Document MGeJy0wVkZwMLBd2bY72pV1jV
FILE NAME Brakes BRK
DATE 1973
DOC BRK105
DOCUMENT DESCRIPTION Trade Journal Article - How Much Asbestos Do Vehicles Emit
R54. SHROUD
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EXHIBIT NO
SateWrot
Betty Browning
FAN!
Te
bea
Most of asbestos emitted from vehicle brakes and clutches
is converted to other products with only 3.2 of total
atmosphere asbestos emitted entering the
- to Bendix researchers :
according _
7
cation of emissions trends for fric
tion materials with continued use
The third vehicle test simulated i
including complete brake reline
turned discs and drums
containere
wear ins ing worn
First
= First
were ru
Baseline
F
asbestos and were representative of ture tests
those supplied by the industry Mi
A comprehensive investigation of gas and particulate emissions from automotive brakes and clutches during
actual vehicle operation shows that on the average more than 99.7
of the asbestos emitted is converted
@ Surfaces samples including wear
debris on brake and collector shroud
surfaces .
@ Airborne samples collected on
membrane filters
The clutch was sealed by closing
terials from Abex Bendix Raybestos
Manhatten Thiokol and WorldbestoWsorldbestos were used for original equipment andand
aftermarket disc pads and drum
their linings selected in part because = volume usage
Mea _..
F-%Eacohf
forashest
E
electron m
ES veh
to other products The contribution
to the atmosphere is estimated to be
5060 lb per year for the whole coun-
the asbestos try - or 3.2 of
emitted=
.
total
These figures were obtained with
a medium weight 4850 test
ars -
weight volume passenger car
+ ., with a speed manual transmission
ventilated iron disc brakes in
the remaining few holes in its casing The left wheel brakes were kept in
Collecting the emissions |
their normal configuration They were
Fig3 shows a crosssectional vier
used to monitor the operation of the
shrouded brakes Wear debris was
collector of the disc brake emissions
The rubbing seal is located atthe
taken from the left brakes as well as hat or hub section of the rotor The
from those on the right The amounts sealis a spring graphitfielled
and of debris formed
thecomposi-. . Teflon seal of commercial manufa
tions were used to demonstrate that'ture The main portion of shrop
the brake shrouding did signi- was coated with oxide waleere
herage herage For
pe
:
&
front iron drum brakes in the
rear and a dry clutch A front disc
brake collector Fig 1 and a rear
drum brake collector Fig 2
stalled on the right side of the ve-
the . hicle collected
wear debris and
ficantly affect operation of theright-
hand brakes
How the tests were run
Three vehicle tests were run the
first with original equipment fric
system was added andand
"
cooling open mag
wheel
was
used
to
drus in coolingthe enclosed brake
A sectional view of the drus brake emissions collectoris shownried shownried
Fig 4 along with details of the m
shownried shownried
. separated it into three fractions _
tion
materials
the
second
simulating-bing
seal
which
is
is
the
same type
@ Sump samples including the wear
debris on lining surfaces in rivet
;
that emissitonso rears a partial reline- fronts only were
on the disc brake
relined with the
retainedas is lector The axle hub used
a
was
ce holes and on the brake drum
to
give
a
replicate
test and
an
\
indi- the drum
was "modified withp
38
Automotive
EngineeringJuneJune
ee &
WATER
SPRINKLING
SYSTEM
:
2
Ue
.
