Document 659bDmnY2ro7pB0rXVVqDY7p9
FILE NAME Ford FD
DATE 0000
DOC FD023
DOCUMENT DESCRIPTION Internal Report - Asbestos Emissions From Brake Dynameter Tests
|
ASBESTOS EMISSIONS FROM BRAKE
|
I
DYNAMOMETER TESTS
by
,
-
.
T
E. Anderson R. L. Gealer R. C. McCune J. W. Sprys
J
Scientific Research Staff
Ford Motor Company
"
Dearborn
Michigan
48121
SCIENTIFIC RESEARCH STAFF a
CO
\
ASBESTOS EMISSIONS EMISSIONS FROM BRAKE
DYNAMOMETER TESTS
by
A. E. Anderson R. L. Gealer R. C. McCune J. W. Sprys
Scientific Research Staff Ford Motor Company Dearborn Michigan 48121
d
'
ABSTRACT
Dynamometer tests ofa production disc brake provided new information
on asbestos fiber emissions during breakin normal use and high temperature
use conditions Both ambient air and brake cooling air were sampled isokinetically
using 0.45 ...mfilters Examinatioonf test and background filters required a
clarification process to maximize fiber detectability the use of transmission
electron microscopy at 40,000 X for detection and electron diffraction for
positive identification of asbestos fibers Most of the lining asbestos was
- found to be converted to a fibrous material by the high flash temperatures
of the braking surface Less than 0.02 of the lining wear was released as
asbestos fibers The concentration of asbestos fibers in the urban atmosphere
due to brake usage was conservatively estimated at less than 0.07 x 10
grams per cubic meter Based on this bound the use of brakes was
judged to be not significant as a source of atmospheric asbestos
i
INTRODUCTION
Asbestos has been a major constituent of automotive friction
materials more than 50 years It
.
heat
resitance
and heat resistance to a brake lining
used to impart strength
and to enhance friction and
flexibility
wear proper-
ties Most present brake linings use resin or rubber binders and chrysotile
asbestos together with organi and inorganic friction modifiers and fillers _ The asbestos content varies with formulation from a low of 25 to about 65
by weight Minimum asbestos levels are found in some high performance
*
European disc brake linings which are highly filled with metals and inorganic
constituents Brake linings in the U. S. average about 50 asbestos content
tons S. Of a total U.
.
25 Mkg
annual
asbestos
consumption
,
730 of 800,000
Mkg
about
28,000 tons chrysotile asbestos are purchased annually for friction materials
of all types 1 Of
,
consumes about 12,000
this it has been calculated that brake lining wear 11 Mkg
tons asbestos per year Roughly an equal amount
remains on brake shoes at the time of replacement or is manufacturing wastage
Recent tests have shown that densely populated urban atmospheres
often contain significantly higher asbestos concentrations than surrounding
areas
;
2
Background asbestos levels in the atmosphere result from the
1
natural weathering of asbestos rock and soil as well as from mining ;
farming and excavating
commercial
and
industrial
commercial and industrial
The generally higher urban
sources
lining
Brake lining and
concentrations suggest
facing
clutch facing wear was
suggested by Thomson 3 as a possible source for higher asbestos levels in the urban atmosphere
Lynch 4 in a study undertaken by the Public Health Service reported the findings of several brake dynamometer and friction machine tests in which wear debris was trapped on a filter and
subsequently examined by means a transmission electron microscope TEM He concluded
1
*
free lining that
fibers from brake
wear seem to be an inconsequential health
factor in urban air pollution Lynch detected no free fiber from an automobile
clutch
and
a bus drum brake
J
but
some
free
fibers
were
found
in one
test
of an
experimental disc brake
ft
With mounting concern over air quality in general and asbestos
pollution in particular this study was initiated in 1970 to provide additional
data on the asbestos emissions from disc brakes
OBSERVATIONS OF LINING WEAR
The near absence of free asbestos fiber from lining wear has been
by using reported
Luxon 5
ray diffraction and by Lynch 4 using the TEM
transmission electron microscope Several authors have suggested that
interfacial temperatures during braking could be high enough to decompose
the chrysotile asbestos into fibrous thermal degradation products Ana-
lytical relationships exist which permit calculation of interfacial tempera-
ts ts 6 However several of the significant parameters are difficult to
determine accurately for heterogeneous materials such as brake linings The
bundles asbestos crudes larger fiber
were calculated to reach their rapid
.
