the United States are shown in Table III. Based on information from asbestos producers and consumption surveys, it is estimated
that the plastics industry uses about 1/3 of the 800,000 tons consumed annually, which makes it the largest single user of asbestos fiber.
The largest uses of asbestos by the plastics industry are in vinyl/asbestos floor tile and in phenolic molding compounds.. It is also used in other plastics such as polypropylene, polyester, nylon, melamine, epoxy, silicones and vinyls. Asbestos provides
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a valuable function In such products as brake linings, clutch
facings, electrical components, automotive parts, furniture,
boats, sealants, coatings, adhesives and nasties. The most
important functions of asbestos in plastics are reinforcement,
dimensional stability, heat resistance, flow control and
general-purpose filling. Most of the functions are supplied by
short fiber chrysotile asbestos fiber, although longer chrysotile
fibers and other asbestos varieties are sometimes required for
particular properties.
WHY USE CHRYSOTILE?
'
Among the several advantages of chrysotile, which set it apart from the amphibole minerals and account for its widespread and increasing usage, are world wide availability, mechanical strength, flexibility, positive surface charge, low iron content, softness and low refractive index. 1+ is conservatively estimated that chrysotile asbestos is used in over 3,000 applications and in most of these applications it is an essential ingredient for which no replacement is readily available.
The information in Table I shows that the use of chrysotile asbestos and its share of the total market are steadily increasing. This is partly due to technical advances permitting the broader use of chrysotile in plastics and the general decline in the use of asbestos in certain fireproofing and insulating materials. In addition, there is increasing evidence that crocidolite and amosite are more hazardous to human health than chrysotile (I). Since 1970 the use of crocidolite in Britain has been restricted after a panel of experts "concluded there was sufficient evidence to suggest other types of fibre should be substituted for crocidolite wherever possible." (2)
WHAT IS THE ASBESTOS HAZARD?
It is readily accepted that asbestos, like many other foreign
bodies, can cause disabling lung damage (pulmonary fibrosis),
commonly referred to as asbestosis. This disease and
bronchogenic carcinoma (lung cancer) are the two most common
asbestos-related diseases. 1+ is important to note that, based
on epidemiological data, these diseases have occurred primarily
in workers with high, long-term exposures to asbestos dust. It
is of further interest that one noted researcher has reported
that neither of these diseases is peculiarly related to or caused
solely by the inhalation of asbestos fiber (3). Another important
consideration is the relation between cigarette smoking and lung
cenccr as reported by Dr. E. C. Hammond and Dr. I. J. Selikoff (4).
In this study they reported that:'
"It seems clear, then, that lung cancer is uncommon among
asbestos insulation workers who have no history of cigarette
smoking and that if the risk is increased, such increase jisr) o q q
not great."
A JJJ
A third disease, mesothelioma, has more recently been associated
with persons exposed to asbestos. Mesothelioma is on extremely
rare cancer of the lining of the chest (pleura) or the abdominal
cavity (peritoneum). In contrast to the lung diseases, there is
some evidence that mesothelioma can occur after brief exposures
to relatively high fiber levels.
.
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According to the 33-member'Advisory Committee on Asbestos Cancers of the international Agency for Research on Cancer (a division of the World Health Organization):
"There is evidence of an association of mesothelial tumours with air pollution in the neighbourhood of crocido life mines and of factories using mixtures of asbestos fibre types. The evidence relates to conditions many years ago. There is evidence of no excess risk of mesotheliomas from asbestos air pollution which has existed in the neighbourhood of chrysotile and amosite mines. There are reported differences on incidence of mesothelioma between urban and rural areas, the causes of which hove not been established. There is no evidence of a risk to the general public at present." (5)
The same body quoted above has also concluded that there is at
present no evidence of lung damage by asbestos to the general
public; and such evidence as there is doss not indicate any
risk of cancer resulting from asbestos fibers present in water,
beverages, food or in the fluids used for the administration of
drugs.
While there seems to be general agreement that the public is not in any present danger from asbestos, it is also recognized that excessive, long-term occupational exposure can cause serious health problems. Also, if man-made emissions are not controlled, then environmental contamination-couId approach harmful levels. During the past two years, significant legislation has been enacted by the Federal Government to reduce and control occupational exposure to asbestos fibers and to minimize fiber emissions to the environment. Additional standards or regulations have been proposed or enacted by many state and local governments.