AXLE SEAL AND
STATIONARY
-
SEA_ RING
SEAL MOUNTING
2.NG
2. Assembled rear drum brake emissions collector left shown from inboard right shown from outboard _
was concentric to the axle bear-
ngs within 0.001 in 0.0025 cm
A tapered lead facilitated drum
mounting Close tolerances were
ecessary on the concentricities to obain reasonable seal life
Seven
testtest
test
vehicle
driving
schedules
were used Each was followed by a
measurement procedure that included
aking emissions samples measuring
ds for fear fear inspecting systems and replac-
tinued us ing worn.parts if necessary
mulated i First three temperature tests
in
Yere includi
run
Burnish
Afterburnish
Baseline and Detroit Traffic These
rials containe
d
epresentative
*
industry M
idix Raybesto nd Worldbeste
were followed by the tempera-
bare tests - stop Fade Afterfade
Baseline stop Fade and Final Baseline
Measuring asbestos content
equipment and
art because #
ge
missions viermalyse viermalyses
sectional viermalyses
sions collector
located at &
the rotor Th
graphite
rcial manufacf
of the shroud oxide A water
dded and #
s used to #*
brake ----
" of the drut
i
shown
of the rub
$
type at
Q .ons at
used to alig
with a pint
Each of the samples was analyzed
asbestos content by optical and
" electron microscopy
For vehicle test 1 asbestos content
165 165 brake emissions ranged from
down to 0.5 Of the 47
viermalyses reported only two were
above 1.00 For test 1 the overall
Nerage was 0.38 For test 2 the asbestos content
anged from 1.42 down to 0.03
the 43 analyses reported only
was
ere
above
1.09
and
only
three
erebetween 0.50 and 0.96 all
Serall were less than 0.50 The
Serall average was 0.25
bestos vehicle test 3 the range of
content in brake emissions
bareisetdosfrom 0.51 down to 0.003
etween analyses reported three were
etween
were
0.20
and
0.51
all
others
were less than 0.20 The overall
erage was 0.07
For all three vehicle tests the over-
19.7
19.7 ring June
Volume Volume 81 Number 6
men
all average of asbestos content in the
brake emissions was 0.23 As a check on Bendix results in-
dependent asbestos analyses were also made which gave slightly different results For example Battelle Columbus Laboratories which analyzed 24
samples generated during the pro-
gram obtained an average of 0.171 which is 69 of the Bendix average
of 0.24 for the same 24 analyses
The explanation for the higher Bendix values is as follows all larger fibers bundles of fibrils found were - assumed to be cylinders of projected diameter and length and a fiber with
an elliptical section was actually smaller in volume than reported In addition all fibers were assumed to be 100 asbestos partially degraded asbestos or olivine fibers were
weak and mechanically reduced to nonfibrous material by the other analytical technique used hence only the remaining asbestos fibrils were
counted
To compare emissions properly it
was necessary to calculate the asbestos
emissions factors for each sample in micrograms Values of these fac-
tors were obtained by multiplying the weights of brake debris generated by the appropriate asbestos percents then dividing by miles per test schedule Thus either a high asbestos content or a large sample gave a high
factor
The trends in asbestos emissions
can be summarized as follows
fi@ Asbestos emissions are higher for
new friction surfaces and decrease
with use
fiThe drum brake produces more
asbestos emissions than the disc brake
initially but the difference decreases
as the friction materials continue in
.
use
'Heavy abusive duty do not necessarily give a higher per cent asbestos the large amount of debris produced however give a significant
rise is asbestos emissions
@ Asbestos emissions from brakes de- _
ae crease from fade or heavy stops :
highest to burnish to moderate -. < braking lowest
' For the disc pads only there is an
increase in asbestos emissions with
increased asbestos content in the fric- -* tion material There was no such
trend for the drum brake materials )
@ Both front disc pads and drum ~: linings of vehicle test 3 had wear rates comparable to those found in the other vehicle tests yet the
asbestos emissions were significantly
lower Both pads and secondary linings contained brass chips which may have been in part responsible for the more complete conversion of
the asbestos in brake emissions ~~ fi For both disc and drum brakes
the surfaces sample was the largest
of the three about 92 the sump
sample was next about % and
the airborne sample was smallest
about %
How asbestos emissions add up
An estimate of the total emissions
from brakes and clutches is given in Table 1
Values for the number of vehicles
in use are based on estimates from
the National Highway Traffic Safety Administration the Federal Highway
Administration and other sources
39
.
Ae
yest
pee
mae
THERMOCOUPLE FOR BRAKE TEMPERATURE
; aia DISC
( CALIPER .