decomposition
decomposition
temperature
during
normal
braking braking
at
speeds
above
56
MPH
as above 25 m
an upper bound value and
18 MPH 8 s as a lower bound
value
An experimental approach was undertaken to provide closer bounds
into Added insight
the thermal decomposition of asbestos fibers
in brake lining wear was attempted by
process A small laboratory friction shock resistant Vycoy glass rubbing
direct visualization of the frictional
test machine was constructed using a thermal
surface replacing the conventional cast
iron in which the friction interface was
directly viewed
binocular
microscope
microscope
7
Scaled rubbing velocities were
the thermophysical property differences between the glass
with a low power 7-50
used to compensate for and cast iron
Moderate scaled velocitics roughly equivalent to 12 MPH 5 /
provided a view of
initial burnishing
intermittently incandescent
operation resinous material
asbestos crudes
surrounding these
During the
asbestos
crude was observed
;
i
products around the
to pyrolize producing microbeads
+
"
crude These organic products of
of condensation
resin degradation
and
tne apparently powdered asbestos decomposition products were seen to smear
into platelets often of such size as to be discernible to the unaided eye
At higher rubbing velocities over 30 MPH or 13 / ) the platelets
formed a surface char layer under the action of more severe thermal and
mechanical action
;
The larger asbestos crudes then could be seen to glow
}
with apparent depth and for greater time durations often several seconds
|
The actual brake lining contact arca was only a few percent of the total
4
available surface with contact spots moving in a random manner with time Froin
these friction visualization studies it appeared that local flash temperatures
and severe mechanical action could be major factors in the breakdown of asbestos
ribers for most brake usage Examination of the lining surfaces revealed the
presence of fibrous magnesium silicate both crystalline Forsterite and
amorphous phases Magnesium silicate is a thermal degradation product of chrysotile
asbestos
{
Forsterite transformations have been reported to occur at 600
over period of hours Differential thermal analysis DTA studies in our
laboratory indicated this transformation occurs within seconds at 820
;
:
Special brake lining formulations were then prepared and tested
on the glass visualization apparatus and a Friction Assessment and Screening
Test FAST machine
friction interface which
Chemical reactions were found to would require a flash temperature
take rise
place at of 740
the to
initiate when an equivalent of 35 MPH 16 m rubbing speed was used on the
FAST machine At this same speed melting of inorganic lining additives and
_, metal particles confirmed brake flash temperatures up to 980
.
Based on these findings it would not appear surprising for few
asbestos fibers to be emitted from brakes in normal usage However some
during
several
mechanical
removal
of
fiber
appeared
possible
during
the
first
first
several
brake
applications with new linings
' +
Also high brake temperatures possibly
weaken organic the
binders and cause increased fiber emissions
could
TEST PROCEDURES
Complete sample collection and examination procedures along with
sample data calculations are included as Appendixes I II and III Briefly
the tests were performed as follows a new Pinto disc brake assembly was
installed on a single station brake dynamometer in a room which was cleaned
of extraneous asbestos sources Air from within the room was blown through
a diffuser screen to provide a velocity distribution over the brake which
;
i
1
:
approximated that of vehicle usage The air stream in front of and behind
the brake was sampled isokinetically using matched 0.45 ...m filters holders
and air pumps Note the system schematic in Figure 1 and the actual test setup
in Figure 2.
|
The brake exhaust air was discharged out of the building
The first pair of filters were used during the first 82 burnish
stops to represent Breakin conditions After further burnishing a second
pair of filters collected samples during 560
t
A third set of filters then were utilized in
normal
a high
use brake applications
temperature use test of
41 brake stops
All brake applications were made from a 40 MPH 18 m equivalent
speed Breakin and normal use tests employed brake torques corresponding to
quarter gg 4.9 sdeceleration This torque level was doubled for
the high temperature tests
During the normal use procedure the test filter was located for 20
brake applications at each of 28
insure a representative
grid locations in the exhaust duct throat
6
of the air flow over the brake This test
to
grid
and filter may be seen in Figure 3
s
\
A central collection site in the test grid
was used for the breakin test and the final high temperature test
Samples of the three pairs of filters breakin normal use and high
temperature use were subjected to a clarification process involving low
a
temperature ashing to oxidize all organic material and mechanical action to
it
...
