Document 7Mn2rm2eyVp9R6g97KX4mMKwa
FILE N AM E: Phenolic Resins (PHR) DATE: 1974 DOC#: PHR052 D O C U M EN T D ESCRIPTIO N : P atents from Bendix; from AS Bendix File
W
2372
ganics. Vehicle tests also showed a reduction in noise levels, an unexpected bonus.'
Semi-metallics are currently being pro duced for one domestic vehicle equipped with solid rotors. Combinations of organic and semi-metallic pads are being used on a domes tic station wagon, luxury car and several light truck applications. The use of semimetallics has also been expanded to the larger disc brakes currently released for heavy trucks.
SMALL CAR SOLID ROTOR APPLICATIONS
As previously discussed, one of the pre requisites of a friction material is its abil ity to resist wear under various temperatures it will experience in service. We also have seen that smaller cars equipped with solid rotors will subject the friction materials to
a wider range of temperatures than the mate rials used on larger cars equipped with ven tilated rotors. It has been our experience that reasonably good predictions of durability life can be made knowing the wear versus tem perature characteristics of any material.
The effects which rotor weight and brake configuration have on operating conditions can easily be observed or measured with a Full Brake Dynamometer. A procedure which has been used consists of a series of braking cycles at six different initial brake temperatures. Each cycle is comprised of 300 stops made from 50 mph at 12 f)psps deceleration. The time interval between stops is varied to maintain a constant initial rotor soak temperature. The initial rotor soak temperature is increased
from 25O0 to 625F in 75 increments. After the 625 cycle, a 250 cycle is repeated to
establish the low tenperature wear rate after severe usage. The linings are measured after each cycle and the incremental wear plotted. The total rotor wear experienced for the 2L00 stop test is also recorded.
The data illustrated in Figure 7a, b and c, were accumulated using a 9" diameter solid rotor, 0.375" thick weighing 6 lbs. Wheel load used was 975 lbs.
The results clearly show the wear superi ority of the semi-metallics over both the Class A and Class B organics. While the total rotor wear for both the Class A and Semi metallic formulations were comparable, the Class B materials showed considerably higher opposing surface wear.
Another inertia dynamometer wear proce dure used by some European manufacturers to screen potential friction materials is a series
of 1 cycles consisting of 250 snubs, from 50
to 17 mph (13 ft/sec^ deceleration) in which the time intervals between applications is held constant at 95 seconds. Temperatures generated on this schedule are relatively low, usually peaking at about 250F for the brake outlined above. As in the previously discuss-
J. P. KWOLEK
ed wear versus temperature data, the semimetallics showed distinct advantages over both the Class A and Class B organics (see Figure8).
CLASS - A-ORGANIC
Fig. 7A-Wear versus temperature, inertia dynamometer, 975 lb wheel load, solid rotor
CLASS-B-O RGAU IC
Fig. 7B-Wear versus temperature, inertia dynamometer, 975 lb wheel load, solid rotor
FRICTION MATERIALS SEMI - M ETALLIC
2373
tests. The differences between front and rear brake mileage projections are due to the dif ferences in operating temperatures and lining availability. Rear brake operating tempera tures were approximately 100F below the front brakes thereby drastically improving the wear rates of the Class A organic. In the case of the Class B organic and semi-metal]ics, the lower rear brake mileage projections are the result of differences in available lining thickness.
Fig. 7C-Wear versus temperature, inertia dynamometer, 975 lb wheel load, solid rotor
Fig. 8-Incremental lining wear, inertia dynamometer simulation of 2800 lb G.V.W., sedan running low temperature durability
In the introduction, front brake tempera ture profiles were outlined (Figure 2) for a durability test of a vehicle equipped with solid rotors having a brake test weight of 2800 lbs. Tests conducted on Class A, Class B organics and semi-metallics using this vehicle procedure have repeatedly verified that semi-metallies offer distinct improve ments in lining life. The results Illustrated in Figure 9 confirm the incremental wear rates previously found in ^ill brake dynamometer
CLASS A
CLASS B
SEMI-MET
Fig. 9-Mileage projections, 2500 mile dura bility test, 1973 sedan, 2800 lb G.V.W.
The particular brake system evaluated
utilized front brakes lined with pads 0.1+75"
thick while the rear brakes had pads which
were O.I85" thick. It is interesting to note
that similar tests on larger cars equipped
with ventilated rotors rarely show life pro
jections over 30,000 miles.
Significant reductions ir noise levels
were noted when semi-metal]ics were compared
to the Class B organics. While specific
noise hunts detected brake noise ratings as
low as "7" for the semi-metallics, the Class B
organics showed unacceptable noise ratings as
low as "1+" (see SAE J1060). Further improve-
2374
ment . in noise rating levels were achieved when typical U.S. type insulators were added to the back of the steel shoes.
A series of vehicle tests were initiated over a year ago in Europe in which a new semi metallic formulation was installed on vehicles subjected to three different types of duty and were compared to a typical O.E. organic lining:
1. Taxi cabs having automatic and standard transmissions.
2. Rental cars. 3. Business travelers (described as country driving).
The estimated annual driving ranges from
12,500 miles (20,000 km) for rental cars to 25,000 miles (^0,000 km) for taxi cabs and
business travelers. The results tabulated below (Table 1) indicate the semi-metallies reduced lining wear rates significantly, show
ing 250 to 430^ improvement.
With respect to rotor wear the semi-metal lic offered similar advantages over the class B organic (see Table 2).
SUMMARY
The performance and wear advantages of semi-metallic liningc over conventional organic
J. P. KWOLEK
types have previously been established. More recent development has made them more compar able for initial friction and low temperature or initial wear characteristics.
The high temperature wear capacity of semi-metallic linings enhances their potential for usage on smaller cars with solid rotor brakes. Actual vehicle comparisons have shown substantial improvements over Class B type or ganics for projected lining life, rotor life, and noise characteristics under a variety of usage conditions.
The gains in lining and rotor life offer ed by semi-metallics would appear to make them a most viable and cost effective candidate for use on small cars with solid rotor brakes and relative small lining pad areas.
REFERENCES
1. F. William Aldrich, "Semi-Metallics: A New Type of Friction Material." SAE Paper #710591, June 7-11, 1971.
2. G. R. Wynne, "Development of Police Car Brake Standards." SAE Paper # 7 5 0 3 9 7 , Feb. 24-28, 1975
3. Seong Kwan Rhee & John P. Kwolek, U.S. Patent #3,835,118, Sept. 10, 1974.
Table 1 - L inin g Wear R ates (MM/lOOO Km.)
