Document b5ZeMddoD4aYrdaMVM6d7vpGZ
FILE NAME Brakes BRK
DATE 2008
DOC BRK184
DOCUMENT DESCRIPTION Journal Article - Exposure to Chrysotile Associated with Working with Brake Pads and Shoes
Ann Occup Hyg pp 1-17
'The Author 2008 Published by Oxford University Press
on behalf of the British Occupational Hygiene Society doi 10 men028
Exposure to Chrysotile Asbestos Associated with Unpacking and Repacking Boxes of Automobile
Brake Pads and Shoes
MADL,, MURBACH,, K.
L. L. SCOTTD. M.
B. L. FINLEY,,and D. J. PAUSTENBACH,,
K. A. FEHLING,,
ChemRisk Inc. 25 Jessie Street Suite 1800 San Francisco CA 94105 USA 2ChemRisk Inc.
Richmond Avenue Suite 350 Houston TX 77042 USA
10375
Received 15 November 2007 in final form 14 April 2008
Industrial hygiene surveys and epidemiologic studies of auto mechanics have shown that these
workers are not at an increased risk of asbestos disease however concerns continue to
be raised regarding asbestos exposure from containing brakes Handling new asbestos-
containing brake components has recently been suggested as a potential source of asbestos
exposure A simulation study involving the unpacking and repacking of 105 boxes of brakes for
vehicles ca. 1946-80 including 62 boxes of brake pads and 43 boxes of brake shoes was con-
ducted to examine how this activity might contribute to both short and h weighted
average exposures to asbestos Breathing zone samples on the lapel of a volunteer worker n ==
80 and area samples at bystander e.g. 1.5 m from worker n = 56 remote area n = 26 and
ambient n = 10 locations collected during the unpacking and repacking of boxes of asbestos-
containing brakes were analyzed by phase contrast microscopy and transmission electron
microscopy Exposure to airborne asbestos was characterized for a variety of parameters in-
cluding the number of boxes handled brake type i.e. pads versus shoes and the distance from
the activity i.e. worker bystander and remote area This study also evaluated the fiber size
and morphology distribution according to the International Organization for Standardization
analytical method for asbestos It was observed that ) airborne asbestos concentrations in-
creased with the number of boxes unpacked and repacked ii handling boxes of brake pads
resulted in higher worker asbestos exposures compared to handling boxes of brake shoes
iii cleanup and handling tasks produced less airborne asbestos than handling boxes
of brakes and iv fiber size and morphology analysis showed that while the majority of fibers
e.g. were free
not associated with a cluster or matrix 30 were respirable and even fewer
were of the size range 20 mlength considered to pose the greatest risk of asbestos
disease It was found that average airborne chrysotile concentrations 30 min ranged from
0.086 to 0.368 and 0.021 to 0.126 f cc,,for a worker unpacking and repacking 4-20 boxes of
asbestos brake pads and 4-20 boxes of brake shoes respectively Additionally average airborne
exposures 30 min at bystander locations ranged from 0.004 to 0.035 and 0.002 to 0.011 f ccfl,,
when 4-20 boxes of brake pads and 4-20 boxes of brake shoes were handled respectively These
data show that a worker handling a relatively large number of boxes of brakes over short pe-
riods of time will not be exposed to airborne asbestos in excess of its historical or current short-
term occupational exposure limits
Keywords asbestos automobile brakes exposure assessment
INTRODUCTION
Over the last 30 years significant attention has been paid to evaluating asbestos exposures and the poten-
Author to whom correspondence should be addressed Tel 1-415-618-3200 fax 1-415-896-2444
mail amadl@chemrisk.com amadl@chemrisk.com
tial risk of asbestos diseases among garage
mechanics Paustenbach et al 2004 Such interest
stems from decades use of chrysotile asbestos
in automobile brake pads and shoes Chrysotile's su-
perior
characteristics
as good
tensile
strength
,
durabilitydurabilty, flexibility such heatgood resistancetensile provided
resistance
the auto industry with a friction material that could
1 of 17
2 of 17
A. K. Madl et al
withstand extreme temperatures pressure and stress
Skinner et al 1988 Sheehy et al 1989 Paustenbach et al 2004 These characteristics were particularly necessary for safety as automobiles throughout the 20th century became larger heavier and better able to attain greater speeds Harper 1998
Despite the fact that numerous studies have shown that garage mechanics were historically exposed to airborne asbestos levels below contemporaneous and current occupational standards and are not at an
increased risk of asbestos disease McDonald
and McDonald 1980 Teta et al 1983 Spirtas et al 1985 Spirtas et al 1994 Woitowitz and Rodelsperger 1994 Teschke et al 1997 Agudo et al 2000 Wong 2001 Paustenbach et al 2003 Goodman et al 2004 Hessel et al 2004 Paustenbach et al 2004 concerns continue to be raised regarding the handling of containing brake components Handling new brake components is an aspect of brake repair work that has recently been suggested as a potential source of asbestos exposure and thus a
hazard to individuals in work environments where these
components are used Atkinson et al 2004 Handling new brake components is not limited to brake mechanics retail automobile parts store and distribution center personnel also face potential exposure to asbestos during the handling of boxes of asbestos brakes Fig )
Residual asbestos fibers might be present inside new brake box for example due to wear during product shipping or as a result of airborne fibers settling into the open box in the packaging facility These resid-
ual fibers may become airborne when the brakes are re-
moved from the box or repacked into the original box
or another container
Several studies have assessed airborne asbestos exposures to automobile and brake mechanics
Paustenbach et al 2003 however it is not readily apparent that any of these studies included the handling of new brake components in their short or workday exposure estimates The purpose of the present evaluation was to characterize airborne asbestos exposures associated with typical tasks that might be performed by a mechanic in a repair shop a counter salesperson in a parts shop or a parts picker in an industrial warehouse in handling of boxes of new containing replacement brakes Given that replacement asbestos brakes are currently available from some parts suppliers the potential for handling asbestos brakes is not only a historical issue This study provides exposure information that improves the knowledge of the historic and current potential hazards associated with handling these products
METHODS
Testing was conducted in two phases Phase I 27 July 2004 focused on understanding and characterizing the plausible number of boxes that could be unpacked and repacked within a specific period of time as well as identifying optimal airflow rates and sample times Using the sampling parameters identified in the first phase Phase II 5 and 6 November 2005 testing was conducted to increase the sample size of a lower and upper bound handling sce-
nario as well as to evaluate other related tasks i.e. cleanup and clothes handling that might be associated with asbestos exposure In both phases of testing breathing zone air samples were collected from the worker's lapel In addition area samples were collected at bystander 1.5 m from the main activity remote 7.6-9.1 m from the main activity and ambient outside testing facility locations Figs 2 and 3 Protocol for this simulation study was approved by an accredited Institutional Review Board Essex Institutional Review Board Inc. Lebanon NJ USA
Fig 1. Photo of brake replacement parts storage area in an automobile parts supply and repair shop It shows storage area
of replacement brake parts in a vintage auto parts facility where the majority of boxes of brakes were purchased for the simulation study The volume of brakes that can be stored in
a relatively small facility or operation can be substantial
Description of site conditions
The automobile repair shop where the study was conducted has been previously described in detail Paustenbach et al 2006 The shop which is located in Santa Rosa CA is a relatively large garage with an open floor plan 30.8 m wide by 14.5 m deep with a 4.6 m ceiling Fig 2 To prevent air measurements from being confounded by other
Chrysotile Exposure from Boxes of Brakes
a
4 -4 27 m-
5 service overhead doors
||
[i
[ii
s
-427 -427 m Fem 27 m Peg 27 mm -427-427 -427 m
Enclosed t
Waiting
Area
3 of 17
971
971
Garage ceiling height 4.67 m
Bystander
Bystander
122-152
a
ue
Bystander
-
"i+
Oo
40
m
09
Remote
CA Area
09 os ome aon
i
!
