Document Lp4mbjQ078GB7ejEM23m1xvGb
FILE NAME Brakes BRK
DATE 1981 Apr 7
DOC BRK077
DOCUMENT DESCRIPTION US Dept of Health Industrial Hygiene Report Assessment of Asbestos Exposure to Mechanics Performing Brake Service Operations
ve
U.S. DEPARTMENT OF HEALTH AND AND Public Health Service Service
INDUSTRIAL HYGIENE ASBESTOS
REPORT
ASSESSMENT OF ASBESTOS EXPOSURE /
MECHANICS PERFORMING BRAKE SERVICE OPERATIONS
REPORT WRITTEN BY Dennis R. Roberts
Ralph D. Zumwalde
DATE OF REPORT
April 27 1981
REPORT # 32.4
Industrial Hygiene Section Industrywide Studies Branch Division of Surveillance Hazard Evaluations and Field Studies National Institute for Occupational Safety and Health
Cincinnati Ohio
INTRODUCTION
A major objective of the National Institute for Occupational Safety and Health NIOSH is to determine environmental exposures of working populations through occupational health research field surveys and industrywide epidemiologic studies Accordingly NIOSH conducted comprehensive industrial hygiene surveys to characterize dust exposures resulting from vehicle brake servicing operations and to make a thorough assessment of work practices utilized as well as document the types of personal protective equipment used Of particular interest was the potential for exposure to asbestos fibers which could be generated by these types of operations Limited studies of workers involved in brake servicing have suggested that their related exposures may be asso-
ciated with asbestos diseases
NIOSH estimates that a workforce of 151,000 brake mechanics and garage workers
in the U.S. is potentially exposed to asbestos Potential exposures are a re-
sult of 128 million pounds of asbestos used annually in the U.S. for the pro-
duction of brake friction materials Besides asbestos other materials e.g.
binders friction modifiers fillers etc. are used in the manufacture of brake linings which can likewise have potential for exposure As noted in one study thirty materials or compounds that make up the binders fiber reinforcers property modifiers etc. were identified during brake lining manufacturing
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BRAKE MATERIALS PRODUCTS AND USAGE
Friction
4
Historical Development of Friction Products
The requirements of early automobile friction materials were relatively mini-
mal Passenger cars were light and designed for low speed operations Brakes
were of an external contracting type and utilized a variety of materials this
included leather and impregnated cotton products which were commonly used
along with wool and felt In 1903 woven asbestos friction materials were first marketed in the United States by the Keasbey and Mattison Company of Ambler
Pennsylvania Because of its superior heat resistance and durability they
rapidly increased in use and soon dominated the market The Model T Ford pro-
vides an example of the changing use of materials Initially cotton bands reinforced with zinc copper or brass wire and impregnated with oils and
bituminous material were used for the brake bands These were soon replaced
by mixed asbestos materials and finally by woven asbestos products The
woven asbestos brakes continued to be the dominant product used in automobiles
until about 1930. They typically contained 70 or more cored asbestos
yarn impregnated with drying oils such as linseed and bituminous material
Molded brake linings were developed in the early 1920's and gained increasing use with the introduction of internal shoe brakes in 1927. By 1940 virtually all automobiles were equipped with molded brake linings although woven products continue to be used in trucks heavy equipment and for specialized applications The molded linings in use were cut to length usually by the manufacturer and mounted on brake shoes using rivets Until the mid 1920's brakes were only mounted on rear wheels However with the development of internal shoes four wheel mountings soon became standard and by 1930 were generally operated hydraulically
As automobiles were designed for use at even higher speeds brake linings im-
Various new materials were introduced
proved in both quality and performance as fillers binders and friction modifiers In 1948 bonded brake linings were
developed and soon accounted for approximately 40 of the original equipment
brake market However they rapidly dominated the replacement market because of the considerable savings in labor during installation In 1965 the first disc brakes were introduced on American automobiles and rapidly increased in use In 1975 virtually all original equipment front wheel brakes on cars were of this type However because of less stringent braking requirements and the difficulty of adapting mechanical parking brakes to the disc configuration the rear wheel brakes on 95 of currently sold cars are still of the drum
variety
Requirements for Brake Linings A constant or slightly decreasing coefficient of friction C.F. with tempera-
tures up to about 1000 is required for an efficient brake lining values of
from 0.30 to 0.45 C.F. are normally sought Lower values produce brakes requiring excess pedal pressure and those with higher values are too sensitive to pressure and develop excess wear Ideally the desired frictional qualities should be maintained throughout the life of the lining material During braking chemical and physical changes occur in the material at the braking surfaces These changes may produce an increase build or a decrease fade in friction Satisfactory linings will fade slightly upon repeated applications but will return to their initial stat~ upon cooling
Low wear of the linings is obviously desirable for economical and practical considerations However high wear resistance can be associated with the tendency of the lining to glaze with a concomitant reduction in the coefficient of friction This can be overcome by allowing a slow alteration of the brake lining material to occur Pyrolysis of the organic binders and thermal decomposition of the chrysotile fibers under braking provide the necessary continuing renewal of the lining surface
The lining should be abrasive to the drum surface In addition to causing
rapid drum wear abrasive linings score the drums which in turn leads to a rapid wearing of the lining Drums made of cast iron and steel are common with steel being the more susceptible to scoring Since brake drums have a hardness of from 3.5 to 4.0 on the MOH scale virtually all lining materials
used have lower hardness values
Other necessary or desirable properties of brake linings include physical strength dimensional stability quiet operation and safe and offensive degradation products Of the various properties desired in the linings greatest attention is paid to build and recovery characteristics Wear problems are not as serious and can more readily be overcome with the mate-
rials available
7,8,9,10 Compounding Ingredients of Brake Linings To achieve the desired friction properties a wide variety of ingredients are commonly used in the manufacturer of automobile brake linings These include