Class B Organic (o .E .) Sem i-M etallics
Taxi Cabs A utom atic Manual
6.5
4.0
1.5
1,5
Car R e n ta ls
1.5 0.5
Business T ra v elers
1.5 0.5
Table 2 - R ctor Wear R ates (MM/l0,000 Km.)
Class B Organic (O.E.) Sem i-M etallics
Taxi Cabs Automatic Manual
0.57
0.02
0.33 0.02
Car R e n ta l .
0.12 0.06
Business T rav elers
0.10 0.04
United States Patent nvj
Rhee et al.
Hi] 3,835,118
145) Sept. 10, 1974
54] SPONUK IRON FRICTION MATERIAL
I" 5) Inventc- Seong Kwan Rhe*. Southfield. NKh . John I*. kwolek, Trov. \ Y
Assignee The Bendix Corporation, South Bend, lnd
Filed
Ms> 14. 1973
Appi \ o 360,255
! C.S Cl.
' In'.. ( I. " s ?ifl(! of Search
260-38. 51.:'/.. 106'36. vr- :oc. : i d r , c o s t 51 08
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References ('led
l M i l D Si A U S P.A11. M S
:; , <jug-,:.
2 . vi < Spoke.
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i1.434.99k .V 4 v :.:r: : w>u.!20
3/1969 Aldrich........................
|0 6 'H
1/19^0 G riffith................................ w i n
5/197: Clark.................................106. jf
Primary Examiner--Allan Lieberman Asustant Examiner--P R. Mich! Attorney, Agent, or Firm--Leo H. McCormick. J r ; William \ Antonis
1571
ABSTRACT
A semi-metallic friction material for use in a vehicle hr.ike a< a `notion lining or pad The semi-meta!^ diction material utilm- the abrasive surface produced in coarse sponge iron to provide a high coefficient of triction and good wear resistance up to 250F to com phnu-nt the coefficient of friction and wear resistance ^.;pawe ot being produeeJ by the interaction of mctal-
at... ceramic powders, stce! fibers, rubber particle-, md graphite ahove 25f' l
7 Claims. 2 Drawing Figures
PMENEDa n o m <
3 ,8 3 5 .1 1 8
FIG. 2
3.835.118
1
2
SPONGE IRON FRICTION MATERIAL
a high coefficient of friction upon initial engagement
BACKGROUND OF THF INVENTION
with a corresponding brake member These and other objects will become apparent from
Friition materials consisting of graphite, metallic, ce reading this specification and viewing the drawings
ramic and rubber powders held together by a thermo- '
setting resin have been used as brake pads in braking sv'ierr.' to provide a uniform coefficient of friction
BRIEF DESCRIPTION OF THE DRAWINGS FIG 1 is a perspective view of a friction pad for use
without excessive fade Such a brake lining material is fulls described in L S Pat No .'.4.14.998 incorporated
in a brake assembly. FIG 2 is an enlarged view taken along line 2--2 of
herein by reference
10 FIG 1 illustrating the relationship of the compositional
The Department of Trunsportalion of the l S. Gov ingredients in the friction pad.
ernment has proposed that acceptable safe braking dis tance' be reduced It has been determined that if an organu friction material, such as that disclosed in I S application Ser No .V>9.'.'!!. incorporated herein by reference, could be mtvdificd to piovidc a high civffi-
DF:T AILED DESt RJPTION OF THE PREFERRED COMPOSITION
Throughout this specification the terms metallic powder and ceramic powder arc used to denote a mate
cient of frictian immediately upon engagement of the wear pads with a mating brake surface, the proposed standards could be met. Frictional modifiers havine' highci cocfTicicnt i'f friction were tried, however, un desirable side effects such as noise, poor wear. fade. grvHiving in the mating surfaces and reduced structural strength resulted
SUMMARY OF THE IN\ ENTION
rial having a nominal size which will pass through a No Ko mesh screen and consist of at least 85 percent of a
base material with the balance being mainly oxides of ^*(1 the base material. Similarly the term "sponge iron" de
notes a materia! having a nominal size. 85 percent of which will pass through a No 20 mesh screen, yet will
be retained on an 80 mesh screen, and consul of at least 90 percent metallic iron 25 The brake pad 12 for a shoe 14 shown ir. FIG I is
\\ c have discovered a composition for a scmimelallic friction materia! wherein coarse sponge iron
constructed of a semi-mctallic material whose principal ingredients are sponge iron, graphite and modifie's
particle' are utilized av a `oction.il modifier The abra- held together by a thermosetting phenolic resin which
'iv e surface of the sponge iron will provide a brake lin is then cured under heat and pressure to form a
ing with a high coefficient of fnenon upon in ttiJ cn- blended rigid mass 16. as illustrated m FIG 2. While
gagement with a co rrc'n o n Jin g b: .iking surface Be cause- the sponge iron p art-Jc - are unanncalcd .me, .a'se initaf burnish low vr.pvT cturc wcai 1on tin
disc brake pud - are rot illustrate d. test result' indicate the same advantages car he found when this material ts u- ed on disc hMkcs
Inctv'i: pad will be 'cdiK cJ The nregular surface ot ,s The sponge iron particles 18 are irregular in shape
tin- course sponge :ro:-. wliich includes minute pm wrh a surface having pin hole void' therein The
noics wh! compliment the noise attenuating com po sponge iron i' produced by a method known as the
nent m the semi-metallic friction materia! to essentially Sicurin proces' Ir this process, powdered magnetite
el m.nate seju-.-.d associated during a frictional engage- iron ore. c.irhor. eol.e and lime arc charged in layer'
men' Since the sponge iron paMielO' have a nominal 40 into covercv! cruvibk-s These ingredients are heated in
o re of between To to SO m c.h w huh tone' to rupture kil"' unui reduction is complete After cvK'hng. the
under transverse loads, steel fibers in a proportioned iron produced which o removed will have a physical
vl.-'-nnship with the sp-'iie-. io n r.irtiele' tire added to appeara-ice of a round porous cake abou- 10 inches in
the s.-r.-'-PK-tallie friction material lo provide structural diameter and 2-2'*2 inches thick The reduced sponge
an.ty for the brake lining
-if cakes are then crushed and disintegrated into particle'
It ;s. therefore, an ohieci of this invention to provide Hoeganac' Sponge Iron Corporation. Riverton. N.J
.! 'e m met.ill.. base material with a friction modifier produce' sponge iron partielc' that are unannealed,
consisting of coarse sponge iron particles to in v e a 'c di'ignatcd M 20/8'>. having a nominal size which can
cold friction and reduce wej' when used as a brake vary from 20 mesh to ko mesh have proven satisfactory
pad
JO for brake pads These sponge iron particles have an
It is another object of this invention to provide a abrasive surface sufficient to provide a high coefficient
semi-mc-ialiic base m aterial for a brake pad having of friction upon initial engagement of the pad 12 with
coarse sponge iron particle- as the principle compo a corresponding braking surface, yet are large enough
nent to compliment noise reducing ingredients therein to resist abrasive wear at low operating temperatures,
in attenuating sounds created upon the brake pad en- thereby reducing low temperature wear.