SUMMARY OF OSHA REGULATIONS
The V/i I I iams-Steiger Occupational Safety and Health Act of
1970 became effective on April 28, 1971, with the following
Congressional purpose: "to assure so far as possible every
working man and woman in the Nation safe and healthful
working conditions and to preserve our human resources." The
Act established the Occupational Safety and Health Administration
(OSHA) within the Department of Labor, which has responsibility
for administration and enforcement. Research and related
functions are handled by the Department of Health, Education
and Welfare (HEW) through the National Institute of Occupational
Safety and Health (NIOSH). Five million employers and 60
million of the nation's 80 million workers are covered by OSHA.
Specifically excluded from coverage are government employees and
operations which are protected under other Federal health and
safety laws. In a news release issued January 4, 1972, OSHA
announced a Target Health Hazards Program aimed at improving
health factors associated with working conditions. The following
five substances were designated to be the focus of initial and
concerted efforts by OSHA and NIOSH: Asbestos, Colton Dust, .
Silica, Lead and Carbon Monoxide.
A <_ J U j
At the present time new standards have been established only for asbestos; allhough, of the 8,000 toxic substances on the
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NIOSH list, only 500 are covered by standards and many of
Ihesc need updating. The new Standard for Exposure to Asbestos
Dust was published in Ihe Federal Register, Volume 37, Mo. 110
on Wednesday, June 7, 19/2. The basic exposure standard is an
C-hour tine-weighted average (TWA) of 5 fibers, longer than 5
micrometers, per cubic centimeter of air. The TWA limit is
to be reduced to 2 fibers per cubic centimeter on July I, 1976.
A peal; concentration of 10 fibers per cubic centimeter is not
to be exceeded at any time. All of the fiber concentrations
"
are those to which an employee ri3y be exposed without protective
clothing or equipment. The first basic requirement of the new
standard is monitoring to determine whether or not fiber
concentrations are in excess of the exposure limits. Seme
asbestos suppliers provide a monitoring service to customers and
a similar service may be obtained from state health department
officials, insurance carriers, or private consultants. The
low requires that monitoring be repeated as necessary to ensure
that employees are not exposed to levels in excess of the
exposure limits.
.i
Improper interpretation of the regulations has created many misconceptions about the equipment and procedures needed to properly use asbestos. If exposure limits are not exceeded, there are no further compliance requirements except for medical examinations. Medical examinations are required for all employees in any occupation exposed to airborne concentrations of asbestos fibers. The examinations are relatively simple and should cost no more than $50 per year, per employee.
Respirators and special clothing are required in the construction
trade for the spray application of insulation and fireproofing
materials, end for the removal of such materials. This special
protection is not required for any other use of asbestos unless
exposure limits are exceeded. This is also true for other items
such as specially-equipped tools, change rooms, clothes
laundering and waste disposal. Respirators are not a substitute
for engineering controls but the law allows their use while
controls are being implemented, in special situations where
controls are not feasible or adequate, in emergencies, and for
infrequent short-term job assignments. Caution labels are
required on products containing asbestos except where the fibers
have been modified by a bonding agent or other material to
prevent dusting during any normal subsequent use or handling.
Besides raw asbestos fiber, products which require package
labeling could include: dry acoustical spray products and
joint cements, unsaturated roofing felt and textiles, and some
insulating products made without adequate binders. The
labeling of a product does not prohibit its use. It should be
noted here that in at least 90 of the products containing
asbestos, the fibers are solidly locked into the product thereby
presenting little danger of dust generation during normal use and handling of the product (6).
.
EPA STANDARDS
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Whereas OSHA is responsible for the protection of the worker,
the Environmental Protection Agency (EPA) is charged with
improving the environment to which the general public is
.
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exposed. On March 31, 1971, asbestos, along with beryllium and mercury, was identified as a "hazardous air pollutant" by the Administrator of the EPA. National Emission Standards for
asbestos were then published by the EPA in the Federal Register, Vol. 33, No. 65 - Friday, April 6, 1973. Although no numerical emission standards were established, operating criteria are prescribed to prevent or limit asbestos emissions to the outside air from asbestos mills, roadways, certain manufacturing operations, building demolition, and the spray-on application of materials used to insulate or fireproof equipment and machinery. The law further requires that spray-on materials used to insulate or fireproof buildings, structures, pipes, and conduits
shall contain less than \% asbestos on a dry weight basis. This
should significantly reduce emissions to which the general public may be exposed, especially in large urban areas.
'
"...the Administrator (of the EPA) has determined that, in order to provide an ample margin of safety to protect the public health from asbestos, it Is necessary to control emissions from major man-made sources of asbestos emissions into the atmosphere, but that it is not necessary to prohibit all emissions.