A
Asbestos
Asbestos is used for fiber reinforcement of the friction product Chrysotile
is used almost exclusively and comprises from 40 to 50 percent of the brake
lining Fiber grades 4 through 7 are used and occasionally several sizes are mixed or even calcined to improve performance characteristics Amosite crocidolite or other amphibole asbestos varieties are not used because they
are too harsh and tend to score the brake drums
Organic binders Organic binders are primarily phenolic type resins selected for high binding strength Unmodified phenolic resins when subjected to heat usually become hard and brittle To prevent this linseed cashew nut or China wood oils or cresols are added Rubber which also finds use as a binder imparts desirable friction qualities and improves the flexibility of the lining material
Friction modifiers Friction modifiers are added to achieve a desirable coefficient of friction
over all operating conditions These modifiers also produce a more homogeneous
lining surface Included among these materials are lead zinc brass cashew nut oil graphite and oxides of iron and copper
Fillers
Fillers such as rubber scrap barites clays silica coke coal and other minerals are used These also have utility in achieving desired friction properties in some cases through action as abrasives to recondition braking surfaces It is important to note that one major purpose of the reconditioning
agents is to retard the formation of forsterite which may accumulate on the
surface of the brake lining Forsterite is a mineral not originally present in the brake material but is created by dehydroxylation and recrystallization of chrysotile asbestos at high temperatures The hardness of forsterite hardness 6.5-7.0 on the MOH Scale is such that it tends to score and gouge brake drums and discs hardness 3.5 degrading them prematurely Therefore recrystallization of chrysotile to forsterite is an unwanted effect
Curing agents Curing agents and accelerators are used to assure that appropriate chemical reactions occur to produce the desired brake quality
Types of Brake Linings and Manufacturing Processes In making the of different types of brake linings various manufacturing processes are utilized to achieve a wide range of potential applications
.These include
Wired Back
These are made by a calendering process in which putty stock is formed
into a ribbon about a wire backing The wire reinforcing serves to maintain strength during the curing process Further as linings of this type are invariably riveted the wire reinforcing provides long term structural strength and prevents shearing of the lining at the rivets during braking Linings of this type were extensively produced prior to World War II They are in little use today
Extruded Linings These are manufactured by extruding the soft plastic stock through an appropriately sized rectangular orifice To minimize structural weakness in this
lining curing agents are added to produce a hard inflexible finished product
Sheet Linings These are laminated structures formed by winding a 0.001-0.002 inch film of
stock about a hot roller Since the fabrication procesiss a relatively expen-
sive one linings of this type are not commonly produced for general use
Dry Mixed Types This process involves the dry mixing of various ingredients capable of passing a 200 mesh screen and then molding the lining under pressures of from 1000 to
3000 pounds per square inch The resulting lining is among the most heat
stable of friction materials in use today and obtains wide use in the manufacture of brake blocks for heavy duty service
Millboard Type The manufacture of this type of brake lining material is by a process similar
to that utilized in the paper industry Wet stock is formed and passed over rollers with various drying and baking operations producing sheets of uniform lining material The equipment for producing such materials is expensive but the volume of production leads to an economically produced molded lining
BRAKE LINING REPAIR AND MAINTENANCE PRACTICES
To a large extent the changing character of brake lining materials has led to
changing work practices and differing asbestos exposures over the years From 1920 until about 1930 when braking was done through the use of external brake bands made from woven materials the predominant exposure to asbestos would have come from the cutting and fitting of the woven lining material It is thought that airborne fiber concentrations were considerably less than those developed in later years when machining of molded materials was common
From 1927 when internal brake shoes were developed using molded linings until 1948 when bonded brake linings were introduced all internal brake linings were attached to shoes using rivets The lining material for use in the replacement market would be precut to appropriate size for various brakes
or obtained from rolls of indeterminate length The precut segments would
usually be predrilled at the factory for rapid mounting on shoes In some circumstances however drilling for the rivets and bevelling would be done by the mechanic installing them The use of rolled linings required cutting the
friction material to shape drilling holes for rivets and bevelling the edges
appropriately In this latter circumstance asbestos exposure to workers could be considerable Even when shoes with predrilled and bevelled linings were installed the processes of punching out the rivets on the old shoes and riveting on of the new shoes would give rise to greater exposures than that accompanying the use of bonded linings
With the introduction of bonded linings the need for drilling facing or grinding operations during installation decreased significantly However for a short period of time in the 1950's when automobile shoes were first installed with a fixed anchor some tapering was necessary on uniform thick-
ness bonded linings to achieve a proper fit Previously the end of the shoe
opposite to that of the hydraulic cylinder could be mechanically adjusted Shortly thereafter tapered bonded linings were available from the factory
Subsequent to 1960 considerably fewer bevelling or grinding operations were
performed by an automobile mechanic replacing brake linings
During replacement of internal shoe brakes it was common practice to remove the brake wear dust from the housing by air blowing or brushing After 1970 increasing awareness of the hazards of asbestos and its presence in brakelining dust led to wet brushing wet wiping dry brushing or vacuuming work practices in some brake servicing facilities However even today such improvements in work practices are not universal
In the 1930's and 1940's most automotive shops were relatively small and most mechanics performed all automobile maintenance and repair activities In recent years however there has been an increasing tendency towards specialization with shops existing for brakes and front end work exclusively Here while asbestos exposures during brake work on an individual job may be less than those of previous years some workers are exposed for considerably longer periods of time