gaging a corresponding brake member
A typical composition for the scmi-metaJlic brake
It is still a further object of this invention to provide pad 12 is as follows
a semi-metallic material having coarse sponge iron par-
tides uniformly distributed therein to provide a high coefficient of friction at low temperatures and steel fi
\ olume Percent
Volume Percent
bers therein to provide structural unity when the serni-
metallic material is used as a brake pad It is still a further object of thi' invention to prvvduce
j senu-nietallic friction material consisting of a mixture ^ of metallic and ceramic powders, coarse sponge iron. ' graphite, rubber particle-- and steel fibers rigidly posi tioned in .i resin matrix foi use in a brake pad h.ving
Metallic
(copper Ir*** \ /.
Sponge Iron PjmicIc*
( eromc Pu*derx mII'ht.jn rr rmilli?.
magnesium i*\ide *.rrjfv mi^.ii
aluminum
.**, - %.
vn \j. mm -xidr
Sled f iSrr RhMv p-t'i ipl
;
(1 ir ' 0
2*
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3,835,1 18
3
4
Phenolic retm hinder
-Continued
Volume Percent
23
Volume Percent
13 to 41
metallics (compared to organics) when operating at temperatures below 325T. Average driving seldom re sults in temperatures above 325T and is generally con sidered to generate brake temperatures of around 5 250T. Thus, the wear rate of any potentially commer
cial friction material must be equivalent to organic ma
terials at these lower operating temperatures The use
The ingredients are mixed together and formed into of coarse sponge iron panicles has shown a significant
a desired shape Then the mixture is placed in an oven reduction in both the 250*F and 325*F wear levels,
where the resin is cured to hold the other ingredients 10 thereby improving the chances for commercial accep in a fixed position with respect to each other. After cur tance
ing the resin the material is shaped into a finished prod
As previously discussed, the proposed Department of
uct such as the brake pad 12. The relationship of the Transportation reduction in acceptable safe brake
various ingredients are illustrated in FIG 2 as follows, stopping distances requires that the brake systems re
sponge iron particles 18. graphite particles 20. rubber 15 main balanced throughout the test. This requires a fric
particles 22, ceramic powders 24, steel fibers 26, iron tion materia) which will exhibit the same friction levels
powder 28 and resin 30.
throughout the test. While conventional semi-metallic
Brake pads manufactured according to a formula as materials exhibit better friction stability than most or
represented above were compared with brake pads of ganics throughout the test, one problem was found with
a conventional semi-metallic friction composition 20 conventional semi-melallic materials, that was low ini
wherein the metallic powder constituted about 2001 by tial (pre-burnished) friction As a result, conventional
volume of the total mixture with the following results semi-mctallic materials were unable to meet the pre-
M^'v .. r
St K- V :n. Ms Sc'*:- Ms I.:'*-v Spv'nj.'i Iron
C o efficient of Frictio n
0 14
0 3'
v i:
i tv
U 16
0 K
<i i :
Nfce.*r fin > 10 1 ' lo r 1K> S lo p *
10
k
5s o f
<
10
10
Thi. importance of providing an initially high cocffi- burmshed stopping distances proposed by the Depart
cierr for the brake pads can readily be realized from ment of 1 ransportation The use of coarse sponge iron
the tom'* ing formula through which the effective brak xy particles in semi-metallics have demonstrated signifi ing distance on a level roodwav may be approximated cant improvement in initial (pre-bumished) friction,
d = 1r>.30/
which will be required if semi-metallic materials are to be considered for commercial usage
where r. - braking distance in feel 1 = initial speed, miles per hour
Further, upon investigating the semi-metallic mate 40 rial. it was determined that the sponge iror. will compli
ment the rubber particles therein to attenuate noise or
; = coefficient of friction between friction members squeal caused upon engagement of the brake pad with
such as brake pad and drum
a corresponding member.
Assuming that the coefficient of friction will remain
It is assumed that the voids in the sponge iron parti
substantial!) uniform the period of time required to 45 cles act as acoustical absorbers by breaking up the path
bring a vehicle to a stop will be proportional/) reduced through which sounds may travel.
The over-all transverse structural unit) of the brake
As an example, assume identical vehicles wherein pads mav be varied by the amount of steel fiber 26 used
one has brake pads constructed of a standard semi in the mixture However, due to the disparit) in price
metallic material and the other of a semi-metallic mate 50 between steel fiber and sponge iron (about 6 times). for
rial with sponge iron particles and both are traveling at mass production a volumetric change in steel fiber con
60 miles per hour, the effective braking distance will be tent will usuallv be adjusted by a proportional change
as follows
in the quantity of sponge iron panicles
d =60~*/(30 x 0.32) = 3600/9.6 - 375'
Thus, we have developed a semi-metallic composi 55 tion wherein the structural characteristics are en
d/sponge iron = 60~*/( 30 X0.38) * 3600/11.4 306' hanced by the use of sponge iron particles when used
Thus the vehicle with the brake pads having a semi as a friction pad in a braking system.
metallic material with sponge iron particles therein ex
We claim
choibniftosrma sthootrhteer perfofpecotsievde sbtorapkpiinngg ddiissttaannccee wofhtihche Dwiell 60 bra1k. eAassema if-rmicetitoanlliclinbiansge, smaiadtemriaaltefroiar lucseonisnisatinvgehoicflea
partment of Transportation
mixture of.
The wear resistance of conventional semi-metallics
metallic powder selected from a group consisting of
are equivalent to organic materials between 350* and
iron, copper, zinc and mixtures thereof from 0 to
450F and are superior to organics at temperatures 65 above 450*F However, one of the major obstacles to
30 percent of the total mixture; sponge iron particles from 10 to 40 percent by vol
the accpetance of semi-metallics as a friction material
ume of the total mixture, said particles having a
has been the poorer wear resistance of the semi-
nominal size which can vary from 20 to 80 mesh.