In this determination, the Administrator has relied on the National Academy of Sciences' report on asbestos, which concludes: 'Asbestos is too important in our technology and economy for its essential use to be stopped. But, because of the known serious effects of uncontrolled inhalation of asbestos minerals in industry and uncertainty as to the shape and character of the dose-response curve in man, it would be highly imprudent to permit additional contamination of the public environment with asbestos. Continued use at minimal risk to the public requires that the major sources of man-made asbestos emission into the atmosphere be defined and controlled.'" (7)
WHAT IS INDUSTRY DOING?
'
The Asbestos Information Association/Morth America reports that,
during the past 30 years, the asbestos industry has spent millions
of dollars to improve mining, milling, and manufacturing methods (3).
The establishment of safer v/orking conditions has been a prime
target and this work continues unabated and in close association
with government agencies and independent medical researchers (9).
The ultimate goals of the asbestos industry are:
.
.
----- Reduction of work-area dust to minimum levels. ----- Protection of workers from asbestos-related diseases. ----- Maintenance of environmental emissions at levels low enough
to preclude public endangerment.
AIR SAMPLING
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In order to comply with OSHA Standards and to determine the need for dust control measures, air monitoring should bo conducted In areas where asbestos is regularly handled or used. OSHA Standards require that "all doferminations of airborne concentrations of asbestos fibers shall be made by the membrane filter mol hod at 400-'5Tj0a (magnification) (4 millimeter objective) with ph.ose contrast illumination." (10) The equipment for collecting air samples cosfs less than $400 and is readily available. A phase
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If
f
,
contrast microscope can be obtained for as little as $600 or an existing microscope can be modified for ''counting'' the asbestos fibers in compliance with NIOSH criteria (II).
Air samples have been collected and analyzed on a regular basis by the asbestos industry for years. Except for a few applications where dust control is an engineering problem, industry is finding
that dust levels are already within acceptable standards or that minimum changes are necessary to achieve compliance. Although data on many asbestos/plastics applications are not available, the summary in Table IV is typical of our measurements of dust levels during asbestos handling in various types of plants and operations. The dust levels reported are Ceiling Concentrations and it should be noted that the allowable OSKA level is 10 fibers/cc. In most cases, the TWA exposure level would be well below OSHA Standards. Most of the data were collected before the installation of any special dust control measures. Monitoring often shows that obviously dusty conditions are caused by materials other than asbestos. This does not preclude the need for controls but it could change their scope and facilitate compliance with government regulations. Because of "bad press," asbestos is frequently ordered out of use without regard to whether or not a hazard actually exists due to air contamination. If acceptable dust levels are feasible, there is no need to replace asbestos at the expense of product quality or economic penalty. Mr. Gordon Everett of EPA points out that information on the biolcgical effects of asbestos is very limited and that the effects of many substitutes have not been investigated at all. Before asbestos is replaced, it should be certain that a safer alternative is available (12).
Obviously there are more people exposed to products containing
asbestos than there are to raw asbestos fibers. As noted
previously, over 90 of the asbestos used in this country is in
products in which the asbestos is "locked in" or bound with
cement, plastics or other binders so that there is no release, or
at least no significant release, of fibers in work areas or to
the environment. Materials or products with locked-in fibers
would include: floor tile, polyester resins, phenolics, sealants,
coatings, brake linings, friction materials, rubber, roofing compounds
and reinforced plastics. Since an abrading action on some of
these products could release asbestos fibers, appropriate monitoring
and/or control measures should be instituted if it is thought
that such action would release fibers.
DUST C0MTR0L MEASURES
A2400C
Asbestos producers and users are spending a considerable amount of time and money on various dust control measures. Conventional means to achieve minimum dust levels include: filtered ventilation systems on process equipment, local ventilation for saws and similar tools, conversion to a "wetted" operation, leak-proof packaging, vacuum cl can-up, more C3re in bag disposal and other asbestos waste handling, and automatic bag openers. Unusual innovations include: pelletized asbestos, special packaging, and treated products.
Only short-fiber chrysotlle Is available as pel lots, but
'
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this product servos a fair portion of the asbestos market. Pellets not only reduce dust during conventional handling but
they arc also available in bulk hopper cars and can bo transferred and used in totally enclosed systems. Barring leaks in the system, dust in work areas is virtually eliminated. Used in bulk, asbestos pellets also reduce shipping costs, eliminate warehouse storage and handling, facilitate automation, reduce clean-up, and eliminate bag handling and disposal. The pellets contain no binder and are friable enough to be dispersed in dry form or in aqueous or resinous systems with conventional highshear grinding equipment (13).