separate the particles This assures maximum detectability of asbestos fiber
2
RESULTS AND DISCUSSION
Transmission electron microscopy at 40,000 magnification was used in
the search for fibers At this magnification the ultimate fibrils appear to be
above one millimeter 0.040 inch in diameter Quantity length and apparent
calculation diameter measurements provided data for
of asbestos fiber mass per
unit of filter area Coupled with dimension mass and flow determinations from
the dynamometer tests this data was used to calculate the emitted asbestos
fiber concentration in the collected wear dust in the cooling air stream and
from the brake lining worn The size distribution of collected fibers was not
determined by this method since the clarification process involved sufficient
mechanical action to reduce fiber bundles to the ultimate fibril size
Additional Samples of the normal use test filters were examined
on the TEM without recourse to the clarification process in an effort to
determine the asbestos fiber size distribution Roughly 10 of the asbestos
fiber was visible on the background sample based on the results from corres-
'
ponding samples after clarification
The largest observed fiber bundle was
0.20 km in diameter and over 1.1 um long >
A similar direct TEM search of the
normal use test filter revealed about % of the asbestos fibers observed after
clarification
percentage This reduced
of visible fiber was attributed
greater concentration of obscuring matter in the test filter However
observed 0.13 largest
asbestos fiber in the test filter
0.13 ...m in diameter
to the the and over
1.2 mlong
was
about
the
same
size
as was
found
on the
background
background
sample sample
-6
,
The similar
Lo
a fiber size
low
fiber
.
content
\
of both backgrouanndd test
filters
distribution estimate However it appeared that the
precluded quantity of
the larger asbestos fibers on the test filter was no greater than that of the
background filter
This supports the observation from the lining wear visualization tests
normal that
brake wear degrades most of the asbestos fibers
A brake lining grade
of asbestos appears on the TEM as in Figure 4 The fiber bundles are composed of
strong but weakly adhering fibrils of about 0.03 ...mroughly 1 microinch
diamete Mechanical action causes the larger fibers to open into smaller
fibers or even fibrils as illustrated in Figure 5 Contrast these raw material
fibers with one of the larger fibers Figure 6 and one of the more typical
fibrils Figure 7 from the normal use test filter
4
The similar low fiber content of both background and test filters
required accurate
clarification to permit an asbestos fiber count thus providing more
fiber mass determination but obscuring the actual fiber size distribu-
tion Therefore the calculations of fiber concentration Table 1 were expressed
as asbestos mass per unit mass of lining wear dust and asbestos mass per unit
mass of lining worn Asbestos fiber concentration in the ambient air background )
and ir the brake exhaust test was calculated in units of nanograms 10-9 grams
per meter of air However the actual asbestos emissions from brake usage
would be diluted substantially through mixing The asbestos concentration in
urban air due to usage was estimated based upon existing automotive exhaust
lead dilution data These calculations appear in Appendix III
All the test results in Table 1 have been reported as ten times the
" calculated test values to allow for possible losses in collection processing
and counting These values therefore should provide upper bounds for asbestos
emissions brake usage For example the local Detroit Michigan atmospheric
; asbestos concentration ranges from 0.5 to 13. nanograms per cubic meter The
\
_ observed background asbestos value was 1.0 mfor the normal use test
but
.
the
is reported in Table 1 as 19 mThe low asbestos emissions
. "
test disc brake under normal use conditions is underscored by
from
5
the
addition of but 13 1
m1.3
mobserved
in
the undiluted
exhaust
air
stream
'
t
a
1
TABLE 1
a
ASPESTOS EMISSTONS FROM NORMAL USE BRAKING Dynamometer Data for a Production Disc Brake
- Background Asbestos in Ambient Air
Asbestos Fiber from Brake in Exhaust Air
- Total Asbestos Fiber in Exhaust Air
Estimated Brake Asbestos Fiber in Urban Air
. Asbestos Fiber from Brake in Airborn Wear
19 x 10 m 13 x 10 m 32 x 109 m 0.07 x 10 m
Dust
;
0.05
Asbestos Fiber Released from Lining Wear
0.02
*
Reported values are times the observed test
values to provide upper bounds
}
i
first The lining wear rate during the
82 breakin stops was found
to be about five times above the normal use rate Asbestos fiber release
during breakin was also higher an average sevenfold
the breakin wear is less than % of the total lining
increase
wear the
However since
increase of
emitted asbestos fiber resulting from this temporary sevenfold
be about % when averaged over the life of the linings
increase
would
temperature High
brake usage also increased lining wear rates in
this case by a factor of eleven Asbestos fiber emissions increased by less
then a factor of three Frequent vehicle operation under such high temperature
-8-
\
Conditions would lower lining life to levels far below present averages
However
even
:
if all brake wear provided the
;
same
fiber emission rate as _
found in the high temperature use test the percentage fiber release to the
di
atmosphere would still be under 0.06 of the lining wear
.
aa|
remaining
1
The remaining brake wear was a mixture of fibrous
organic
and
\ inorganic matter Forty percent of the estimated 62 to 77 collectable
wear debris were accounted for by the test filter on the normal use test
The remaining 15 to 30 presumably were retained on the lining edges the caliper
spindle rotor wheel and tire Accurate measurement of this material was not
due to the
retention of dust from the ambient air
possible added |
More precise values of brake lining asbestos emissions or the
particle determination of their
i
I
size distributions appear possible for these
low fiber concentrations only by testing brakes in an asbestos free atmosphere
This approach was used in an EPA sponsored study 9 where filtered air
was flowed through sealed brakes at a flow rate greatly reduced from normal
CONCLUSIONS
'
1.