SELECTION OF FACILITIES SURVEYED
The purpose of the industrial hygiene study was to investigate and characterize dust exposures resulting from vehicle brake maintenance and repair
operations taking into account the work practices utilized Therefore it was
necessary to locate facilities where a variety of brake servicing techniques
were used as well as where there were differences in number of vehicles ser-
viced Six of the eleven sites selected for the investigation were automobile brake service facilities which performed from 2 to 45 brake jobs per week at an average of 65 minutes per vehicle One of the facilities surveyed only serviced trucks which often required 6-9 hours per vehicle to service brakes with an average of three brake jobs per week The remaining four facilities serviced both autos and trucks and performed from 5 to 45 brake jobs per week which varied in service time depending on the type of vehicle Detailed airborne dust sampling surveys were conducted at each facility
Description of Brake Servicing Operations The servicing procedures found at each facility were basically as follows The vehicle is driven into a repair stall or bay for a brake system examination Pending repairs the wheels are elevated removed and then inspected Loose
dust is cleaned from the drums and brake assemblies by vacuuming wet or dry
brushing using compressed air or a combination of these methods
Parts are then replaced or repaired as needed and the brake systeims re-
assembled and adjusted Test driving the vehicle for proper fitting and adjustment is the final phase of the servicing operation
A brief description of the individual facilities is outlined as follows Industrial hygiene survey data collected at each facility are shown in Tables
1-4
10
Facility A
Facility A a private fleet service garage was responsible for complete
automotive maintenance and repair with the exception of internal engine repair
and exterior painting The shop normally operates 8 hours per day 5 days per week Of the seven employees working at the facility only three were responsible for brake servicing Brake servicing operations were performed two to five jobs per week in either of two service stalls
Facility B
Facility B
a municipal
service
garage
employed
there were three mechanics
that
specialized in brake and clutch service and three employees that operated a
separate brake repair shop specializing in brake shoe and drum reconditioning
The brake mechanics serviced all vehicles which included waste collection
dump and light trucks autos and some 2- and 3- wheeled vehicles The shop operated 8 hours per day 5 days per week
Facility C
At Facility C a municipal garage there was an average of one complete brake service job per day taking about 5 hours per job with most of the vehicles consisting of cars or light trucks There were five employees responsible for
brake servicing and the facility operated 8 hours per day 5 days per week
11
Facility D
At Facility D a municipal garage an average of eight brake jobs per day were performed on cars and trucks Brake maintenance was performed by any of the 60 auto mechanics The hours of operation were 8 hours per day 5 days per week
Facility E
Facility E a private fleet service garage performed complete automotive and light truck maintenance The shop normally operated two shifts 5 days per week and there were usually four time mechanics per shift About one brake job per week per shift was performed
Facility F
Although Facility F was an automobile brake service shop front alignment and tire sales were also part of the shop mechanics duties The three time mechanics worked from two service stalls 12 hours per day 5 days per week Brake maintenance operations consisted of 10 to 14 brake jobs per
week
Facility G
Major services at Facility G an automobile brake service shop consisted of front alignment shock absorber servicing and brake maintenance The normal work week was made up of five hour days and one hour day Three
12
are
service stalls were used by the three time employees for brake servicing operations during the 4 to 6 brake jobs per week
Facility H
Major services provided at Facility H an auto brake shop were front alignment shock absorber service and brake maintenance The three time employees worked from two service stalls hours per day 6 days per week The number of brake jobs per week averaged from 20 to 30
Facility I
Facility I was the largest of the automobile brake service shops surveyed Other services provided by this facility were front alignment and shock
absorber replacement or repair The five time mechanics worked from four
service stalls 9 hours per day 6 days per week Brake maintenance operations consisted of 35 to 45 jobs per week
Facility J
The major services at this facility were front alignment muffler installation and brake maintenance Automobile brake repair operations were performed by the shop's three employees and consisted on the average of 4 to 5 brake jobs per week Normal brake servicing at this facility took about 1
hour and 45 minutes per vehicle
13
Facility K
Facility K a truck brake maintenance facility involved a somewhat different
operatiaonnd exposure Servicing operations were more complex and therefore
involved more employees with fewer vehicles serviced than Afer auto maintenance facilities The four service bays at the facility were used by seven mechanics Other service operations included pad grinding riveting and
punching pad removed and replaced on shoe sand blasting of old shoes
and milling of wheels
SAMPLE COLLECTION AND ANALYSIS
Airborne Samples
Personal and general air samples were collected at each facility on different occasions during a year period Brake servicing operations and areas not in the immediate vicinity of brake work within each facility were monitored to provide asbestos exposure data Personal air samples were collected in the breathing zone of the brake mechanics using Millipore Type AA 37 millimeter mm diameter 0.8 micrometer ...mpore size membrane filters at a calibrated sampling flow rate of 2.0 liters per minute 1pm The filters were changed periodically during the work shift to prevent particulate overloading on the filter weighted average TWA fiber concentrations were determined for the time spent performing brake service at all facilities and peak concentrations determined for time spent cleaning brake dust from drums and assemblies Samples for peak exposures were collected using Gast pumps calibrated at 11.0 or 10.6 1pm using identical media as above At facilities B C and D a 2.0
14
train was used for peak samples Analysis of the membrane filters 1pm sampling
for asbestos fibers by the Occupational
was conducted in accordance with the procedures outlined
Administration Safety and Health
and the NIOSH Manual of
Methods
CAM
12 239
These
procedures
require
the
counting
of
Analytical
than 5 micrometers ...min length and with at least a 3 to fibers greater