Several types of special packag ing-^re currently available end
suppliers consider customer requests for unusual requirements.
The floor tile industry can obtain asbestos in plastic bags
which can be added directly to the compounding operation. Asbestos
in bleached paper bags assembled with water-soluble glue and
printed with water-dispersible ink can be added directly to
paper-rnaki ng furnishes or acoustical ceiling tile formulations.
Water-proof bags are available to permit slurrying of the asbestos
in the bag. Wider use of siir i nk-f i 1 m i ng is being offered to
reduce dust during bag handling, transportation and storage.
Although "wetted" asbestos is not generally available, most suppliers are working with customers to provide "dustless" products. When justified by market demand, asbestos can be treated with water, mineral spirits, glycol or other materials compatible with the application or system.
CONCLUSION
Asbestos is one of industry's many raw materials which involves a potential hazard when not used with reasonable respect and care. Although all forms of asbestos are recognized as hazardous to health when inhaled excessively, there is growing evidence that crocidolite and amosite are more hazardous than chrysotile. Fortunately the plastics industry uses primarily chrysotile asbestos and in most products the fibers are locked-in to prevent airborne contamination. Although asbestos dust levels are generally lower than expected, industry continues to expend large amounts of time and money to further improve the quality of the workplace. Although the genera I public is not currently in danger, occupational controls are required to prevent future environmental contamination.
Chrysotile asbestos is an important and necessary raw material, vital to the nation's safety and economy; and, with proper control, it can be used safely and in compliance with government regulations. Medical, scientific, government, and industrial personnel must continue to work closely together to establish reasonable exposure limits, provide safe work areas, and eliminate any possibility of public endangerment.
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REFERENCES:
1. Enterlino, P. E. and V. Henderson, "Type of Asbestos and
Respiratory Cancer in the Asbestos Industry," Arch. Environ.
Heal th/Vo 1. 27, PP. 312-317 (Nov. 1973).
.
2. Wagner, J. C., "Current Opinions On The Asbestos Cancer Problem," Ann. Occup. Hyg., Vol. 15, pp. 61-64 (1972).
3. Wright, G. W., Statement before U.S. Dept, of Labor, Occupational Safety and Health Hearing on Proposed Occupational Asbestos Standard, p. 3 (March 16, 1972).
4. Hammond, E. C. and I. J. Selikoff, "Relation Of Cigarette Smoking To Risk of Death Of Asbestos - Associated Disease Among Insulation Workers In The United States," presented at the meeting of the Working Group to Assess Biological Effects of Asbestos, International Agency for Research on Cancer, Lyon, France (October 4, 1972).
5. "Report of The Advisory Committee on Asbestos Cancers," Brit. J. industr. fied., Vol. 30, pp.180-185 (1973).
6 "Asbestos," National Safety News (October 9, 1973).
7 "National Emission Standards for Hazardous Air Pollutants,"' Federal Register, Vol. 38, No.. 65, p. 8320 (April 6, 1973).
8 "Protecting The Asbestos Worker," Booklet No. I0ID37, p. 5, The Asbestos Information Associaticn/North America.
9 Selikoff, I. J., "Partnership For Prevention," Industrial Medicine, Vol. 39, No. 4, pp. 21-25 (April 1970).
10. "Standard For Exposure To Asbestos Dust," Federal Register, Vol. 37, No. NO, p. 11320 (June 7, 1972). '
11. Bayer, S. G. et el, "Equipment and Procedures For Mounting Mi 11ipore Filters and Counting Asbestos Fibres By Phase Contrast Microscopy," Bureau of Occupational Safety and Health, U.S. Dept, of Health, Education, and Welfare, (February 1969).
12. "Asbestos Health Question Perplexes Experts," Chemical and Engineering News, pp. 18-19 (December 10, 1973)
13. Myers, J. L., "Calidria Asbestos Pellets," ASBESTOS (October 1971)
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TABLE I
APPARENT U.S. CONSUMPTION OF A'SESTOS. TCNS* If of Total Shown In Parentheses)
Year
1967 1963 1969 1970 1971 1972
Total
720533 817363 734321 32ei3l 758571 803554
Chrvsotile
686044(95) 775711(95) 749703(96) 695770(96) 729272(96) 791020(98)
Amoslte
12553(1.7) 20467(2.5) 14618(1.9) 14261(2.0) 14550(1.9)
7125(0.9)
Croc IdolIte
14917(2.1) 13965(1.7) 10558(1.3) 8935(1.2) 6953(0.9) 5374(0.7)
Information based on import and production data from United States Bureau of Mines Minerals Yearbooks.