3,835,118
5
6
ceramic powders selected from a group consisting of claim 2, wherein said sponge iron particles, ceramic
sillimanite. mullite. magnesium oxide, barium sul powder, metallic powders, and steel fibers combine to
fate, aluminum oxide, silica, iron oxide and zirco provide said friction lining with a coefficient of friction
nium oxide from 2 to 15 percent by volume of the between 0.34 to 0 45 in a temperature range up to
total mixture;
5 250*F.
rubber particles from 0 to 10 percent by volume of
4. The semi-metallic base materials, as recited in
the total mixture. steel fibers from 0 to 20 percent by volume of the
total mixture. graphite particles from 19 to 39 percent by volume
of the total mixture, said graphite particles absorb ing thermal energy created during engagement of said friction lining with a corresponding member, and
claim 1, wherein said steel fibers constitute between 3 to 16 percent by volume of the total mixture to provide structural unity for the friction lining. 10 5. The semi-metallic base material, as recited in claim 4, wherein said sponge iron particles uniformly distributed throughout the total mixture are unan nealed to provide reduced low temperature wear rates
a phenolic resin binder from 13 to 41 percent by vol ume of the total mixture, said phenolic resin binder being responsive to heat to form a solid matrix for holding the selected metallic powders, sponge iron particles, ceramic powders, rubber particles and steel fibers in a fixed relationship
2. The semi-metallic base material, as recited in claim I, wherein said sponge iron particles and rubber
1' 6. The semi-metallic base material, as recited in claim 5, wherein said sponge iron particles uniformly distributed throughout the total mixture are to provide increased friction in the prebumished slate.
2q 7. The semi-metallic base material, as recited in claim 6, wherein said sponge iron particles uniformly distributed throughout the total mixture are to provide
particles attenuate any noise created during said en less frictional change from prebumished, to burnished,
gagement
to faded state
3. The semi-metallic base material, as recited in ;x
*****
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40 45
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60
65
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July 19, 1960
F ; . ed Ndv 26. 1956
T G A N K EN Y ET AL " R IC 7 IC S M ATERIAL
2,945,291
2 Sheets-Sheet :
9
July 19. 1960
r i l ' d Not. 29, 1966
T G ANKENY ETAL FRICTION MATERIAL
2,945,291
2 Sbt-SbM t 2
9
J S f . f
INVESTOk. fa p s& a c S tfJ v s r y
j t t Lru?st* 3 c
r
attorney
United States Patent Office Patented July 19, 1960
1
2,945,291
FRICTION At. MATERIAL
Thomas G. Ankeny. Birmingham. Mich., and John W. Arnett, Dayton, Ohio, m ig o o n lo General Motors Corporation, Detroit, Mich., a corporation of Delaware
Filed Nov. 28, 1958, Ser. No. 776,973
8 Claims. (Cl. 29-- 182.5)
This invention relates to friction materials and is par
ticularly concerned with ferrous friction members for use
as clutches, brakes and the like
This application is a continuation-in-part of applica
tion S N 5 4 0 4 2 . filed October 17, I55. now abandoned
An object of the invention is to provide a ferrous fric
tion facing consisting essentially of iron, graphite and
molybdenum disulfide
In carrying out the above object, it is a further object
of the invention to form the friction member from a
intered m-'\luic consisting e"ontull> of iron powder,
graphite and molybdenum disulfide wherein the graphite
makes up between one-fifth 'n d one fourth of the weight
of the member
A still firthcr object of the invention is to provide a
ferrous fpcoon member where-n the member consists
essentially of graph:'.,- i.i r e n c between 20'. and 25ri
b' weigh: mobKlcnum doulfide between 2 ^ and 6 ^
bv weight with ton making up substantially .I' the re
mainder Another object o? th. invention
to provide the frr-
roto friction dement a- heretofore disclosed wherein the
element is coextc' .'d v bonded to a strong metal sup
porting memhci tor facilitating mounting of the friction
element
More specific.'lv. it is an object of the invention to
provide a sintered ferrous friction facing consisting essen
tially of 20't graphite.
molvbdenum disulfide with
substantailly ,1! ;)ie icmainJcr being iron wiih or without
small additions of modifying materials wherein said per
centages are expies-cd on a weight basis
Further obie.i- and advantages of the picsent invention
will be apparen' f:om the following description reference
being had to the acsompanying drawings wherein pre
ferred embodiments of the present invention are clearly
shown
In the drawings
Figure 1 is a view ;n perspective of a typical brake
band
Figure 2 is a view in perspective of a clutch disc
Figure ? is a view in perspective of a clinch or brake
disc for use in a clinch or brake ra d .
Figures 4 and 5 are charts showing a comparison be
tween convention. ! and metallic brake linings in de
celeration testy
Modern automotive developments have imposed ex
treme operating conditions on the conventional type of
clutches and ta'akcs The friction surfaces of conventional
clutches and brakes arc usually composed of molded non
metallic material such as asbestos, cotton linters and the
like bonded together with a synthetic resin such as a
phenol-formaldehyde resin, the mixture may also include
friction fortifying material' This mixture of ingredients
is molded into a brake band or disc surface which may be
bonded or riveted to a metal support. While these fric
tion elements and facings are satisfactory under normal
driving conditions, it has been found that repeated stops
from high speeds causes a tremendous overheating and
2
eventual breakdown of the materi ils used in the brakes
In most cases, nonmetallic brake materials are not use
ful at temperatures above 750 F. and such temperatures
are frequently exceeded in repeated high speed stops under
5 extreme conditions Since the trenJ in automotive design is tov ml heavier
and or higher poweied vehicles, it is apparent that the
friction malcr.als ii'cj in the brake and dutch surfaces
must be improved in order to keep up with ihc develop
20 ment of the industry
It has been found that metallic Inetion materials offer
an interesting fic'ld of development Flow ever, most
metallic friction materials while highly satisfactory, for
example, in wet clutch applications are not useful for
ir> brakes since they tend to s.|tieak and grab in the dry
condition Furthermore, due to the abr..sion of the mate
rials in the dry condition, much of the friction facing is
abraded from the friction ' ii r ij .c whu.h. in turn, sclf-
. gruav ales the wear condition I a: :!u ! mo; e. ihc noisi
20 ness of lhese materials has made the.n unsuitable in the
past for passenger vehicles
There arc. however, man. aJv a tra 'tcs in :he use of
metallic inetion materials, some ol tin mote important
being ability to withstand hieh t. tiper.:ti;i. conJuions,
20 abditv to withstand hi..'her eng., un-.- pi. -ares and. in
most cases, longer wearing char.ivtenstus
We have developed a fn.t-on material vvh.,h overcomes
these past disadvantage of me: li.c fr;. 'n materials