length to width aspect ratio utilizing phase contrast optical microscopy at a
of 400-450X Concentrations are expressed as fibers greater than magnification
5 ...m in length per cubic centimeter of air fibers
Random samples from each facility surveyed as well as those samples having high fiber concentrations as determined by the optical counting method were analyzed on a transmission electron microscope TEM utilizing selected area electron diffraction SAED and anenergy dispersive ray analysis EDXRA
Samples were observed at 17,000X magnification with fibers > 1 aspect
ratio sized by length and diameter SAED was attempted on all observed fibers for possible identification In addition EDXRA was performed on individual fibers to determine their elemental composition SAED patterns and EDXRA
elemental spectrum ratios were compared with reference minerals UICC chryso-
.tile and forsterite obtained from the U.S. Smithsonian Institution Sample
preparation and analysis were performed using the NIOSH method described in
the Technical Report Review and Evaluation of Analytical Methods for Environ-
mental Studies of Fibrous Particulate Exposure
General area samples for trace metals lead zinc copper iron and manganese were collected at most facilities using Staplex Type 1A volume samplers at a flow rate of 10 cubic feet per minute and also with
15
a sampling train and flow rate like that used for asbestos fiber collection Samples were analyzed for metals by atomic absorption spectrophotometry in accordance with the NIOSH methods CAM Number 222 186 S341 and
S366 14,15
Bulk Samples
Samples of brake wear dust were collected from the brake drums of several vehicles that were being serviced during the surveys These samples were analyzed by TEM for characterization and identification of fibrous particulates and to determine fiber size distributions
Work Practice Characterization
Considerable emphasis was placed during the surveys on detailing work procedures during brake servicing in order to document the types of cleaning practices i.e. vacuum compressed air brushing etc. used in replacing
brakes As previously described in the section Description of Brake Servicing
Operations the brake servicing work practices utilized were similar for all
facilities surveyed the major difference observed was the methodology
utilized for clean of brake wear dust from the backing
assemblies There were six different types of clean methods observed
during the study Those six methods are described as follows
1. Compressed Air Blow A compressed air stream was used to blow away
brake wear dust from the brake assemblies and drums
16
2. Compressed Stoddard Solvent Mist Blow The same as # except a spray gun containing stoddard solvent was used to produce
a solvent mist for blow
3. Dry Brushing Brake wear dust was brushed away with a small utility brush usually " diameter
4. Wet Brushing Basically the same as dry brushing except the brush was kept saturated with a liquid such as gasoline water or
stoddard solvent
5. Squirt A liquid bottle containing water was used to wash away brake dust This was followed by drying off assemblies
with a cloth
6. Vacuum Cleaning A shop type vacuum cleaner equipped with a HEPA filter was used in combination with compressed air This system included a brake encapsulation cylinder that completely enclosed the backing plate assembly The mechanic operated a compressed air nozzle fixed inside the enclosure to blow off the brake dust which was immediately drawn into the
vacuum system A separate vacuum hose was used to vacuum the
dust from the brake drums
HEPA High Efficiency Particulate Air - 99.7 at efficiency for 0.3
...m diameter aerosols 17
In Methods 1 to 5 and especially 1 to 3 the brake dust
enter the ambient air of the facility Conversely in Metho
contained by the HEPA filter which
may be removed from the va
system and disposed of
SUMMARY OF SURVEY RESULTS
The optical microscopy fiber count analysis for the TWA and peak personal
background area samples collected during the study are summarized in Table 1
The TWA and peak fiber concentrations for mechanics tended to fluctuate
depending
task For
on the brake clean example regardless of
method used and the
the cleaning method
time spent performing the utilized peak exposures
are high up to 15.00 fiber when
compared to their respective TWA ex-
posures and the
0.01 to 0.28 fibers The differences
peak exposures are
perhaps best explained
between the TWA exposures
by variations in work
practices utilized the inconsistencies in performing brake work that existed
mittently and therefore
represents a small percent of the work performed
during the shift
For example
amount the
of time spent servicing brakes
differed among the mechanics in addition to the number of brake jobs that were
performed per shift likewise there were differences in cleaning methods
e.g. compressed air brush vacuum etc. and procedural
distance from brake housing to breathing zone In
addition
techniques
there were
e.g.
some
mechanics who of brake dust as shop size
dropped the brake drums on the
floor causing airborne dispersal
Environmental conditions at each brake service facility such
ventilation controls and open windows and doors would also
affect individual worker exposure and background concentrations of airborne
18
asbestos fibers
Regardless of the cleaning method utilized TWA exposures for mechanics at all facilities were relatively consistent and did not differ significantly from
their respective background ambient levels in facilities TWA exposures The similarities between mechanic TWA and background exposures suggest that all
individuals in the immediate work environment are potentially exposed to the
same fiber concentrations during a normal work shift This observation is further supported by the fact that the mechanics spend much of the work shift away from the work site and in other areas of the facility
TEM Fiber Characterization
Airborne Samples
rs
ad ~
rrr
Samples were randomly selected for transmission electron microscopy TEM with fibers sized by length and diameter In addition fiber concentrations fibers were determined for total fibers and fibers 5 ...m in length These
concentrations were compared to those found by the optical microscopy method
and are reported in Table 2. In all but 3 samples the concentrations of
fibers 5 ...m in length determined by optical microscopy were somewhat higher
than those determined by TEM This difference could have been caused by particulate loss during sample preparation for TEM or because of the small number of fibers actually counted on each sample at low fiber counts small differences in fibers counted by both microscopy methods would have a
significant effect in the calculation of fiber concentrations Besides
19
3
determining the concentrations
for fibers 5 ...m in
length
total
fibers
observed were counted and concentrations calculated As would be expected the
greatest proportion of fibers observed was shorter than 5 ...m in length 80 to
90.