TABLE II
COMPARATIVE DATA FOR ASBESTOS MINERALS
FORMULA
CHRYSOTILE 3Mg0-2Si02-2H20
CROC IDOLITE
h'a^' Fe203* 3Fe0*
8S102- H20
AMOSITE
l.5MgO'5.5FeO8Si02'H20
ANTH0PHYLLITE 7Mg0-8Si02-H2(
COMPOSITION,? S102 MgO FeO F205
AI203
HjO CeO NajO CaO+Na^
CRYSTALS
COLOR TEXTURE FLEXIBILITY HARDNESS, Mohs FIBER DIA., A TENSILE, Mosi Surface ckg. RES. TO AGIO RES. TO ALK.
37-44 39-44
0-6 0-5 0-2 12-15 0-5
Fine Fibers
Gray/Green Soft/Si 1ky Very Gcod 2.5-4 ISO-300 SCO Posi t i ve Poor Good
49-53 0-3 13-20 17-20 2-5 -
4-8 ' *
Brltt'le Fibers
Blue Harsh1 Good 4
600-900 600 Negative Good Good
'
49-53 1-7
34-44 .-
2-9 2-5
0-3
Prismatic Crystals Gray/Brown Harsh Good 5.5-6 600-900 200 Negative Good Fair
56-58 28-34
3-12 -
0-2 1-6 . '
Prismatic Crystals Grey Harsh Poor 5.5-6 600-900 <4 Negative Very Good Good
Source: Modern Plastics EncyclopediafI972c3), and Encyclopedia of Chemical Technology, Volume 2, p. 136(1943).
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TABLE III
r- APPARENT U.S. CONSUMPTION OF ASBESTOS BY GENERAL USE AREAS
Area of Use
% of Consumption*
Construction Floor Tile Felt and Paper Friction & Packing Insulation Textiles Other
. 40
15 15 14 3 2 II
*Author's interpretation of data from the USBM Minerals Yearbook - Asbestos-1972, the Asbestos Information Association/ North America, and personal communications with Mr. R. A. Clifton
of the USBM.
TABLE IV TYPICAL AIR SAMPLING RESULTS
Type Plant or Operation
Floor Tile Polyester Phenolic Compounding Handling Phenolic Caulks and Sealants Gypsum Compounds
Ceiling Concentration, Asbestos Fibers/cc
1-3 . |-3
2-5 3-14 0-8 2-9
Source: Union Carbide Corporation, from air monitoring reports.
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Research and Development Department Mining and Metals Division - UCC ' Niagara Falls, New York g . November 16, 1972
RESPIRATORY PROTECTION
In the Research and' Development Department, equipment is designed, insofar as possible, to eliminate the necessity of work being performed in obnoxious or toxic dust or fume atmospheres.
Exhaust systems, including dust collectors, are used wherever possible to eliminate any undesirable conditions from work areas.
For those occasional jobs where it is impractical to eliminate dust and/or fume conditions, the following respirator program is in effect. All personnel have been instructed in use and care of respirators.
1. Two stations have been established as a source of clean, sterilized, respirators for general use.
' These respirators are MSA Dustfoe 66, with MSA BM 2166 filter. Clean, bagged, respirators are obtained in either Building 170, or from the clerks' office in Building 166, and are returned to the same location after use for cleaning and sterilizing.
2. MSA Comfo respirators with Ultra Filter Cartridge Type H, No. 76876 have been issued to personnel in laboratories where there is a possibility of asbestos dust in_jt.he,atmosphere. After use, these are to be returned to the clerks' office. Building 166, in exchange for clean, sterilized respirators of the same type. This filter is 99*98$ efficient for 0.3 micron particulates.
3- MSA Clear View Face Masks with MSA Canister, GML, 883^2 (for atmospheres containing chlorine, mercury vapors, and toxic dusts) have been issued to personnel in the chlorides area of Building 99, "who have been instructed on the use and clean ing of the respirator and canister replacement, as required. These masks must not
be used where the oxygen content of the air is less than 16$, or where the gas or
vapor concentration is greater than 0.5$ by volume.
For operations where there is a potential of higher concentrations of toxic dust or fumes, air line respirators and Scott Air Paks are installed and personnel have been instructed in their use.
For emergencies, portable oxygen units and Chemox self contained breathing apparatus are placed in several locations in the department, and personnel are periodically trained in their use.
R & D Safety Steering Committee
C. M. Offenhauer
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