374
I
374
i
{
-
80 m
Counter dimensions
36 47 x 95
1 '
i ' |
Cot 84
Denotes ceiling heights between 2 13 and 2.44 meters
Ambient Area
Fig 2. Diagram of automotive repair shop and locations of area sampling stations
repair activities in the shop no other automobile repair work was conducted during the study Additionally the shop was not ventilated with heating or air conditioning and all entry and service doors were closed during testing
Description of boxes of brake pads and shoes
A total of 105 boxes of brakes including 62 boxes of brake pads and 43 boxes of brake shoes were identified and purchased from vintage automotive parts suppliers and repair facilities primarily located
in Arizona and California These brake boxes were
not opened by investigators prior to testing so that the study's results would mimic a worker opening a new unused box of replacement brakes The investigators worked with personnel at the vintage automobile parts suppliers and repair facilities to identify boxes most likely to contain asbestos brake pads and shoes Fig 4 Based on the historical knowledge of the parts supplier the boxes were iden-
tified with brand and year of the vehicle for which its
replacement brakes were believed to contain asbestos In addition the boxes were inspected for information regarding the composition of the brakes e.g. asbestos warning labels Replacement brakes identified for the study were made for passenger vehicles and were manufactured prior to the mid 1970s by 15 different brake manufacturers Boxes of brakes were typically undisturbed for several years according to the parts suppliers and were in good
structural condition
Given the scarcity of unused vintage boxes of containing brakes the same boxes of brakes were used for both Phase I and II testing in the study After Phase I the boxes of brakes were shipped round to a location on the East Coast via ground transportation in order to simulate the dust generated from the rubbing of brake parts during shipment After shipment these boxes of brakes were not opened until Phase II of testing In addition boxes of brakes that were unpacked and repacked on the first day of Phase II testing were not used for the second day of sampling Each box then was unpacked and repacked only once during each phase of testing
Description of work conditions and exposure
scenarios
The study was conducted in an automobile repair shop because it presented a more realistic environment in terms of conditions potentially experienced in a brake repair or auto parts shop This shop for example had a counter of a height 1.1 m that would typically be encountered in these kinds of settings e.g. closer to the breathing zone than a standard height table All handling work was performed by a single volunteer and was conducted in a manner consistent to that described by interviewed career automotive mechanics and parts suppliers These interviews revealed that in a parts supply or repair shop new replacement brakes would be removed from the box and compared to the old brake component to confirm that the correct part was indeed ordered In circumstances where the correct part was not
4 of 17
A. K. Madl et al
Sampling Sequence of Testing I Event 1
Event 2
Ventilation
Worker
Right and lapel [ min | [ min |
Right and left lapel |
min
|
Bystander Remote area
Four locations [ Two locations I
min
|
min
|
Summary of Testing I Events
Event No. Brake Type
No. of Boxes Handled
15 min
30 min
1
Pad
2
wN
Pad
4
6
wN
Pad
8
43
Pad
12
23
43
Pad
16
6
Pad
20
36
7
Shoe
2
8
Shoe
4
6
g
Shoe
8
10
Shoe
12
20
11
Shoe
17
Sampling Sequence of Testing II
Event 1
Worker
Right lapel | min | min
Ventilation
|
Right and left lapel |
100
Bystander
Four locations [
min
|
Background
Background
|
Remote area
Two locations |
min
|
Summary of Testing II Events
Event Brake Type
-234
Shoe
No. of Boxes Handled
15 min
30 min
4
4
-234
Shoo
16
16
-234
Pad
4
4
-234
Pad
16
16
5
Cleanup
6
Shoe
4
4
7
Shoe
16
16
8
Pad
4
4
9
Pad
16
16
10
Cleanup
11 Clothes handling
Fig 3. Schematic of sampling regimen of airborne asbestos samples collected at various locations within the shop during the unpacking of boxes of brake pads and shoes
identified this task would have to be duplicated Thus during the simulation study boxes of brakes were stored on a cart within reach of the worker
new replacement brakes were opened compared to a demonstrative brake and then repacked in their original boxes Generally four brake shoes or brake pads were in each box however in some circumstances each brake shoe was packaged in separate boxes
Airborne asbestos concentrations were character-
ized for a worker handling between 2 and 20 boxes of brakes within a min time period or 6-36 boxes of brakes within a min time period Tables 1 and 2 In addition airborne asbestos concentrations were measured during cleanup of dust that accumulated on the counter and during the handling of
clothes worn during the handling activities The handling task involved shaking and folding cloth coveralls worn by the volunteer during each day of testing to simulate the handling and laundering of potentially contaminated work clothes More specifically clean newly purchased cloth coveralls were worn during the entire duration of testing and were carefully removed by the worker as not to disturb the potentially adhered fibers Each coverall n = 3 was stored in separate plastic bags until the last day of testing when the handling task was conducted The simulated handling task involved repeatedly shaking folding and turning clothes inside out for ~ to 2 min for each pair of overalls Although no fibers or debris were visible
Chrysotile Exposure from Boxes of Brakes
5 of 17
Fig 4. Photo of example brake shoes included in the exposure simulation study A blok relined shoes manufactured for Hudson 1953-54 IHC 1961-62 Jeep 1946-67 and Willys 1951-55 vehicles Warnings on this particular brake shoe box
included Caution Contains asbestos fibers Avoid creating dust Breathing asbestos dust may cause serious bodily harm
and Do not regrind these brake shoes
on the coveralls after each day of testing some particles were observed in the air during the clotheshandling task Transmission electron microscopy TEM analysis of air samples was used to evaluate the proportion of airborne particles that were asbestos versus asbestos Cleanup of dust found on the countertop after testing was performed with dry and wet paper towels and wipes and was subsequently collected for bulk sample analysis via polarized light microscopy PLM The debris which had settled onto the countertop appeared to consist mostly of cardboard box fragments and debris The counter surface was cleaned for an approximate duration of 1-2 min Air samples collected during clothes handling and cleanup tasks followed the same protocol as that conducted for the handling tasks Fig 3
The number of boxes of brakes handled in this