Fibers observed by TEM were identified utilizing SAED and EDXRA Approx-
imately 50 of the fibers analyzed by SAED could not be identified due
to ambiguous diffraction patterns The remaining fibers which were identified indicated the presence of chrysotile 30 and forsterite 20
The presence of fibrous forsterite was probably due to the dehydroxylation
and recrystallization of chrysotile as a result of high temperatures
1,2
650 encountered during braking
Some of the fibers which revealed
ambiguous diffraction patterns appeared to have crystalline structures
similar to both chrysotile and forsterite probably a transition inter-
mediate while others were too small for diffraction analysis When
EDXRA was performed on the fibers confirmation of the SAED analysis
was made for the chrysotile and forsterite fibers Some of those fibers
which gave ambiguous SAED patterns indicated magnesium silicon and
iron in various elemental ratios
As shown in Table 3 when a fiber size distribution was performed for all fibers observed by TEM a geometric mean length of 1.66 ...mand a
geometric mean diameter of 0.14 ...m were determined Likewise for those
fibers identified as asbestos chrysotile a geometric mean length and diameter of 1.70 ...m and 0.15 ...m were determined respectively
20
Brake Dust
Samples of brake wear dust were analyzed by TEM in the same manner as the air-
borne samples Identification was attempted on all fibers using SAED and
EDXRA Approximately 45 of the fibers analyzed by SAED could not be identi-
fied due to ambiguous or the absence of diffraction patterns EDXRA was performed on all fibers observed with elemental analysis being successful on about 70 of the fibers When utilizing SAED and EDXRA many of the fibers observed were positively identified as chrysotile 40 while the remaining were either forsterite 20 or unknown 40 Many of the unknowns were thought to be intermediate recrystallized forms between chrysotile and forsterite In addition a fiber size distribution was performed which
indicated somewhat shorter lengths 0.24-5.88 ...m vs. 0.24-10.0 ...mand smaller
diameters 0.06-0.29 ...m vs. 0.06-1.0 ...mthan those observed in the airborne samples Table )
Trace Metal Analyses
Trace metal analyses were performed on airborne samples collected at Facil-
ities B C D I and K with the results reported in Table 4. Samples were
analyzed for the following metals lead iron zinc copper and manganese As
noted in Table 4 the metals were often detectable n.d. or found in trace
amounts The range of concentrations for all facilities were Pb n.d. - 63.3
m
3
mFe n.d. - 1.5 mg Zn n.d.
352
m
m
g; Cu n.d. - 8.7 mand
Mn n.d. - 3.5 m
21
DISCUSSION
The human toxicological significance for the inhalation of chrysotile asbestos
fibers is well documented and instances of mesothelioma in auto repair
workers
have
been
16,17,18
identified
In
a
detailed
examination
of
90
union
vehicular maintenance workers in New York City with 10 or more years of shop
work 29 had decreased vital capacity the percentage increased with age and
most markedly after 20 years from the outset of auto work Many of the workers
examined showed signs consistent with asbestosis with observed changes noted
in chest rays and indication of restrictive pulmonary function The
prevalence of these changes was significantly higher after 20 years exposure
a result expected after occupational exposure to asbestos
Unlike chrysotile the health effects of exposure to forsterite or transition
series fibers chrysotile with altered crystalline structures are
not well
documented
In
studies
studies
by
Davis
Davis
and
20 Coniam Coniam
and
21 Koshi
in
in
which
which
fibers of chrysotile chrysotile and forsterite were injected into
the pleural and peritoneal cavities of mice the results suggested varying
degrees of toxic effects Fiber implantation animal studies conducted by Pott
et
22,23
al
and
Davis
et
al suggest
that
the morphology and
size
of
a
fiber regardless of fiber type are responsible for its carcinogenicity
Likewise Stanton et 25 suggests that fibers 1.5 ...m in diameter and 8
um in length pose the greatest risk in producing pleural sarcomas These studies tend to suggest that the physical morphology size dimensions and to
a lesser degree chemical and surface characteristics of a fiber are the
determining factor for inducing a biological effect The precise fiber
dimensional characteristics required for these observed pathologic responses
22
have been difficult to determine experimentally because of the difficulties encountered in producing fibers of specific size dimensions
SUMMARY
The TWA airborne asbestos sample results for all facilities were within the
26
current OSHA asbestos standard
This standard states
The hour weighted average TWA airborne concentration of asbestos fibers to which any employee may be exposed shall not exceed 2 fibers longer than 5 micrometers in length per cubic centimeter of air fibers 5 cc The ceiling airborne concentration to which no employee may be exposed shall not exceed 10 fibers 5 cc
However two of four peak sample results for samples collected at Facility I Table ) during the compressed air cleaning of brake assemblies exceeded the OSHA ceiling standard The compressed air cleaning method also indicated the highest overall peak exposures up to 15 cc for all cleaning methods
examined
When the overall TWA and peak sample results are compared to the NIOSH
recommended standard for asbestos 8 of 13 of the TWA exposures for mechanics
indicated concentrations exceeding the recommendation This standard recommends a hour TWA exposure of 0.1 fibers 5 mfibers with a ceiling exposure of 0.5 fibers for any minute sampling period
23
Many of the samples collected yielded such low fiber counts that their co-
efficient of variation CV was above what is considered reliable i.e. greater than 0.38 Consequently the fiber concentration data are best
utilized for comparing exposure variations among the different cleaning
methods practices
CONCLUSION
The results of this and other tudies 1,2 indicate varying concentrations of
asbestos fiber exposure to brake mechanics The exposure concentrations are
apparently affected by the work practices utilized and the existing environmental conditions and controls at each facility The results of this study show that 8 of 13 of the mechanics engaged in brake service had TWA fiber exposures above the NIOSH recommendation however all TWA exposures were below the OSHA standard Furthermore when samples were analyzed by TEM only
30 of the fibers observed were identified as asbestos with the remaining fibers being categorized as forsterite 20 or unknowns 50 As a result of the TEM analysis the interpretation of the asbestos concentrations as determined by optical microscopy is questionable The analysis indicates that