when used in the dry stale and winch h..s maintained
30 all of the . Jvantage-. of mela'I-c fa.tig materials We
h.ve found that our friction mu:-.ru1 v l-.c t -. I m con
junction with a di-c or band op e b'ake. will outlast
nonmct.i'.lic fncuon mateti.i1' min;. .me*. and will not
be dvi.-teriouvly affected .u ill. hi. I :. n i p . r e a c h e d
.30 during repeated high speed stop- In t w . - u tests show
that the pres.nt f:jetton m./.t-.d ' I! oj:-ve..r several
vis of conventional nonm.:.illi. tr . i on -i mat .rial under
identical operating condition- Futth.: i-.-e the metallic
friction material doc- not exhibit th. fade-out of frictional
40 quahties normally present in non teial'i. niat.ri.il when
excessive temperatures arc encountered Under actual
road conditions, the present friction mat- n.d operates
smoothly and silently throughout cv.cn led u-e In fact
the facing material operated well undei
, .uprising
46 ten consecutive stops front a maximum -peed of one hundred miles per hour, a eond.uon wh-.h on,hi not he
duplicated with nonmei.illie .tines which ruled com
pletely after three to four of such stop-
Our new friction mateti.i! i- a sinter, J ferron material
80 having vaijy ing degrees ot poro-in and m.iJe from a mix-
tuie consisting iss.nlialU of non po.-iUr er.,phne and
molybdenum disulfide to tta- b.,si.- i.-,i\oae in.n be
added small quanting' ol siilt.ir and , e n n v . materials
such as .aleine'd mulhtc loge'hei wish coprvi and lead
66 foi modifying the action ot ihc In.i.on material The
friction maienal i- pref.-iahiy bon.l.d r> stron-.' metal
support through which it n m be suitablv -.-.uie to the
brake or dutch median,-m m wh,.h it is to be subse
quently used D,,e to th. ,n . .,-n,c .1 .. I.og. quantity of
0 gr.,phite. the nta'eri.d doc- n-u hav. a hrch decree of
flexibility and i- not rc.ul.-iy bend.ible and. ihcrefoie. the
strong metal support such as a steel backing is generally preferred.
Specifically, ibe m Uii 1coni.un- gi. oluic' in quantities
06 of from 2 u \ 25 . b> wcighi together with molybdenam disulfide in qu intitic ot tn-ni 2'. to 6 ' i by
weight with substantially .dl the tent under being iron
The material is m ide by nuving the ingiedients in finely
divided form wherein, foi example, ihc non powder ranges
70 between I5u and 325 mesh I his inixiiue i then
briquetted to the desired sh. pc unJer briquetting pres
sures ranging from 40,0:) lo lull,mu) po..nds per square
3 inch, preferably 1 70.00U pound per square inch The
briquettes art next sintered for about 45 minutca at a tem
perature ranging between 1650* F. and 2050* F. under e e m a lu m condtuoo*. (or example, 11 debydramU, moompiesaly burned natural gee, cracked ammonia 01 hydro-
m. The raeuhing materia] present* a highly desirable
friction material that will withstand high temperature*.
--
u frictional qualities over a wide range of lam-
parKarri a te which it long wearing end quiet
In I " caaet, a* previously stated, it h desirable to
bond tte mqperial to a strong backing member, and tint
is accomplished by placing the briquettes upon supporting
memlTKt of Heel that have preferably been lash-coated
with copper A number of these "sandwich**" art stacked
on top of one another with suitable spacers therebetween
m i the bonding is accomplished with the Hack under pita-
ame. A procedure of this character is fully dacloted in
Wellman Patent 2.178.527 and is well known in the art.
It is preferable to accomplish the sintering and bonding
in a single operation although it is also possible to first
sinter and then bond It this case, the briquettes are
sintered between sheets of graphitic material or metal
having a nonadhenng refractory coating thereover.
Another modification of the process contemplates a
presuuer of the briquetted powder at a temperature in
the order of 1600' F to 1950' F for a period of 30
m 45 minutes This partially sinters the briquette end
makes it easier to handle. The preaintered briquette is
than assembled with the backing member and is bonded
in the usual nunne: at about 1750' F. for 30 minutes.
Them conditions may vary, for example, the bonding tem
perature may be between P 5 0 ` F and 2100* F while Lie
ilma may be between 20 minutes and 45 minutes varying
inversely as the temperature During the bonding step,
the porous pan is completely sintered. These variations
in operating conditions may vary widely and are not
critical so long as a good sinter and bond is obtained
A preferred embodiment of the invention comprise*
the following formulation.
Example 1
22% Acheson 38 graphite 4% molybdenum disulfide, 100 mesh
74% 250 mesh reduced oxide iron powder
A mixture of this material is bnquetted at 80,000 pounds per square inch and is sintered on a steel support ing member of the desired configuration which has a flash copper plate thereon for a penod of about 45 minute* at 2050* F under pressure whereupon the material forms a strong sintered ltyer coextensively bonded to the sup porting membe: The friction and wear characteristics of this material may be modified by small additions of sulfur and ceramic materials such a* mullite, days, etc. In this case, the sulfur is preferably combined with the iron or may be an impurity therein and may range up
to 1% by weight of the total mix This sddition ap
pears to improve wear The ceramic material, such as muiliu, may range up to 75% by weight of the total
mix This addition act* as a friction modifying material and generally raise* the coefficient of friction slightly. In any case, these additions are optional and should not eacete a total of 2% by weight of the element. It is understood that, in many case*, the effects of sulfur and ceramic* can be attained without adding any material to the mix. In these cates, reduced oxide ires powder may be chosen which contains sulfur and insoluble ceramic material within the ranges noted as impurities thereui
Similarly small tdditions of lead and'or copper may
be added to modify friction characteristics as is welt known in the art For example, copper up to 5% by wmghi and or lead up to 5% by weight may be added Them modifications prove useful under certain conditions. Our icvsuijoc, however, is directed (pacifically to the
basic formulation of a high percentage of graphite (20%
4 to 25% ) with molybdenum disulfide in controlled amounts
wherein the remainder of the element consists essentially of iron with or without the modifying ingredients set forth berem. 6 Some specific examples of other mixes which are satis factory are as follows wherein all percentage* are ex pressed by weight
Example 2
10 20% Acheson graphite 3% 150 mesh copper powder 5% 100 mesh lead powder 5% 100 mesh molybdenum disulfide .75% calcined mullite
15 66 25% 100 mesh reduced iron oxide powder containing combined sulfur therein equal to I % of the iron
This mixture of powdered materials a briquetted at 70,000 pounds per square inch and may be sintered on a steel supporting member which has been flash-copper 20 plated for a period of forty-five minutes at a temperature of 2050* F. in a nonouJjzing atmosphere under pressure The powdered matenal forms a strong, sintered layer coextensively bonded to the supporting layer.