study is consistent with the number of brake repair jobs conducted in repair shops as reported in the literature For example a typical brake mechanic may conduct between 2 and 40 brake repair jobs per week Paustenbach et al 2003 and Hickish and Knight 1970 reported as many as 11 brake jobs being performed in 1 day at a repair shop Hickish and Knight 1970 Depending on the brand and the number of replacement brakes contained within each box potentially four times as many boxes of brakes could be handled because four brake pads or shoes are needed for a complete front or rear brake replacement The rate of handling boxes of brakes in a repair shop would certainly be limited by the pace of the brake repair work however a parts picker in an industrial
warehouse would handle a far greater number of boxes than a worker in a repair shop While a worker may not handle 36 boxes of brakes within a min
time period under normal conditions the study was designed to understand the range of airborne asbestos
concentrations associated with a variety of conditions e.g. handling different number of boxes tasks and brake type In addition conducting the simulation study in such a manner allows one to estimate the contribution of handling a different number of
boxes of brakes on a worker's short and h
weighted average TWA exposure While some of the conditions in this study may represent more of a worst scenario e.g. low ventilation and high number of boxes being handled in a given time period the purpose of handling different number of boxes in our study was fold ) to understand how increasing the number of boxes being handled during a given time would influence the airborne asbestos and ii to assess the upper bound limits that a person could physically handle boxes of brakes in a given length of time
Collection and analysis of airborne asbestos samples
All airborne samples for asbestos were collected as previously described Paustenbach et al 2006 Airborne asbestos samples were collected using mixed cellulose ester filter membranes 25 mm 0.45 pore size Zefon International St Petersburg FL USA using either portable SKC Universal PCXR West Inc. Fullerton CA USA Gilian Gilair Ashtead Technology Rentals Hayward CA USA or volume Dawson 1300 sampling pumps Ashtead Technology Rentals Hayward CA USA Por-
table SKC or Gilair pumps were used to collect
asbestos samples at 2 liters per minute LPM whereas volume pumps were used to collect samples at airflow rates between 3 and 10 LPM The sampling flow rates were calibrated with a Biosfi DryCal DCLite primary flow calibrator Bios International Corporation Butler NJ USA before and after sample collection Any discrepancies observed between start and stop airflow rates were within 15 All airborne asbestos samples were collected accordance with National Institute for Occupational Safety and Health NIOSH methods 7400 and 7402 National Institute for Occupational Safety and Health 1994a Field blanks were collected throughout each day of the sampling and were sent to the analytical laboratory for analysis along with the samples collected during the testing A total of 15 field blanks were collected and analyzed none
of which showed any detectable asbestos fibers After
collection all air samples were capped and sealed with tape and placed in sealable plastic bags inside cardboard boxes along with the corresponding custody sheets for overnight shipment to the analytical laboratory EMS Laboratories Inc
Pasadena CA USA Background samples of airborne asbestos were
collected within the shop each day before any asbestos sampling began in the simulation study Three
Table 1. Worker airborne asbestos concentrations f ccc,,d,,uring unpacking and repacking of containing brake pads and shoes
of
No. of Chrysotile content PCM NIOSH 7400 method
TEM NIOSH 7400 fiber parameters
PCME NIOSH
17
boxes % by weight
7402 method
Testing I worker
Short sampling 15 min
Pads
2
4
8
12
16
20
Average Range Average Range
N NNR NND Average Range
N NNR NND Average Range
N
7432727210
41-45 0.100 0.092-0.108 2 0 0 0.072
0.013-0.131 2 0
0
0.058 0.008-0.108 2
7432727210
39-47 0.123 0.098 0.148 2 0 0 0.049
0.026-0.071 2 0
0
0.065 0.033-0.098 2
7432727210
20-43 0.330 0.260 0.399 2 0 0 0.494
0.694 2 0
0
0.330 0.260-0.399 2
7432727210
22-41 0.438 0.383-0.492 2 0 0 1.265
1.183-1.347 2 0
0
0.438 0.383-0.492 2
7432727210
24-42 0.657 0.477-0.836 2 0 0 1.762
1.744-1.779 2 0
0
0.657 0.477-0.836 2
7432727210
3-33 0.269 0.043-0.496 2 0
0
1.829
1.528-2.129 2 0
0
0.463 0.429-0.496 2
Shoes
22
7432727210
4
7432727210
*
7432727210
12
7432727210
25
34
Short sampling 30 min
Pads
6 44
BaxBa 32
BaxBa
30
Shoes
BaxBa
42
BaxBa
36
Testing II worker
Short sampling 15 min
Pads
4646
3633
4646
3633
Shoes
4646
3633
16
31
Cleanup
Clothes handling
Short sampling 30 min
Pads
+6
36
16
36
41-49 0.059 0.054-0.063 2 0 0 0.045
0.032-0.058 2 0
0
0.026 0.023-0.029 2
29-51 0.075 0.073-0.077 2 0 0 0.048 0.041-0.054 2 0
0
0.031
0.028-0.034 2
5-49 0.102 0.071 0.132 2 0 0 0.124
0.065-0.182 2 0
0
0.072 0.047-0.098 2
0.113 0.080-0.146 22 0 0 0.123
0.094 0.152 2
0.080 0.058-0.103 2
2202--4670 0 0 K. 0.150
0.145-0.154 22 0
0
0.282
0.262-0.302 2 0
0
0.120 0.119-0.122 2
Madl 39-47 0.111 0.073-0.148 2 0 0 0.133
0.132-0.133 220 020
0
0.108
0.070-0.145 2 et
20-43 0.374 0.358-0.389 2 0 0 0.453
0.416-0.489 220 00200
0
0.368 0.358-0.378 2 al
3-42 _
02 0
_
220 020
0
0
29-51 0.044 0.044 0.044 2 0 0 0.050 0.041-0.058 22 00200
0
0.028 0.027-0.029 2
5-60 0.064 0.060-0.067 2 0 0 0.089
0.066-0.112 20 20
0
0.051 0.046-0.055 2
24-49 0.193 0.072-0.320 8 0 0 0.369
0.080-0.826 4 0
0
0.171 0.058-0.294 4
5-60 0.559 0.062 1.190 8 0 0 1.423
1.000 2.502 4 0
0
0.541 0.057-1.190 4
22-45 0.060 0.033-0.077 8 0 0 0.071
0.119 4 0
0
0.030 0.024 4
3-47 0.167 0.053-0.261 8 0 0 0.328
0.121 0.600 8 0
ie)
0.126 0.036-0.193 8
0.017 0.008-0.029 8 0 0 0.012
0.001-0.040 8 0
3
0.004 0.002-0.006 5
0.037 0.030 0.047 4 0 0 0.009
0.003-0.020 4 0
1
0.011 0.007-0.015 3
24-49 0.104 0.068-0.140
0 ct) 0.187
0.089-0.284 2 0
0
0.086 0.049-0.122 2
5-60 0.297 0.276-0.318 2 0 0 0.750
0.619-0.882 20 20
0
0.284 0.252-0.315
Chrysotile Exposure from Boxes of Brakes
7 of 17
22
444 41
NIOSHmethod Range 0.21-0 0.9-162 0.1-07 0.15-280 0.2-03 0.17-0 0.12-0 Microspy
PCME 7402 Average 0.021 0.126 0.032 0.157 0.012 0.046 0.012 Contrast
Phase
NND 0
0 0 0 0 0 PCME
NNR 0 0
0000
limit
parmetrs N 2 2
fiber
7400 Range 0.21-05 0.28-42
NIOSH TEM Average 0.038 0.328
NND 0 0
4 4 4 4 1 senitvy method
the 7400
0.3-201 0.2-483 0.6-05 0.1-281 0.1-0 below NIOSH
samples by 0.096 0.325 0.027 0.17 0.010 of outlined number ratio 0 0 0 0 0
NNR 0 0
NND aspect
00000
methods N 2 2
4 44 4I
3
method
and
7400 Range 0.320.49 0.128-07 0.19-082 0.123-04 0.20.31 0.21-085 0.13-0.13 banlyytical lengthm
NIOSH
5
PCM
Average 0.040 0.167
0.04 0.180 0.028 0.059 0.013
readble
not
diametr
Chrysotile parmetrs conte weight Range 2-45 3-47 24-49 5-60 2-45 3-47 osamfples7me4t0ho2d 0.25m
b%y Average 31 36 36 35 31 number NIOSH
|
NNR the
acordancesamples boxesof
to fiber
No.