actual asbestos fiber concentrations 5 ...m length are often less than those reported see Table 2
However this does not preclude the possibility of high airborne asbestos
fiber concentrations when all fiber size ranges are considered As determined
analysis
this
28,29
by the TEM analysis in this study and from other reported studies
a
significant number up to 100 of short fibers < m in length are always
24
studies present see Table 2 Likewise some epidemiologic
have indicated
health risk exists for asbestos fibers 5 ...m in length that a potential
Additional supportive evidence has been shown from the studies which various size fibers were implanted in
results animals
of animal
22,23,24,25,30 22,23,24,25,30
These studies concluded that the physical morphology size dimensions and to
a lesser degree chemical and surface characteristics of a fiber are the
determining factor for inducing a biological effect
The mechanics surveyed during this study were either time brake
mechanics who performed only brake maintenance service and may have serviced
to five cars per six days a week or mechanics who undertook only one
up
brake job per week Regardless of the number of brake jobs performed per work
shift the TWA fiber exposures were similar for all the mechanics surveyed The exposures to mechanics who performed time brake work were not significantly higher than the exposures for those who did much less brake
servicing
Conversely
the short
3 term
minutes peak exposures encountered in this
study during the dust clean of braking assemblies were often higher when
compressed air was used All of the cleaning methods surveyed except for
vacuum cleaning had peak fiber concentrations that were near or above the
recommended ceiling exposure level of 0.5 fibers However the com-
pressed air cleaning method was the only type which approached and in two
cases even exceeded the OSHA ceiling exposure limit of 10 fibers These
that brake mechanics are at a higher risk of airfindings strongly suggest borne exposure to asbestos fibers during the cleaning of brake assemblies
25
except when the vacuum cleaning methods are properly utilized
The peak fiber exposures found for mechanics during the cleaning of brake assemblies were higher than most of the TWA exposure concentrations However there is some question as to the accuracy of the fiber counts from the analysis of the peak samples since the number of fibers counted were small resulting in a large coefficient of variation
RECOMMENDATIONS
The data from this study suggests that a potential for airborne fiber exposure exists during brake servicing operations principally during brake assembly cleaning While the fiber exposures reported do not represent 100 asbestos fiber a potential health hazard still exists since at least 30 of the fibers are asbestos Also animal studies suggest that fiber shape and size may be more important than chemical nature in terms of biological activity Further-
more the possibility exists for exposure to a much higher asbestos fiber con-
centrations for fibers 5 ...m length Since there is no known safe asbestos
fiber exposure level and as clinical evidence suggests from a study of
union vehicular maintenance workers in which over 25 had evidence of ray abnormalities consistent with asbestosis it would seem prudent to conclude that a potential health hazard exists during the performance of brake maintenance operations Therefore it is recommended that appropriate control measures for reducing exposures especially during brake assembly cleaning be
instituted at brake maintenance facilities This would best be accomplished by
26
,
using an appropriate vacuum cleaning system to remove all dust from brake assemblies and drums Above all any blow of brake dust by compressed air
must be eliminated To further protect the health of the brake mechanics it
would be advisable to initiate a personal respiratory protection program
would include the wearing of NIOSH approved respirators for asbestos a
This
program for proper fitting and a routine maintenance program for the cleaning and replacing of respirator filters As the exposure data indicates it would only be necessary for mechanics to wear respirators while performing brake
service
In order to minimize asbestos dust exposures to vehicular mechanics performing brake and clutch maintenance NIOSH has prepared guidelines Recommended Procedures for Asbestos Brake and Clutch Servicing see Attachment ) to be utilized during these types of work tasks
27
REFERENCES
1. Lorimer W.V. Rohl A.N. Miller A. Nicholson W.J. and
in Selikoff I.J. Asbestos Exposure Brake Repair Workers in the
United
States Mt. Sinai Journal of Medicine 207-218
June 1976
National 2.
Occupational Hazard Survey U.S. Dept. of Health and Human
Services Public Health Service Centers for Disease Control National
Institute for Occupational Safety and Health estimate April 1981
Stanford Research Institute 712.1000C October 1977
1976
Chemical
Economics
Handbood
Much of the historical information on the development of fricition
products was obtained
Mount Sinai School of
from interviews by Dr. William J.
Medicine with Edward W. Drisane
Nicholson
Friction
Materials Standards Institute Paramus N.J. Harry H. Wagner Jr.
Molded Materials Co. Ridgway Pa
Keasbey and Mattison products catalog 1926. Ambler Pa Friction materials on automotive brakes Fleet Owner August 1963
Carroll W.G. The manufacture 414-417 August 1962
of brake
linings
British Plastics
Anderson A.E. and R.
Unpublished notes
Gealer
Ford Motor
Co.
Detroit
MI
White Andrew J. Brake Dynamics an
inspection station level Motor Veh
Chapter 11 463
4721968
introduction to brakes at Resh of N.H. Lee N.H.
the
10. Rohl A.N. et al Asbestos exposure during brake lining
11.
U.S. Code of Federal Regulations Title 29 part 1910.1001 U.S. Department of Labor Occupational Safety and Health Administration Occupational Safety and Health Standards
12.
Taylor D.G. 1977 NIOSH Manual of Analytical Methods Volume 1 CAM No. 239 Publications No. 77-157
2nd Edition
13.
Zumwalde R.D. and Dement J.M. 1977 Review and Evaluation of
Analytical
Exposures
Methods for Environmental Studies of
DHEW NIOSH Publication No. 77-204
Fibrous
Particulate
14.
Taylor D.G. 1977 NIOSH Manual of Analytical Methods
Volume 1. CAM No. 222 Publication No. 77-157
2nd Edition
15.
Taylor D.G. 1977 NIOSH Manual of Analytical Methods Volume 11I S186 341 366 Publication No. 77-157
2nd Edition
28
16.
Newhouse M.L. and Thompson H. Mesothelioma following exposure to asbestos in the London Med 261-269 1965
of pleura and peritoneum
area Brit J. Ind
17.
McDonald
tumors in
A.D. et Canada
al Epidemiology of primary Cancer 914-19 1970
malignant
mesothelial
Greenberg 18.