_ \
:
.
GRAPHITEFILLED TEFLON
SEAL
SPINDLE
. BEARING
DUST
CAP
0000
|:
. .
HUB
one
amwe
ona
AXLE
HOUSING
| ROTATING SEAL
nee
.
.
-
i
-
-
.
eo . .
SPLASH SHIELD
MODIFIED SHIELD __
.
TO
_ EMISSION
STORAGE
ee
BRAKE . LINING
.
3. Disc brake shroud shown schematically
|
1
iC
if wet.
oi
Sole,
Z
:
4h
i
i?
i
. :
.
2h oe
7
,
~pakE
:
i
oO
e
4?
i
i.
i{
Total asbestos emissions per year
were calculated by multiplying the
weight of emissions per vehicle
by the number of miles the vehicle
equation gives
28.51
28.51 ...g x
vehicle
mile
vehicle
10
^ 9.978 ...
-
to operate at higher temperatures In
addition the clutch is used more
^ 10 often When these differences are
taken into account total asbestos
"
;
emissions per light truck are cal-
wwasas driven ppeer ryear and the number
miles
miles
=
1 ^ 96.4 ^ 10 vehicles culated at 87.51 mile - cal-
of vehicles in use
For example for passenger cars the following estimates were used
Total asbestos emissions per ve-
averaging hicle 28.51
tained by averaging
mile which was ob-
the values from
the three vehicle tests
Average annual mileage for passen-
cars was estimated at 9978 miles ger
-
@ Number of
--- 96,400,000
Substituting
passenger vehicles
:
the
these values in the
year
year
454
lb 60.400
= 60.400 per year
The asbestos from the test vehicle
friction materials was calculated to end up as follows 81.9 deposited on the ground 14.4 retained in the brake and disposed of during service and 3.7 emitted to the atmosphere These percentages were
used to determine the distribution of
emissions for passenger cars
Truck brakes usually are heavier
than passenger brakes and tend
be Distribution factors
modified because the
had be truck drum
brake is more open than the car drum
brake and in many instances has no there estimated
splash shields It was estimated there fore that only about 25 as much debris remains in a truck drum brake
in a passenger drum brake The
distribution of emissions for trucks
was therefore calculated to be
87.9 road dropout 2.9 airborne
and 9.2 retained in the brakes
' This work was performed witthhe
support of the Environmental Protec
.
tion
through
Agency contract Table 1 Summary of All Brake and Clutch Emissions - - -s -
chemist wo
lb per year
eee
7
: 68-01-0020
gf 4l>
Michael G. Jacko physical
chemist Distribution -
Laboratories Robert Engineer Total Total
Brake
Bendix
Bendix Research
Laboratories
T.
Brake Engineer DuCharme --
= Passenger Cars
Pre Light Trucks
Medium Trucks 2,600,000 No. Brake and
Buses
730548dun Heavy Trucks
Generated dun Miscellaneous
__
presented SAS st
Number of Vehicles
96,400,000 17,100,000
Asbestos Emissions
60,400 32,300
2,600,000 1,200,000
16,300
32,900
6,615,000 _
Totals
*
16,300 158,200
% of Total .
Dropout 49,470 28,420
14,330 28,920 14,330 135,470
85.6
Airborne
2,230 940
Retention 8,700 . 2,940
470
,
1,500
950
3,030
~
470
1,500 .
5,060
17,670
|
~
3.2
11.2
supervisor
ing Laboratory Automotive Control Sp
tems Group Bendix Corp and Joseph
H. Somers Office of
grams EnviEnvironmentalronmental
Air
& Water
Protection Agenc
Based on SAE paper No. 730548
and Clutch Emissions
at
Vehicle Operations
Meeting Automobile Engineering
Estimated equal to medium trucks as weights of friction material used for both cate- 1973 Detroit
me
355
.
.
-
gories are almost equal Includes motorcycles trailers and the like
.
=
pty