16
16
16
with
of
min
TEM
100
number in using
N
conetraion Contiued
sampling
aplicable counted
Long Equivalent 1. Shoes Pads Shoes Cleanup Not were
Table
_ Fibers
samples were collected at the beginning of each day of Phase I and Phase II testing at an airflow rate
of 10 LPM for 40 min Three consecutive ambient
air samples were collected for 120 min each testing day with a sampling rate of 5-10 LPM outside the south wall of the shop away from automobile .
traffic
In Phase I testing two consecutive min n = 4 and one min n = 2 sample were collected at airflow rates of 8-10 LPM on both the right and left lapel of the worker during each event Fig 3 During Phase II testing two consecutive min n = 2 and min n = 2 samples on both the right and left lapel of the worker were collected at an airflow rate of 8-10 and 2-5 LPM respectively Fig 3 Bystander samples were collected at four locations 1.5 m from the handling activity at breathing zone height 1.5 m with sampling rates of 8-10 LPM for Phase I testing and 5-10 LPM for Phase II Fig 2 Remote area samples for airborne asbestos were also collected during handling work with an airflow rate of 8-10 LPM at breathing zone height 1.5 m at two locations near the center of the shop 7.6 to 9.1 m from the worker Fig 2 After each box handling clothes handling or cleanup event the shop doors were opened to ventilate the workspace and four background samples were then collected with an airflow rate of 9-10 LPM prior to the next testing event Fig )
Fibers were counted according to NIOSH methods 7400 and 7402 which define fibers as being > ...m in length and having at least a 3 aspect ratio and in the case of 7402 0.25 min diameter National Institute for Occupational Safety and Health 1994a All airborne asbestos samples were sent to an accredited laboratory EMS Laboratories Inc. for analysis by phase contrast microscopy PCM NIOSH method 7400 and TEM NIOSH method 7402 National Institute for Occupational Safety and Health 1994a For the analysis of air samples by TEM selected area electron diffraction and dispersive ray were used to assess the fiber type via the diffraction pattern and elemental profile of the asbestos fibers respectively National Institute for Occupational Safety and Health 1994b All sample analysis was performed by EMS Laboratories Inc. which is an accredited laboratory for asbestos analysis by the American Industrial Hygiene Association and the National Voluntary Laboratory Accreditation Program US Department of Commerce National Institute for Standards and Technology Gaithersburg MD USA This laboratory utilizes analysts trained according to NIOSH 582 and adheres to the quality assurance and quality control requirements set forth by Occupational Safety and Health Administration OSHA 29 CFR 1910.1001 Appendix A and the most current version of the
NIOSH 7400 method
Table 2. Area airborne asbestos concentrations f ccfld,,uring unpacking and repacking of containing brake pads and shoes testing I and II
of No. of boxes Chrysotile Content % by weight
PCM NIOSH 7400 method
TEM NIOSH 7400 fiber parameters
PCME NIOSH 7402 method
Average Range Average Range
N NNR NND Average Range
N NNR NND Average Range
N
Bystander
Short sampling 30 min
Pads
76864658
76864658
76 864658
766864658
76 864658
Shoes
76864658
76864658
76 864658
20
Cleanup
Clothes Handling
Remote area
Pads
4
6
16
20
36
Shoes
4
6
16
20
Cleanup
Clothes handling
.
Background before testing Day 1
Day 2
Day 3
348883938
24-49 0.014 0.007-0.027 80 80 0 0.011 0.003-0.020 8 0 1 0.004 0.002 0.0097 0.020.097
348 83938
39-47 0.020 0.015-0.024 4 0 0 0.006 0.002-0.013 4 0 0 0.007 0.001-0.016 4
348883938
5-60 0.018 0.010-0.027 8 0 0 0.039 0.002 0.090 8 0 1 0.010 0.003-0.022 7
348883938
20-43 0.039 0.025-0.078 40 40 0 0.029 0.015-0.063
4 0 0 0.035 0.016-0.076 4
348883938
3-42 0.032 0.014 0.062 4 0 0 0.058 0.023-0.130 4 0 0 0.027 0.012-0.060 4
348883938
22-45 0.018 0.002-0.035 80 80 0 0.003 0.002 0.008 8 0 6 0.002 0.002 0.003 2
348883938
29-51 0.006 0.004-0.009 4 0 0 0.003 0.001-0.005 4 0 2 0.002 0.002-0.002 2
348 83938
3-47 0.022 0.001-0.059 12 0 1 0.019 0.003-0.074 12 0 2 0.011 0.003-0.038 9
348883938
5-60 0.017 0.002 0.030 4 0 0 0.019 0.001 0.052 4 0 1 0.011 0.006-0.020 3
K. 0.011 0.006-0.020 80 80 0 0.005 0.002-0.020
80
6
0.002 0.001-0.004 2
0.014 0.008-0.022 40 40 0 0.004 0.002-0.008 4 0 3 0.010 0.010-0.010 1
Madl 616223978
24-49 0.015 0.011-0.022 4 0 0 0.009 0.001-0.017 4 0 1 0.006 0.003-0.010 3 et
6162 3978
39-47 0.017 0.017 0.017 2 0 if) 0.033 0.014-0.052
20
0
0.017 0.017-0.017 2 al
616223978
5-60 0.011 0.008-0.016 400 400 400 0.015 0.009-0.024 4 0 0 0.005 0.003-0.007 4
616223978
20-43 0.016 0.012-0.019 20 20 0 0.012 0.004-0.020
20
0
0.008 0.006-0.010 2
616223978
3-42 0.005 0.003-0.006 20 20 0 0.014 0.013-0.015 2 0 0 0.005 0.003-0.006 2
6162 3978
22-45 0.016 0.010-0.024 4 0 0 0.002 0.001-0.002 4 0 3 0.001 0.001-0.001 1
42
29-51 0.008 0.007 0.008 20 20 0 0.001 0.001-0.001 2 0 1 0.001 0.001-0.001 1
6162 3978
3-47 0.007 0.003-0.011 4 0 0.003 0.002-0.006 4 0 i 0.001 0.001-0.002 3
616223978
5-60 0.008 0.007-0.009 200 200 200 0.001 0.001-0.001
20
2
_
0
0.009 0.007 0.012 4 0 0 0.004 0.002 0.007 4 0 1 0.003 0.001-0.006 3
0.014 0.013-0.014 2010 2010 2010 0.002 0.002-0.003 2 0 1 0.002 0.002 1
0.001 0.018
0.001-0.002 0.012-0024 0.012-0024
30 30 200 0.001
20 20 200 0.002
0.001-0.001
0.002 0.002
3. 0
3
2 #0
2
0.009 0.003-0.017 300 300 300 0.002 0.002-0.002 0 3 |
0
0
_
ie)
Table 2. Continued
No. of boxes Chrysotile Content % by weight
PCM NIOSH 7400 method
TEM NIOSH 7400 fiber parameters
PCME NIOSH 7402 method
Average Range Average Range
N NNR NND Average Range
N NNR NND Average Range
N
Background between events
Pads
4
848283978
24-49 0.006 0.002-0.010 80 80 0 0.003 0.002 0.008 8 0 6 0.002 0.002-0.002 2
6a
848283978
39-47 0.006 0.003-0.010 4 0 0 0.002 0.002 0.002 4 0 4
_
_
---
16
848283978
5-60 0.007 0.004-0.009 80 80 0 0.004 0.002-0.015 8 0 4 0.004 0.001-0.008 4
20a
848283978
20-43 0.007 0.004-0.012 4 0 6 0.005 0.002-0.014
40
3
0.002 0.002 1
36"
848283978
3-42 0.005 0.004-0.006 4 0 0 0.001 0.001-0.002 4 0 4
---
_
Shoes
Ambient
4
848283978
22-45 0.012 0.005-0.025 80 80 0 0.002 0.002-0.003 808 808 808 --- ---
---
6a
848283978
29-51 0.005 0.002 0.009 400 400 400 0.002 0.002 0.002 4 0 4
_
16 20
848283978 36
3-47 0.007 0.004 80 80 0 0.002 0.002-0.003 5-60 ~ -0.005 0.003-0.007 4 0 0 0.002 0.001-0.003
00 0
7
40
3
0.001 0.003
0.001-0.001 1 0.003-0.003 1
Chrysotile
Exposure Day 1
0.002 0.001-0.005 400 400 0.001 0.0004 404-- 404- 404-- 404--
404--
0
Day 2
0.001 0.0008-0.001 300 300 300 0.000 0.0003-0.0005 300 300 33
_
0
Day 3
0.001 0.0004-0.0007 30 30 0 0.000 0.0003-0.0004 300 300 33
__
0
from
Boxes N,ot applicable N = number of samples NNR number of samples not readable by analytical methods ND number of samples below the sensitivity limit PCME Phase Contrast Microscopy
Equivalent concentration in accordance to the NIOSH 7402 method Fibers were counted using TEM with fiber parameters 0.25 mdiameter > mlength and as3pect ratio outlined by NIOSH 7400 method
of
Brakes
of
17
10 of 17
A. K. Madl et al
Fiber size and morphology analysis
Air samples were also analyzed according to the International Organization for Standardization ISO
method for characterization of type size and morphology of fibers > ...min length International Organization for Standardization 1995 Asbestos fi-