M. and Lloyd Davies T.A. Mesothelioma Register
.
1967-1968 Brit J. Ind Med 91-104 1974
19.
Bader M.E. Bader R.A. Teirstein A.S. Miller A. and
Selikoff I.J. Pulmonary function and radiographic changes in 598 workers with varying duration of exposure to asbestos Mount Sinai
J. of Med 492-500 1970
20.
Davis J.M.S. and Coniam S.W. Experimental of Heated Chrysotile Asbestos and Automobile into the Body Cavities of Mice Experimental Volume 19 pp 339-353 1973
Studies on the Effects
Brake Lining Dust Injected and Molecular Pathology
21.
Koshi K. Hayashi H. and Sakabe H. Studies on Serpentine Minerals in Heat Volume 7 pp 66-85 1969
Biological and Mineralogical
Treated State Ind Health
22.
Pott F. Huth F. and Friedricks K.H. Tumorigenic Effect of Fibrous
Dust in Experimental Animals Environmental Health Perspectives Volume 9 pp 313-315 1974
23.
Pott F. Dolgner R. Friedricks K.H. and Huth F. Animal
Experiments Concerning the Carcinogenic Effect of Fibrous Dusts Interpretation of Results Considering the Carcinogenesis in Humans Annales d'Anatomie Pathologique Paris 1976 Volume 21 pp 237-246
24.
Davis J.M.G. The Fibrogenic Effects of Mineral Dusts Injected the Pleural Cavity of Mice British Journal Exp Pathology Volume 53 pp 190-201 1972
into
25.
Stanton M.F. Layard M. Tegeris A. Kent E. The Carcinogenicity of Fibrous
the Rat in Relation to Fiber Dimension
587-603 March 1977
Miller E. May M. and Glass Pleural Response in
J. Natl Cancer Institute
U.S. Code of Federal Section 1910.1001
Regulations
Title
29
Part
1910
Leidel N.A. Bayer S.G. Zumwalde R.D. and Busch K.A. NIOSH Technical Report NIOSH Membrane Filter Method for Evaluating Airborne Asbestos Fibers DHEW NIOSH Publication No. 79-127
February 1979
29
28.
Bayer S.G. Zumwalde R.D. and Brown T.A. Equipment and Procedures for Mounting Millipore Filters and Counting Asbestos Fibers by Phase Contrast Microscopy Available from U.S. Department of Health and Human Services National Institute for Occupational Safety and Health
29.
Gillam J.D. Dement J.M. Lemen R.A. Wagoner J.K. Archer V.E. and Blejer H.P. Mortality Patterns Among Hard Gold Miners Exposed to an Asbestiform Mineral Annals of the York Academy of Sciences 336-344 1976
Rock New
30.
Stanton M.F. Carcinogenesis 1969
Blackwell R.
with Asbestos
and Am
Miller E. Experimental Pulmonary Ind Hyg Assoc J. 236-244
31.
U.S. Department of Health and Human Services Public Health Service
National Institutes of Health Asbestos An Information Resource
DHHS Publication Number NIH 79-161 May 1978
30
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| | ff { | | [ | | | |
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| || |
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||
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Air Peak Peak Sample Sample
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Table 2
Comparison
Air Sample Results For Fibers Between TEM and Optical Microscopy
Analysis
| Optical Microscopy
Transmission Electron Microscopy
|
| 5 ...m in length
5 ...m in length
| Total Fibers
% Fibers
|
|
fibers
|
|
0.54
|
6.0
|
0.58
|
1.18
|
0.13
|
6.84
|
5.59
|
0.82
|
0.01
|
0.01
fibers
|
0.25
|
5.97
|
0.17
|
0.67
|
0.10
|
0.07
|
0.33
|
0.02
|
0.0
|
0.0
: ! fibers
> um in length
|
|
|
0.50
|
50
|
|
11.33
|
53
|
|
1.01
-|
17
|
|
2.35
|
29
|
|
0.74
|
14
|
|
0.43 ,
|
17
|
|
0.39
|
83
|
|
0.02
|
100
|
|
0.11
|
|
0.0
0
|
|
0.02
|
0.19
|
2.72
14
|
|
0.38
|
0.16
|
0.48
|
33
|
|
1.44
|
0.0
|
0.08
|
)
|
0.01
|
0.0
1.43
0
|
0.26
|
0.09
0.09
100
|
|
0.24
|
0.04
|
0.16
|
25
|
|
0.06
|
0.0
|
0.0
|
0
|
0.12 0.01
|
0.01
|
0.0
0.01
|
100
|
-
0.03
|
0
|
|
0.03
|
0.0
|
0.0
|
0
|
|
0.0 Blank |
0.0
|
0.0
|
|
0.12
|
0.42
|
0.86
|
48
|
0.17
|
0.10
|
0.20
|
50
|
0.18
|
0.14
|
0.43
|
33
|
0.06
|
0.05
|
0.15
|
33
|
|
0.12
|
0.50
|
0.73
|
68
|
|
[
|
L
* Note Fibers counted by TEM represent asbestos fibers onol nly y
32
D1AVawoDH saogd or 672 eorz Sovl Pas
| || | | | | ||
|| | | |
|
wi ueay oLt 99 T Brake Fiber
DEAyewoa =
~
y suay | 1 | =| | | =|. | | | | | ||. |
94"
ort-7z"0 Fiber 8"S-47Z0 Dev 19qTYy asuey
Diametr
| | | Range Range Range | | | | | | | Std Std
2.36 sioyrtd 8
raquny Ist ezs_
601
jo
|||||| |||||
dtayewog 1.53 eqeg Aad
Only
0.6-0.18 0.6-0.18 0.10 Es"
Fibers
pas
|
| |||
|
Dust Only
1.53
wi
3sng
fiber fiber data detrmined by
Al Al Transmion aye1g
|
| =|
| =|
| =| |
=
8T*0-90 6z*0-90 oT ot
elep
19qig adsuey -90O -900 ezTs
|
|||| 19qTFz
UV
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239I0N | | | | | | | | | | | | | | | |
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|
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-
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-
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-
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of
=| | | | | | |
|
|
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19.5 zo- < 0 zo
2.3
24.9
19.5
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|
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Standard
TeIW 2 0 10,00 10,00 Recomend
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|
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Detected Analysis
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-
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| | | | ||
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| | | | | | | || | | | ||||
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34
ATTACHMENT I
RECOMMENDED PROCEDURES FOR ASBESTOS BRAKE AND CLUTCH SERVICING
The National Institute for Occupational Safety and Health NIOSH has con-
ducted research on dust exposures which are generated during brake and clutch