Example 3
22% Acheson graphite 4% 100 mesh molybdenum disulfide 74% 250 mesh reduced iron oxide powder containing in
combined form sulfur together with insoluble ceramic 30 matenal in quantities equal to about 1% and .75% re
spectively of the total mix
The mixture of these powdered matenals may be prepared and sintered as in Example 2
35
Example 4
20% Acheson graphite 2 5% 200 mesh copper powder 4.5% 100 mesh lead powder 4% 100 mesh molybdenum disulfide
40 .75% sulfur .65% calcined mullite Remainder 100 mesh reduced iron oxide powder
The same procedure for forming the materia! and sintering 4g the " as in Example 2 may be followed
Example 3
21% Acheson graphite 4% 100 mesh lead powder 50 5% 100 mesh molybdenum disulfide Remainder 250 mesh reduced iron oxide powder con
taining cQmbined sulfur equal to about 1% of the total
mix.
A mixture of this material may be formed and sintered
68 as in Example 2. In the drawing, several forms of the friction member
gaarrihtirl in this disclosure are shown For example
in Figure 1. a conventional type of brake band 20 it shown which has a ferrous friction surface 22 and a metal 80 1opporting back 24. This band may be made as herein described by placing preformed friction layers 22 upon the preformed supporting members 24 and stacking the sandwiches under pressure in a suitable furnace for steering. Figure 2 shows one type of clutch plate at 26 ns which includes a tplined hub 26, a steel disc 96 and friction surfaces 92 bonded thereto The friction surface 92 may he provided at both sides of the dutch (as
shoum) if desired _ Figure 3 shows still another form of clutch or brake
* at 94 In this form, the steel disc 94 supports a friction smfaoe 96 at one or both sides thereof and the disc may
be tplined as at 46 on the outer periphery or as at 42 at the inner periphery thereof This type of plate is gen
rally uaed in a pack wherein alternate plate* are sptined at the inner and outer periphery respectively These
5
pinte* may be used in dite brake*, for example, ai dis
6 While the forms of embodiment of the present in
cJonnd in Lambert Patent 2,405,219 which *bow* one vention as herein disclosed constitute preferred forms,
type of automotive dite bra' e. or multiple plate clutche* it is to be understood that other forms might be adopted.
at ditcloMd in Almen and Carnegie application S.N.
What is claimed it as follows'
392,596, now Palest 2,733.597. u>i|Tit^ to the assignee r> I A new article of manufacture, comprising, a fnc
of the preaent invention
tion facing consisting essentially of a compacted and
The three curvet in Figure 4 thou contecutive ttop* sintered body formed from a powdered mixture of 20ft
at one minute interval! at 50. 60 and 70 miles per hour to 25ft graphite. 2ft to 6 ft molybdenum disulfide and
with a commercial molded nonmetallic lining wherein the balance iron.
tbe rate of deceleration it maintained at fifteen feet per )0 2. A new article of manufacture, comprising, a fric
second per second. The "fade" characteristics of the tion facing consisting essentially of a compacted and
lining are indicated by the increasing hydraulic pressures aintered body formed from a powdered mixture of 22ft
required to maintain constant deceleration Thus, at graphite. 4ft molybdenum disulfide and tbe balance
50 mile* per hour, the pressure required to maintain this iron
deceleration varied from 490 pounds per square inch for ).' 3. The article as claimed in claim 1 wherein the friction
the first ttop to 855 pounds per square inch for the tenth facing is coextensively bonded to a metal backing mem
stop At 60 miles per hour, these figures were 560 ber
'
pounds per square inch for tbe first stop and 1145 pounds
4. The article as claimed in claim 2 wherein the friction
per square inch for the tenth At 70 miles per hour, facing is coextensively bonded to a metal backing mem-
the lining failed on the sixth stop
tin ber.
By way of comparison. Figure 5 shows the same curves
5. A new article of manufacture, comprising, a fric
for our improved metallic lining as described herein and tion facing consisting essentially of a compacted and
made in accordance with Example I It will be seen sintered body formed from a powdered mixture of 20ft
that tbe pressures required for the first stop are con to 25ft graphite. 2ft to 6ft molybdenum disulfide, and
sistently lower and that the pressures required for subse 2.' the balance iron wherein the iron includes as impurities
quent stops are substantially constant No failures were insoluble ceramic maierial up to ,75ft and sulfur up to
noted All tests were made on identical equipment and 1ft by weight of the powdered mixture
with identical braking elements with the exception of the
6. The article claimed in claim 5 including lead and
brake material per se In this instance, the commercial copper in quantities less than 5ft by weight each
lining tested was of a 40 8 square inch area while the 3u 7. A new article of manufacture, comprising, a frK-
ferrous lining was only 36 square inches in area
tion facing consisting of a sintered compact of graphite
The present invention, therefore, is directed basically 20ft to 25ft , molybdenum disulfide 2ft to 6ft . sulfur
to a porous ferrous friction element including a relatively up to I f t, mullite up to 7 5 ft. copper up to J f t . lead
high percentage of graphite together with significant quan- up to 5ft and the balance iron, said quantities being ex-
uues of molybdenum disulfide wherein said element may 3-"> pressed by weight
or may not contain small addi'ions of wear and friction
6 A new article of manufacture, comprising, a fric
modifying ingredients The friction element may also tion facing consisting of a sintered compact of graph,:e
include an imprgnant within the pores thereof if it is 2 0 ft, copper 3 ft, lead 5 ft, molybdenum disulfide 5 ft,
desired for sealing the pores against the ingress of the calcined mullue ,75ft, sulfur 6 'f t and the balance
atmosphere where the material is to be stored over ap 4>J iron, said quantities being expressed by weight
preciabie periods of time. This material is preferably a beat resistant resin which can be impregnated into the
References Cited in the file of this patent
material and which does not markedly influence the ufrnicdteiorsntaolodchathraactteurinsptircesgnoafntthse mmaaytenbael useTdhewreitfhooreu,t itdeis 45 parting from the concept of the invention
Throughout this specification, the term ceramic material it used together with mullue as one embodiment there of. It is to be understood that this example is illustrative 50 only and that clays, silica magnesium oxide, mica or
2.239.134 2.367,406 2.408.430 2,731.360 2.784,105 2,848,795
UNITED STATES PATENTS
W ellm an................................Apr Kott _________________ Jan Lowey et al ___________ Oct Love .............. .................. Jan Stedman et al. ________ Mar L o w ey _________________ Aug
22. 1941 16, 1945 I, 1946 17, 1956 5. 1956 26 1956
any of the other refractory ceramic materials may be
used with varying useful results.