ber morphology was quantified by categorizing asbestos fibers of > ...min length as free fibers free fiber bundles fiber clusters or matrix fibers including matrix fibers bundles and dispersed arrangements In those instances where asbestos fibers were associated with a cluster or matrix the dimen-
sions of the cluster or matrix structure as well as those of the individual fibers themselves were re-
corded Asbestos fibers were characterized by their morphology as well as their size in order to evaluate the potentially respirable proportion of airborne fibers Long thin fibers can penetrate the deep lung Once in the lung those fibers that can be fully engulfed by macrophages can be removed Fibers 5...min length are cleared easily by the lung and present little risk to exposed groups Agency for Toxic Substances and Disease Registry 2001 2003 The US Environmental Protection Agency US EPA US Environmental Protection Agency 2003 determined that length of the fiber has little impact on the respirability up to a length of 20 ...mbut that the deposition of longer fibers is inversely related to the length of longer fibers While fibers up to 3.5 ...min diameter have been detected in the lungs of asbestos workers fibers of this dimension may represent the very upper bound limit of respirability Gross et al 1971 Morgan and Holmes 1980 Timbrell 1980 1982 A number of studies have shown that nearly all fibers deposited in the pulmonary region of the lung are thinner than 0.7 m Harris and Timbrell 1975 Sussman et al 1991a Strom and Yu 1994 Yu et al 1995 Respirable fibers free and bundles were therefore designated as those with diameter of /0. 7 ...mThe deposition
of fibers contained within clusters or matrices was as-
sumed to be based on the dimensions of the overall
cluster or matrix structure Depending on the size and shape of these structures the fiber cluster or matrix may act aerodynamically more as a particle rather than a fiber Respirability of fiber clusters or
matrices was therefore evaluated in two ways as re-
respirable spirable fiber of diameter 0.7 ...mor as a
particle with diameter 10 ...m
Collection and analysis of bulk asbestos samples
Brake material filings and dust from the counter after the handling activities were collected for bulk sample analysis for asbestos Brake material from brake pads and shoes were manually filed on a separate day and location from the simulation study Both brake filings and countertop debris were
collected in separate sterilized sealed plastic bags and sent to EMS Laboratories Inc. for analysis by PLM according to NIOSH method 9002 National Institute for Occupational Safety and Health 1994b
Air exchange measurements using tracer gas
Sulfur hexafluoride SF was used as a tracer gas to estimate the air exchange rate within the garage as previously described Paustenbach et al 2006 Measurements of the gas were taken according to American Society for Testing and Materials method E741-00 American Society for Testing and Materials International 2001 A steady concentration of 1 ppm for SF6 Aldrich St Louis MO USA was targeted for the tracer gas analysis After steady state was reached SF6 measurements were taken in 30 intervals with a MIRAN SapphIReXL Analyzer Electron Corporation Hayward CA USA for 1 h The air exchange in the garage was calculated using the concentration decay optional regression test method of plotting the natural logarithm of SF6 concentration over time American Society for Testing and Materials International 2001
Data and statistical analyses
Descriptive statistics were calculated for both
PCM and TEM airborne fiber concentration meas-
urements Analytical sensitivity limits also referred
to as limits of detection were estimated based on the presumption that one fiber could be counted within 100 microscopic fields for a given volume of air sampled Results below the analytical sensitivity limit were entered using a value equal to half the sensitivity limit PCM measurements were adjusted for asbestos fiber content according to NIOSH method 7402 which specifies multiplying the ratio of
asbestos fibers to total fibers observed in the TEM
analysis by the PCM fiber concentration National Institute for Occupational Safety and Health 1994c The ratios of asbestos to total fibers asbestos and asbestos fibers were based on TEM fiber
counts from the same filters the PCM fiber counts
were obtained In this study the PCM measurements adjusted by the ratio of asbestos versus total fibers were referred to as phase contrast microscopy equivalent PCME airborne asbestos concentrations In cases where the PCM result was below the analytical sensitivity limit but asbestos fibers were detected in the corresponding TEM measurement a value of half the PCM analytical sensitivity limit was substituted and multiplied by the ratio of asbestos fibers to total fibers observed by TEM In circumstan-
ces where PCM measurements were above the
sensitivity limit but asbestos fibers were not detectable by TEM a PCME asbestos concentration was not calculated In addition to using TEM for NIOSH
Chrysotile Exposure from Boxes of Brakes
ooff 17
7202 and ISO TEM was also used to measure an asbestos fiber concentration using the same fiber parameters utilized by NIOSH 7400
All statistical analyses were performed using Microsoft Excel Correlation coefficients r were
used to assess the association between the number of boxes of brakes handled and airborne asbestos concentrations
RESULTS
Air exchange measurements using SF6 as a tracer gas showed rates of 0.83 air exchanges per hour on 27 July 2004 during Phase I testing and 0.39 and 0.66 air exchanges per hour on 5 and 6 November 2005 during Phase II testing These low exchange rates were expected considering that no active ventilation system was present in the building and all windows were kept closed These air exchange rates were consistent with those reported previously for this building by Paustenbach et al 2006 and are low compared to what would be expected in most auto repair facilities four to six air exchanges per hour American Society of Heating Refrigerating and Air Conditioning Engineers Inc. 1991 Paustenbach et al 2006
Asbestos bulk sample analyses Detailed information regarding the number of
boxes of brakes the type of brakes and the average chrysotile composition of the brakes used in each sampling event is provided in Tables 1 and 2. Bulk sample analysis revealed that the average chrysotile asbestos content in the brake pads and shoes ranged from 27 to 45 for the various simulation events in Phase I testing and ranged from 31 to 36 for events in Phase II testing Individual measurements of chrysotile asbestos in brake pads and shoes ranged from 3 to 60 PLM analysis did not indicate the
presence of amphibole asbestos fibers in any of the brake pads or shoes Bulk sample analysis of the dust that accumulated on the countertop during the unpacking and repacking of boxes of brakes indicated average chrysotile asbestos concentrations ranging
from 2 to %
Airborne asbestos exposures
The number and types of asbestos samples collected during each handling scenario as well
as the airborne asbestos concentrations as determined