servicing Based on data demonstrating the potential for significant asbestos
exposures during brake and clutch servicing NIOSH has investigated various
work practices which are utilized in reducing asbestos exposures These inves-
tigations have indicated that vacuum cleaning systems to be the most effective
method for minimizing asbestos dust exposures during brake and clutch
1 servicing servicing
Vacuum cleaner
testing
testing
have
have demonstrated
that
units
these units operate
reliably within design specifications Therefore NIOSH recommends vacuum
cleaning as the primary method to be used for cleaning of asbestos dust during
brake and clutch servicing operations
The following are additional procedures recommended by NIOSH to minimize
asbestos dust exposures
1. Where possible an area shall be designated for brake and clutch repairs and servicing Entrances into this area shall be posted with the following asbestos exposure warning sign printed in letters of sufficient size and contrast to be readily visible and legible
Asbestos Dust Hazard
Avoid Breathing Dust Wear Assigned Protective Equipment Do Not Remain in Area Unless Your Work Requires It Breathing Asbestos Dust May Be Hazardous to Your Health
35
2. Dust shall first be cleaned from brake drums brake backing plates brake assemblies and clutch assemblies using an industrial type vacuum cleaner equipped with a high efficiency particulate air filter system greater
than 99efficiency for 0.3 ...m diameter aerosols After vacuum cleaning any remaining dust shall be removed using a water dampened cloth or rag
Under no circumstances shall compressed air or a dry brush be used for cleaning If vacuum cleaning equipment is not available the wet brush
cleaning method may be used until a vacuum cleaning system in obtained
Where wet brushing is necessary for cleaning a NIOSH certified respirator approved for asbestos shall be worn
3. During brake pad grinding riveting and punching operations local exhaust ventilation and dust collection systems shall be designed installed and
maintained in accordance with the American National Standard Fundamentals
Governing the Design and Operation of Local Exhaust Systems
ANSI Z9.2 - 1977 to meet the asbestos airborne exposure standard
4. During clutch servicing a NIOSH certified respirator approved for asbestos shall be worn during the removal and cleaning of the clutch pressure plate and housing assembly and during installation of the new clutch assembly Whenever possible cleaning shall be performed with an HEPA vacuum system as described in 2 above
5. All table and floor cleaning in areas where brakes and clutches are repaired shall be done with the HEPA vacuum cleaner as described in 2 above Grinding and riveting machines shall also be cleaned with such a
36
vacuum cleaner and the remaining dust wiped with a water dampened cloth A NIOSH certified respirator approved for asbestos shall be used during this cleaning
If not in effect a respirator program shall be established in accordance with the Occupational Safety and Health Administration OSHA Standards Title 29 U.S. Code of Federal Regulations CFR Part 1910.134 Attachment 2
HEPA vacuum cleaner filters containing asbestos dust cloths or brushes used for wiping brake and clutch assemblies and all liquid used for wet
brushing shall be disposed of in accordance with U.S. Environmental
Protection Agency EPA regulations These regulations state that the
asbestos waste shall be disposed of in sealed impermeable bags or other
containers at a disposal site which meets EPA criteria for asbestos dis-
posal Also the waste containers shall display the following warning label
or tag printed in letters of sufficient size and contrast to be visible and legible
Breathing
CAUTION Contains Asbestos Fibers
Avoid Breathing Dust Asbestos Dust May Cause Serious
Bodily
Harm
The EPA regulations for proper asbestos waste disposal are detailed in Title 40 CFR Part 61 Subparts A and B.
37
8. A NIOSH certified respirator approved for asbestos shall be worn during removal of vacuum bags which contain asbestos dust
9. Consumption of food and beverages shall not be permitted in work areas where asbestos exists An area designated for food consumption shall be separate from the work area so as to provide maximum protection against
asbestos dust contamination
10. If the employee is exposed to airborne concentrations of asbestos fibers which exceed the OSHA ceiling level the OSHA requirement regarding special clothing change rooms locker etc. as detailed in Title 29 CFR Part 1910.1001 D shall be followed
The current OSHA asbestos standard is as follows the hour weighted
average TWA airborne concentrations of asbestos fibers to which any employee
may be exposed shall not exceed 2 fibers longer than 5 micrometers in length per cubic centimeter of air fibers 5 The ceiling airborne concen-
tration to which no employee may be exposed shall not exceed 10 fibers 5
m
OSHA in 1975 proposed an hour TWA of 0.5 fibers 5 mwith a permissible
ceiling exposure of 5 fibers 5 cc for any period not exceeding 15 minutes
NIOSH currently recommends that the TWA exposure to asbestos be 0.1 fibers 5 cc with a ceiling exposure of 0.5 fibers 5 cc for any minute sampling period
38
NOTE Strict adherence to the above procedures should minimize exposures to employees during brake and clutch servicing These recommendations are based on the results of research conducted by NIOSH
Prepared By Division of Surveillance Hazard Evaluations and Field Studies
National Institute for Occupational Safety and Health
Cincinnati Ohio
39