July 19, 1960
Pl 1*4 Nor. 98. 1888
W. A. LUTHER. JR., ET AL
FRICTION MATERIAL.
2 ,9 4 5 ,2 9 2
2 Shft8- S h M t 1
*
ru tir Attorruy
m
mm m
6utiM *ex p uoi oy M
P
V iOi||iM
SVOli&ANI
Coefficient of Friction
Time In Minutes
Fig. 3
^ )im H tu i|S 8
Temp, of Broke Drum eeet > *n p*tt4
United States Patent Office 2,945,292 P n tn n t.d Ju ly 1. IM O
1
metallic lubricant melts and exude* to (be surface of
the element during use to stabilize the frictiooal char
IM M W
acteristics of the dement. Further objects and advantage* of the praaent inven
FIKTION MATDtUL
e tion will be apparent from the following dcacription, ref
V O a i A. U A , Jr-, m i Wotond F. Koehring, Di j - e r " " * being had to the accompanying drawings wherein
M , Ohi*, a i p M i I Cenemi Motori Corporation,
ritolti M Uk, I corporation t i Dolnwnre
preferred embodiments of the present invention are d ear ly shown.
In the drawings:
F M Nor. U , 195, 1er. No. T 7 7 I
10 Figure 1 is a perspective view of a typical brake band
H C U M . (C t 19--t l l S )
including the ferrous friction element thereon. Figure 2 is a view in perspective of a conventional
clutch disc utilizing the ferrous friction facing thereon.
Figure 3 is a chart of a family of curves for ferrous T ka invention relates to friction materials tod n per- 15 friction materials including different metal lubricants aad
--
concerned with ferrous friction member* for showing coefficient of friction plotted against time and
me m d u tch , brakes tnd the like
temperature.
Ttos ippbceiioe u t continutuon-in-ptn of applica
Figure 4 is a perspective view similar to Figure 1
t e &N. 6*4.954. tied September 19. 19S7. bow aban showing another means of attaching the friction lining
doned
20 to the shoe
An object of the invention * to provide a ferrous fric
Figure 5 is a view of one segment of the friction ma
tion facing conuttmg essentially of iron, graphite and a terial and its support
metallic lubr. -nt consisting of bismuth or alloys of bis-
In modern automotive development, extreme operat
t h with omuls that are substantially insoluble in iron
ing conditions are encountered at friction surfaces used
In carrying out the above object, it is a further ob 25 for b.akes, clutches and the like. These extreme condi
ject t i the nrvnrtoion to form the fricuon member from tions make conventional nonmeullic clutch facings and
a sintered mixture of iron powder with graphite which brake linings costly to use since these materials must op
member also contains a lubricant metal in the form of erate below certain limiting temperatures if tbeir eft
lboiysms uatnhd, bwishmeruetihn-le<a"daphalnleoysm, akanesd ubpismausthu-bcsatdanmtiiaulmpoarl 30 cainedncoythiesr todebveicemsationtaliimneitd thwehitcehmpreeqrautiureresscooIltinigs, mtheedriea
tion at the member
fore. desirable to provide facing materials for clinches,
A still further object of the invention is to provide a brakes and tbe like which can withstand considerably
ferrous friction member which consists essentially of higher temperatures than the usual nonmeullic materials
agralpuhbirtiecartianngginmgetbael twsuecehn 2as 0bisamnudth30'o~r< bbiysmwuethighatllaonyds 35 aacntderwistbicusb tmhraoiungtahionustubthsetairntioaplleyractionngsttaenmt pferircattiuornealracnhgaer
wherein the alloy has a melting point no: greater than the
Metallic facing material* made from tmterad metals
melung point of bismuth and wherein the oihc: metals such a> sintered bronze sintered iron and the like have
in (he alloy are substantially insoluble in iron
been used sparing,y in the past and while the wear char-
In carrying out the above object it is a further ob 40 dcteusncs od these elements are considerably belter than ject where bismuth or a bismuth-lead alloy is used as a nonmetallic elements, it has been found difficult to con
lubricating metal, to include small quant.tics of an add.
trol the coefficients of friction thereof through the wide
tiona! metal substantially nonalloy able with the lutncat
range of temperatures that are encountered in normal
mg metal, one of such meuls being coppe:
operation whereby the build-up in friction during suc
It is a further object in some cases to utilize small cessive slop* makes them erratic in their operation and. quantities o ' sulfur not over If* in combination with 45 therefore, generally undesirable
the iron either as an added ingredient or as an impurity
Recently, improved friction facings have been pro
m Am iron used attd or a ceramic matenal such as mill posed of the meullic type wherein substantial quantities
ifte in quantities of less than I?