by PCM and TEM are presented in Tables 1 and 2. A total of 214 air samples were collected for different scenarios associated with the unpacking and repacking of boxes of brake pads and shoes including 80 personal samples fifty 15 min ten 30 min and sixteen 100 min 56 bystander samples 8 indoor background samples prior to any testing 26 remote area samples 52 indoor background samples between testing events and 10 outdoor ambient samples Of the samples collected only two personal lapel samples could not be analyzed due to particulate interferences and excessive loading Comparisons of right and left lapel samples showed no difference and because they were viewed as replicate samples the right and left lapel samples were averaged for each simulation event Table 3 summarizes the total number of samples collected and the mean and range of PCM and TEM analytical sensitivity limits for each type of sample While PCM TEM
and PCME airborne fiber concentrations are summa-
rized in Tables 1 and 2 only PCME asbestos concen-
trations are discussed in the text A number of observations can be derived from the
study results First airborne asbestos concentrations generally increased with the number of boxes handled Figs 5 and 6 This relationship was linear Figs 5 and 6 with a strong positive correlation between
the mean min worker asbestos concentration
and the number of boxes handled for both pads and
Table 3. Estimated analytical sensitivity limits f ccc ,,f,,or asbestos for each type of sample collected during various box handling
activities testing I and II
PCM NIOSH 7400 method
TEM NIOSH 7400 fiber parameters
N
Average Range
N
Worker min
54
0.003
0.002-0.004 54
Worker min
10
0.001
0.001-0.001
10
Worker min
17
0.002
0.001-0.003
17
Bystander
68
Background between testing events
56
0.002
0.002
0.001-0.003
68
0.001-0.003
56
Background before testing
8
0.001
0.001-0.002
8
Remote area
32
0.001
0.001-0.002
32
Ambient
10
0.001
0.0003
10
Average
0.008 0.003 0.004 0.003
0.004
0.002 0.003 0.001
Range
0.001-0.024 0.001-0.005 0.002-0.007 0.002-0.005 0.003-0.005 0.001-0.004 0.001-0.021 0.001-0.002
N number of samples Fibers were counted using TEM with fiber parameters 0.25
NIOSH 7400 method
mdiameter
5 mlength and 23 aspect ratio outlined by
12 of 17
A. K. Madl et al
10.0 cc
seen
Pads @ Pads
/
1.6
Concentration
Shoes
Concentration
Concentration 1.2
Concentration
Concentration
Concetraion
Asbestos
Asbestos 0.8
Asbestos Asbestos
Average 0.4
AverageAverage
{ Average
2
4
an nnenememenn enn nn mene tenn
OSHA min Ceiling Limit 1972-1986
$
t
a
a
6
8
10
12
14
16
18
20
Numob f e Boxr es
Bars represent the range of minimum and maximum values
Fig 5. Airborne asbestos concentrations min PCME for worker handling different numbers of boxes of brake pads and shoes
Concentration Concentration
Concentration
Concentration Concentration Concentration
cc cc
Asbestos
Asbestos
Average
Average
Average
Average
1.0 pw 0.8 4] 0.6 4 0.4 4 0.2 5 0.0
ee a eee e ee ee
ee
Worker - Pads
OSHA min Excursion Limit present
- BystandPeadrs
- WorkSe hor es
Bystander - Shoes
t
}$
~ & _2_,
$
a,
i :
+
2
4
6
8
10
12
14
16
18
20
Number of Boxes
Bars represent the range of minimum and maximum values
Fig 6. Comparison of airborne asbestos concentrations min PCME for worker and bystander samples during the handling of different numbers of boxes of brake pads and shoes
shoes brake pads r = 0.91 and brake shoes r = 0.98 For worker samples collected over a min time period a strong association existed between the number of boxes of brake pads and the airborne asbestos concentrations r = 0.99 but not with the number of boxes of brake shoes r = 0.61 This trend was more apparent in the personal samples than in the area samples collected at bystander locations Table 1 Fig 6 The number of boxes handled appeared to be associated with increasing bystander PCME concentrations for brake shoes as well as brake pads No such trend was observed at remote area locations 25-30 ft from handling activity
Second the type of brake material in each box influenced airborne asbestos concentrations Al-
though the brake pad and shoe asbestos content was similar it was consistently observed that handling brake pad boxes resulted in higher airborne asbestos concentrations within the breathing zone of the worker than handling brake shoe boxes Specifi-
cally it was observed that boxes of brake pads produced two to seven times higher airborne asbestos concentrations PCME in a 15- or min time period for the worker compared to the concentrations created by boxes of brake shoes Table 1 Figs 5 and 6
Third airborne asbestos concentrations in the
worker's breathing zone were greater than those observed at the bystander locations Table 2 Fig 6 and airborne asbestos concentrations at bystander locations were higher than those observed at remote area locations For example average min samples collected on the lapel of the worker ranged from 0.086 to 0.368 f ccfl,,PCME for handling 4-20
boxes of brake pads and 0.021 to 0.126 f cc1
PCME for the same number of boxes of brake shoes Table 2 Fig 4 At the bystander sampling locations for the same number of boxes of brakes average
PCME airborne asbestos concentrations were ob-
served at 0.004-0.035 f cc for brake pads and 0.002 0.011f ccfl,,for brake shoes No difference
Chrysotile Exposure from Boxes of Brakes
13 of 17
was apparent between bystander brake pads average
0.004 f cc,,brake shoes average 0.002 f ccfla,,nd
remote brake pads average 0.006 f cc and brake shoes average 0.001 f cc areas when only four boxes of brakes pads were handled Higher airborne asbestos concentrations however were observed at bystander brake pads average 0.010 f cc,,andcc,,andbrake
shoes 0.011 f cc,,locations compared to remote
area brake pads average 0.005 f ccfland brake
shoes average 0.001 f cc locations when 16 boxes
of brakes were unpacked and repacked Although re-
mote area airborne asbestos concentrations were
higher during the handling of brake pad boxes compared to brake shoes the samples collected in the remote area locations were not greatly influenced by the various handling tasks Comparisons demon-
strated similar airborne asbestos concentrations
f cc,,and cleanup average 0.003 f ccflc,,oncentra-
tions measured during handling activities Fifth background airborne asbestos concentra-
tions measured between testing events compared to those measured prior to the study showed that results from each testing event were independent Background measurements collected prior to any testing did not show any detectable asbestos fibers by TEM Of the 52 background samples collected in between handling testing events only nine showed
a measurable concentrations of asbestos The sam-
ples in which asbestos fibers were detected resulted
in average PCME airborne asbestos concentrations
ranging from 0.001 to 0.004 f ccflG,,iven that asbestos measurements between testing events were low or below the sensitivity limit e.g. 83 were 0.001 0.008 f cc concentrations of asbestos from one
for the remote area samples range of averages
0.001-0.017 f cc ) collected during the box-
handling tasks when compared to the background
samples range of averages 0.001-0.004 f ccc,,ol-
lected in between the testing events While it is not surprising that the airborne asbestos