.
Automotive
brake usage provides
t
a very
small emission
of asbestos
fiber ,
less than 0.02 of the lining worn
oe
}
rer
2 Automotive brake provides a very small asbestos fiber input to
urban atmospheres estimated to be below 0.07 m , "
a 3 Intense local heating and severe local mechanical action causes the decom-
|
et
position of most asbestos fiber in brake linings during typical usage
-10-
SAMPLE FILTER PREPARATION
Microporous membrane filters with 0.45 mpores were selected to assure
high retention of asbestos fibrils and most of the wear dust powders A
matched pair of Gelman sampling pumps and 35 mm diameter holders were used |
Thin metal cones of 12 included angle were fabricated and sealed to the
filter entrance These cones increased the tip entrance velocity to that
of the exhaust air duct so isokinetic sampling could be achieved The cone
tips were carefully matched in size Flowmeters and differential pressure
indicators were installed in the system to monitor the filter airflow during
each test
1
and to set the tip entrance velocity before each test
Tests were performed on the unused filters to determine
their
weight change with variatioonf humidity. Filter weights were measured on
a microbalance to the nearest 10 micrograms Filters were placed in the
center of the designated exhaust duct grid and at a fixed position upstream of
the brake but below the diffuser screen This latter ( background filter was
the located where
upstream air velocity equalled the average over the test grid
In this way the sampling was isokinetic with essentially equal volume flows
through both ) filters
TEST PROCEDURE
All brake stops were conducted from the same speed equivalent 40 MPH or 18 m to maintain fixed air flow conditions Burnish and
normal use brake applications were at 0.25 g 2.45 sdeceleration
and with a two minute time interval provided a peak rotor temperature
-
of 180 350
The number of brake applications were selected to provide
about one gram of lining wear per test
Breakin wear was monitored for the first 2 stops No sampling
was performed for about 200 more brake applications while the linings and
rotor developed essentially steady conditions
-11-
\
The normal use test was then performed on this burnished
brake assembly Twenty brake applications were made under the same conditions
with the test filter located sequentially at each of the twenty grid
J
'
locations The filter cone entrance velocity was adjusted match the grid
velocity at each relocation . Four grids were used to monitor exhaust velocity
_ Slight adjustments were sometimes required to compensate for drift which
appeared to be external wind initiated
A third test was performed to provide an estimate of the fiber
emissions from a hot brake assembly As in the breakin test the test filter
was positioned in central location for this procedure Thirty stops
were made 0.5 g 4.9 sand minimal time interval until the rotor
attained 410 770 This temperatuwraes then maintained by adjusting
the application time interval Ten additional stops were made as the brake
was allowed to cool
All filter weight determinations were performed at equilibrium
conditions and then corrected for humidity After use the filters were
individually stored in covered glass containers Lining weights were taken
after removal of wear debris but before they had cooled completely to
minimize weight changes from water absorption
stored in a dry jar
Between tests the linings were
The relevant test data are included in the following table A
slight pad drag caused the outboard lining to wear above expectations on the
normal use test Since this added work was not included in the lining wear
rate calculations the specific wear is above the usual range for this lining on No adverse effect the test results would be expected to have resulted from
this drag
Similar pad drag effects may occur on cars when smooth road
i
conditions prevent pad knockback"
Test
Brake Speed RPM
Brake Decel g
)
Wheel Load kg Brake Applications
Total Energy kW Max Apply Temp C
Total Lining Wear g
Lining Wear Rate kW
Breakin
535 40 MPH 0.25 2.45 s
257 567 lb
82
0.938 1.25 hp 115 240
1.10 in
1.17 0.051 hp
Normal Une
Hi Temperature Use
535 40 MPH
535 40 MPH
0.25 2.45 s 0.50 4.9 s
257 567 lb
257 567 lb
560
41
6.405 8.54 hr 0.469 0.625 hp
115 240
410 770
1.60
1.07
0.25
0.25
in in
0.011 hr
2.28 2.28
in 0.100 0.100
)
hp
_
-13-
t
SAMPL^ EXAMINATION
APPENDIX II
| PREPARATION AND EXAMINATION OF ASBESTOS CARRYING SAMPLES FROM TEST FILTERS
-
t
1
i
All slides dishes scalpels and other utensils used in the following
:
acetone
acetone preparations were cleaned in preartions
followed by rinse
in 200 proof
ethanol
2.