measurements from the worker's lapel were greater than those observed at bystander sample locations it is worth noting that asbestos concentrations decreased quickly and significantly in the breathing zone of the worker after handling activities ceased Most boxes of brakes all but two brake shoe boxes in Phase II testing were handled within the first 15 min Therefore the second min sample
represents the concentration of airborne asbestos that remains in the air after handling activities cease
Comparison of the first and second min samples
showed a decrease in airborne asbestos concentra-
testing event did not impact the results of successive testing events
Ambient contributions to background asbestos concentrations were also characterized Although av-
erage PCM airborne fiber concentrations for ambient
air samples ranged from 0.001 to 0.002 f cc,,cc,, no as-
bestos fibers were detected by TEM The observed PCM concentrations were slightly less than the ambient air concentrations reported by Paustenbach et al 2006 and in general were consistent with background concentrations reported by the Agency for Toxic Substances and Disease Registry and US EPA for typical US cities Agency for Toxic Substances and Disease Registry 2001 US Environmental Protection Agency 2003 Paustenbach et al 2006
Airborne asbestos TWA exposures
tions for the handling of brake pad boxes but not for brake shoe boxes Specifically average airborne
asbestos concentrations decreased from 0.356 to
0.021 f cc after unpacking and repacking of brake pads ceased and concentrations decreased from 0.030 to 0.013 f cc after unpacking and repacking
of brake shoe boxes ceased
Fourth personal airborne asbestos concentrations during handling tasks were higher than those measured during cleanup and handling tasks Cleanup of dust which had accumulated on the work countertop and handling of clothes which had been worn while boxes were unpacked and repacked
showed airborne asbestos concentrations of 0.004
and 0.011 f cc for the worker and 0.002 and
0.010 f cc for the bystander locations respectively
Comparisons showed that worker exposures result-
ing from handling activities
average
0.011 f cccc,,w,,ere similar to measurements collected
during cleanup average 0.004 f cc ,,both activities
were comparable to bystander handling average 0.010 f cc,,and cleanup average 0.002 f ccfl,,
and remote area handling average 0.002
Measurements collected during handling handling and cleanup events were used to estimate h TWA exposures for a worker handling 4 16 and 40 boxes of brakes in a workday In Phase II testing term samples were collected in consecutive min intervals which encompassed the testing event 30 min ventilation period 30 min and background characterization 30 min Air concentrations during the cessation of these tasks were assumed to be equivalent to remote area asbestos concentrations collected during testing events Based on the min samples collected during the handling activities h TWA asbestos exposures for workers handling 4 16 or 40 boxes of brakes over a workday were estimated to be below the current OSHA PEL for asbestos Eight TWAs for workers handling 4 or 16 boxes of containing brakes ranged from 0.002 to 0.021 f cca,,pproximately quarter to hundredths below the OSHA PEL of 0.1 f cc for asbestos Eight TWA worker exposures handling up to 40 boxes of
brakes in a workday was 0.063 f ce nearly one-
half of the current OSHA PEL
14 of 17
A. K. Madl et al
Fiber size and morphology
Fiber size and morphology were assessed in the personal worker samples collected during boxhandling cleanup and handling activities from Phase II testing Results showed that 50-59
of the fibers counted for the different activities were
free fibers or bundles 9-33 were fiber clusters and 16-31 were associated with a matrix Table 4 Assuming though that only fibers 0.7 um in diameter can reach the deep lungs then only 30 of the total fibers were respirable considering the fiber size and morphology characteristics It was also observed that % specifically 0-7 of the total fibers counted within this size range were respirable and
had a fiber length 20 ...mIf the criterion for respi-
rability was extended to 3 ...min diameter 33-56 of the asbestos fibers free or bundles would therefore be considered respirable The majority of fibers associated with a cluster or a matrix were too large to be considered as respirable fibers whereas 0-27 could be classified as respirable particles
DISCUSSION
This study was conducted to assess possible exposures to airborne asbestos during unpacking and repacking of boxes of containing brake pads and shoes for vehicles ca. 1946-80 as well as to understand potential asbestos exposures associated with other related activities such as cleanup and clothes handling In addition to those already dis-
cussed there are a few other observations that can
be made from this simulation study Not surprisingly for example we observed that there were physical
limitations to the number of boxes that could be han-
dled within a certain time period We found that handling 16 to 20 boxes in 15 or 30 min represented a maximum physical limit
It was interesting to observe higher airborne asbestos concentrations associated with the handling of brake pad boxes compared to brake shoe boxes
Due to the curvature of the brake shoe and the fact that
these parts were often packed tightly it is possible that the boxes of brake shoes produced less airborne asbestos because there was less of an opportunity for the brake parts to rub against one another during shipment In addition it is noteworthy that the shipment of the boxes prior to the commencement of Phase II testing appeared to produce dust to such an
extent that the airborne asbestos concentrations mea-
sured in Phase II were similar to those produced from comparable events in Phase I. The difference in air exchange rates between days of testing also did not appear to have an effect on worker or bystander exposures thus emphasizing that activities have the greatest impact on exposures in the near field
The handling and cleaning of contaminated work clothing worn in some occupational environments have been suggested as a possible source of paraoccupational or home chemical exposure Studies that have reported exposure through this possible secondary exposure pathway include industries where beryllium lead or even asbestos e.g. insulation workers exposures in the workplace were excessive For example Eisenbud et al 1949 found mean
Table 4. Size and morphology distribution of fibers detected in personal workers samples collected during various box handling activities
Fiber structure
classification
N
Total
Percent fibers % classified as fiber or particle with dimensions
fibers % 0.7 ...mwidth
< ...mwidth
10 ...mwidth
> ...,, 20 ...m
length
length
> ...m
length
20 ...m
length
> ...m
length
20 ...m
length
handling activities
Total fibers
1128
_
_
_
Free bundle
667 59.1
35.1
4.7
55.9
8.6
_
Fiber clusters
109
9.7
0.0
0.0
2.0
0.8
7.0
2.7
Matrix disperse
352 31.2
0.7
0.0
4.6
0.8
23.4
4.2
Cleanup activities
Total fibers
15
-
_
_
_ 8821
9811
Free bundle
8 53.3
33.3
6.7
53.3
8821
9811
Fiber clusters
Matrix disperse handling activities
Total fibers Free bundle Fiber clusters
4 26.7 3 20.0
6 3 50.0 2 33.3
0.0 0.0
_
33.3 0.0
0.0
0.0
0.0 0.0
6.7
8821
0.0
8821
coe
1888
33.3
1888
0.0
1888
26.7 20.0
0.0
9811 9811
1188 1188
1188
Matrix disperse
1 16.7
0.0
0.0
0.0
1888
16.7
0.0
Chrysotile Exposure from Boxes of Brakes
15 of 17
-3
air concentrations of 500 ...gberyllium m when the clothing of beryllium manufacturing workers was shaken out Piacitelli et al 1997 found elevated
lead concentrations in the vehicles and homes of
exposed construction workers Some persons who live in the homes of workers exposed to free asbestos fibers developed asbestos disease Lieben and Pistawka 1967 Anderson et al 1976 Li et al 1978 Anderson et al 1979 Epler et al
1980 McDonald and McDonald 1980 Joubert
et al 1991 Magnani et al 1993 Generally workers in asbestos manufacturing mining and shipyard industries are exposed to very high airborne concen-
trations of asbestos and come in direct contact with
large amounts of bulk asbestos and in the majority of cases amphibole asbestos The home exposure of other household members called secondary exposure or occupational exposure is thought to occur as a result of bringing very dusty work clothing into the home which was usually contaminated due to daily contact to bulk or raw asbestos Although all exposures associated with handling work clothes worn during handling activities were extremely low it was felt that this issue deserved greater characterization as it has implications
for both historical and current asbestos exposures of
a group of individuals not previously studied While we were interested in exposures distant by-
stander and remote from the primary activity it was not intended as a part of the sample design to charac-
terize exposures associated with settled asbestos on work surfaces but rather associated with the box-
handling activity itself The fact that asbestos was
found in the settled dust on the countertop as a result
of handling boxes of brakes however illustrates how such work might contribute to the presence of asbestos on nearby work surfaces It should be noted that
the dust which settled on the counter surface was
present only in the immediate vicinity to the boxhandling activities and consisted of % asbestos as compared to 30 in the original brake material If the settled dust was not properly cleaned after work activities theoretically there could be a potential for dispersal to locations distant from the original work activity In regards to results associated with the handling activities it is likely that closing up the facility resulted in higher worker and bystander exposures than if the facility was fully ventilated It is also possible that some fibers remain in the air after
the work activities ceased However our results show
that airborne fibers detected in the 15 min following
the cessation of handling activities were significantly reduced compared to those generated during the handling activities and approached background concentrations as measured in between the testing events
It has been well established that the precision of airborne fiber concentrations by counting fibers on
a membrane filters is dependent on the fiber density and proportion of filter surface area e.g. microscope fields examined with statistical uncertainties generally being inversely proportional to the fiber density Ogden 1982 Johnston et al 1982 Cherrie et al 1986 Lange et al 1996 Some researchers have suggested that the variations of low asbestos count data are attributed to a psychological incentive for analysts to search harder for fibers on density
samples Cherrie et al 1986 It has been reported
that the accuracy is not greatly improved for counts beyond 50 fibers and thus has been recommended
that at least 50 fibers be counted and the number of
fields be only limited where the airborne fiber concentrations are so low that the accuracy is no longer important Ogden 1982 These concepts have been incorporated into the current NIOSH method for asbestos National Institute for Occupational Safety and Health 1994a where 100 fibers or 100 micro-
scope fields whichever criterion is met first are
counted For the majority of the worker samples collected in this simulation study 50 fibers were counted within the prescribed 100 microscope fields whereas far fewer fibers 10-20 fibers were ob-
served in samples collected in bystander or remote area locations The confidence limits would as a
result be expected to be narrower for personal compared to those for area airborne asbestos concentrations This trend has been supported in the literature by comparisons of personal and area asbes-
tos fiber concentrations measured during asbestos in-
sulation tile and transite abatement operations
which showed that airborne asbestos concentrations
were not normally distributed and area measurements were more variable compared to personal fiber
measurements Lange et al 1996 In our study however the range or variability
of asbestos fiber concentrations within a given event
and location e.g. worker and bystander appeared relatively narrow with the exception of handling 16 boxes of brake pads Fig 5 The range of asbestos concentrations across scenarios e.g. brake type
worker versus bystander also appeared relatively constant Possible reasons for this limited variability
within or across events or sample locations potentially include i the controlled repetitive conditions under which the simulated tasks were performed ii similarity of airborne concentrations across similar spatial distances e.g. right and left lapel and concentric area samples and iii consistent sample analysis under one laboratory and by similarly trained and certified microscopists Despite these observations asbestos counts at low concentrations are generally not normally distributed and variance usually depends on the airborne concentration precluding the use of statistical comparisons that rely on normality and symmetrical distributions With this in mind data were presented in
16 of 17
A. K. Madl et al
a descriptive manner and statistical comparisons were not attempted
The data collected in this simulation study are believed to capture the plausible range of handling scenarios i.e. number of boxes type of brakes and distance from activity for a brake mechanic auto parts supplier or warehouse parts picker in addition to evaluating potential exposure associated with handling work clothes or performing clean activities
In summary the short airborne asbestos con-
centrations measured for both a worker unpacking and repacking of boxes of containing brakes as well as a bystander working in the vicinity of such activity were below both the current OSHA excursion limit for asbestos and all previous US occupational asbestos standards The industrial hygiene data presented here should therefore prove useful for retrospective and current exposure assess-
ments of individuals and hazard assessments of work
activities which involve the handling of asbestoscontaining brakes in a variety of workplace settings
FUNDING
Ford Motor Company Chrysler LLC and General Motors Corporation
Acknowledgements --Ford Motor Company Chrysler LLC and General Motors Corporation have been involved in litigation related to the possible exposure of brake mechanics to asbestos The funding organizations have not reviewed any part of this manuscript prior to its publication Some of the authors have served as expert witnesses in litigation regarding the potential asbestos health hazards to mechanics historically involved in
automobile work
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