An area of measured dimension was selected at random from the test filter
cut and placed particle side down on a clean glass slide
Several drops of acetone were placed on the filter segment to partially
dissolve and secure it to the plate
The samples were ashed for a period of two hours by using a low temperature
asher at a chamber pressure of 0.5 torr 70 Pa oxygen and power of
200 watts
Several drops of a % solution of cellulose in amyl acetate were
- placed on the residue and a clean watch glass was used to grind the mixture for a period of five minutes
A second clean glass lide was then placed over the mixture of cellulose
and
residue
and
a smear
obtained by pressing the two slides together and
then sliding them apart
The films thus formed were permitted to dry and then removed by scoring the edge of the slide with a scalpel and floating the film free from the slide in @ distilled water bath It was found that the film was most easily removed from the slide introduced in Step 6
Sample preparation techniques outlined below are reported by Selikoff et al in Reference 2
similar
to those
i
114-
8 Approximately electron microscone grids 3 mm finder grids
were placed at random on the floating film and the film was lifted by
putting a clean slide on top of the film and drawing the slide down through
,
'
the water so as to trap the grids between the slide and the film which
F
scould now cling to the slide
)
J
t
approximately 9 A carbon layer of
0.06 ...mwas deposited on the film to
prevent charging during examination in the transmission electron microscope TEMTEM
Direct examination specimens were prepared by depositing a carbon
layer on the dust side of the test filter and dissolving the filter in acetone
Electron microscope grids were used both to support the sample and to provide
grid location reference marks
TEM EXAMINATION AND COUNTING PROCEDURES
.
Aproximately
Approximately ten electron microscope grids were prepared for each
of the five filter samples analyzed Four grids were arbitrarily selected
from each sample and two grid squares on each grid were scanned for asbestos
aw
The individual grid squares are approximately 90 ...mon each side and were
examined at a TEM magnification of about 40,000 For each grid area scanned
photographs were taken where possible of the
( .
chosen fibril for the purpose of determining
first last and one randomly an average fibril diameter accurately
j
. Measurements were then made visually that is each fibril fiber or asbestos
bundle was compared to known calibration marks on the electron microscope screen
to estimate the lengths The length could be estimated to within 20 as
determined by the photographic measurements The marks on the screen ore 0.5 cm
apart corresponding to 0.125 um when a magnification of 40,000 is used
This
and
was
approach
furthermore
taken because
it
was
impractical
to
photograph
all
the
fibrils
length measurements were not as critical as diameter measure-
ments determining fiber volume Where both measurement methods were used
the values
providing the greatest indicated brake asbestos levels were chosen
providing
greatest
The results are shown in the following table
Sample
)
3
C
D
E
F
=
ASBESTOS CONCENTRATION ON FILTERS
Sample Identification
: normal stop brakes
Concentration ng cmof filter
15.32
Background for A
'
normal burnished brakes
"
1.06
7.98
Backgrounfodr C
,
4.04
high temperature temperature
burnished brakes
5.37
Background for E - not used insufficient sample
Blank - unused filter
0.33
From photographic measurements of 120 chrysotile fibrils the asbestos
fibril average diemeler was determined to be 0.0337 um with distributions
similar to that observed by other workers 10 From 45 fibrils of triple jet-
milled chrysotile the average diameter was determined to be 0.0316 ...mwith
1 standard deviation of 0.0063 ...m
ASBESTOS IDENTIFICATION
Asbestos can be identified in the transmission electron microscope
.
in one Such a
of two ways
4
The first and absolute method is
diffraction pattern is presented as Figure 8
by electron Measurement
diffraction of diameters
and correlation of these measurements with a known standard gives the interclanar
spacings of the material Comparison of these spacings with the ASTM file
identifies the material as chrysotile asbestos
The second method of identification is by appearance Figure 9a
represents an image of asbestos obtained in the TEM Fine lamellae are
observed within the fibril which are parallel to the long axis This appearance is characteristic of chrysotile asbestos fibrils Because of the nature of the _ electron beam radiation and heat damage can occur in the material markedly