of gidphite have been incorporated therein to smooth
Another object of the invention is to provide the fer
out the coefficient of friction to some extent over a wide
tout fnctioB element as heretofore disclosed with a strong 60 range of temperature These facings provide consider
metal upportmg member for facilitating the mounting ably better operating characteristics and are frequently
of the friction element, said member taking the form entirely satisfactory under normal operating conditions
f a sintered farrows matenal of different composnion However, when heavy duty service is encountered such
aenodrttgevteaaisveerfystrthenegrethtothan the friction element and bonded 66 asps.eefdosr, etxhaemseplfencwuiotho umxaictearbias.lsbudsosensoot r asltwoapyssfrmomainhtaiginh
More specifically. it is an object of the invention to their stability within the range desired
providt a sintered ferrous friction element consisting
The present invention is directed to a friction matenal
cjoentiaHy of graphite 30 to 45 parts by weight, copper which has a stabilized coefficient of friction and, there
t0hetroeof156 ptaortsIS bpyarwtseibgyht,webiigshmt uathnd oirroinnso1l0u0blpeanasllobyys 60 cfoluretc, hisorexbtrraekmeelwyheurseeinfulstainbilaizneyd afpripcltiicoantiochnarsaucctehrisattic*a
weight
are desired over a wide range of temperatures, whether
in carrying out the above object, it is a further object or not the application falls in the category of a heavy
to optionally indode sulfur and mullite in rhe above duty application We believe that this stabilization of
forAmnuolathtieorn.object of the invention is to provide a fer 66 ofrficatiomn ectahlalircacltuerbirsitcicasnt iswahcicchomisplitsrahnesditothryrouinghchthareacuteser
rous friction member containing substantial quantities of at the surface of the element, that is to say, tbe lubri
graphite together whh a lubricating metal which is sub cating metal is held in Ihe solid state within the pores of
stantially insoluble in the metals making up fhe ferrous the friction element at temperatures below its melting
friction member, said lubricating metal having a melting 70 point and. when these temperatures are exceeded, this point within the range of temperatures encountered Jur- metal, due to its insolubility with the other components
feig subeeqnent use of the friction element whereby the of the element and doe to its expnnrion, wilt exude onto
the surface Si the element end provide a fluid lubricant which stabilizes the frictional characterisucs of the tie meat while maintaining the detired frictional characteiittid thereof at provided by other component! of the ele
imerface between the element and the brake drum or
other nibbing surface, etc. Some examples of suitable mixtures are at follows,
all proportions being in pant by weight:
ment It is understood that, in the description to follow, the
ferrow* friction element may be used in connection With brake bands or clutch discs or brake discs as the caae may be For example, in Figure 1. a conventional brake
band is shown at 2 t which includes a plurality of pads of friction materia) 22 attached thereto In Figure 2. a dutch disc or brake disc is shown at 39 which includes a steel disc 32 having t friction layer 34 attached thereto
_______________ --
- - - -
gpoogt or Kidured Oxi-lt- Iron (with or ifftout r*" n-
................... :::::
Mullite. .....................................
E i 1 e ,:
l-rt
46 A
.7
Kk 3 i:.
--
100 |Or
10 46
6
9
4
.76
E i 6 E i ft
--
--
too
too
u
60
10
16
11
6
Specifically, we have found that, in a ferrous friction element wherein tbe mayor component is iron, large quan
15 These
ingredients in finely
divided
form,
for example,
title of graphite are highly desirable to supply the de
capable of passing through a 100 mesh screen arc inti mately mixed and are briquetted into the detired shape
sired frictional characteristics to the element In this connection, graphite ranging from 209c to 309c by weight
under briquetting pressures ranging from 60,000 to
of the element is incorporated in tbe element together 20 8u0n,d0e0r0 npoonuonxdidsizpinegr csoqnudairteioninschforanfdromare30theton 4s0intmeriend
with a lubricating metal such as bismuth, or alloys of bismuth with metals which are insoluble in iton and
utes at temperatuers ranging from 1800* F. to 2000* F.
wherein the melting point of the alloy docs not exceed In each case, a sititered friction element is formed which
the melting point of bismuth, for example, lead-bismuth
will exude bismuth, bismuth-lead, e tc , as the case may
alloys and cadmium-bismuth alloys The low melting be, at the surface thereof
metal may be bismuth alone which melts at about 520 F 26 More specific examples comprise
or it may be an alloy of bismuth and lead which melts
Example 7
at or below the melting point of bismuth In this con nection. an alloy of 88rr lead and 129V bismuth h j'
67 parts --250 mesb sponge iron powder (combined sul fur up to 1% by weight)
substantially the same melting point of bismuth where..s 30 20 pans artificial graphite (density 1.85 grams per cc.,
the eutectic alloy of lead and bismuth which contains
--325 mesh)
55'-'i bismuth and 4 4 'i lr-. 1 melt, at about 25.'' F Thus, bismutb-lead alloys where the minimum bismuth
8 parts 150 mesh copper powder 5 parts 100 mesh bismuth powder
percentage is 12f"< may be used ,'s a substitute for pure
bismuth according to use Mnce un\ alios having this These ingredients are intimately mixed and are briquetted
composiuon will meli at or below the melting poim ot 33 at 60 00O pounds per square inch and are then sintered
bismuth In this connection the service requirements of for 40 minutes in a nonoxidrzing atmosphere at 1800* F
the brake should be taken into consideration Heavy The resulting friction facing has a fiber strength in the
duty applications are best seived by the higher melfng order of 3720 pounds per square inch
point alloys whereas light duty applications may make use of the lower melting pom; alloys In .'ll vases it
Example S
is desirable lhai the melting point of the lubricating 67 parts --250 mesh sponge iron powder (with 1% com
metal is in the range of temperature attained durutg nor
bined sulfur)
mal use of the friction element uod ihvse Cuiid.i.uii-, 15 parts powdered artificial graphite (density 1.85 grams
therefore govern to a large degree the choice of material
per cc., --325 mesh)
Similarly, alloys of bismuth and other metals mu> he 45 15 parts coarse flake natural graphite (density about 2 1
used wherein the other metal in the alloy is substan
grams per cc., 2o to 30 mesh)
tially insoluble in iron for example, cadmium is in 5 parts 150 mesh copper powder
soluble in iron and alloys with b.smuth to form low melt 10 parts 100 mesh bismuth-lead (50-50 mixture) with
ing point alloys In thi- connevtion. an alloy of 2597 50 or without \ i pan 60 mesh synthetic mullite
bismuth and ~5''f cadmium has substantially the Same melting point of pure bismuth whereas the eutectic alloy
These ingredients are intimately mixed and briquetted
of 60r< bismuth and 4n'7 cadmium melts at about at 70,000 pounds per square inch and sintered for about
292' F Stated broadly therefore, alloys of bismuth with 40 minutes in a nonoxidizing atmosphere at a tempera
metals insoluble in iron wherein the alloy has a melting ture of about 1800 F. The resulting friction element
point not in excess of tbe melting point of b.smuth are 65 has a fiber strength in the order of 3045 pounds per
useful as the lubricating metal
square inch.
Thus, it will be seen lha; we hove chosen a lubi b at
It is understood that the lubricating metal such as
ing metal which is insoluble in the iron and which melts bismuth-lead alloy may be introduced by impregnation
within a range of temperature generally reached bv the if desired, although tbe usual technique as described here
friction element during use Otiicr msoulble metals could 60 tofore are preferred Furthermore, due to tbe sintering
possibly be used but, in these cases, the melting point is step, it is usually not necessary to pre-alloy the bismuth
sufficiently high that the liquidus state of the metal is
with any other metal to be used therewith since alloying w'ill occur in situ during tbe sintering.
not reached upon operation of the friction element
All of the above friction elements made by any of
whereby erratic results occur due to the fact that the 65 tbe aforementioned examples are preferably bonded to a
to-called lubricating metal may be liquid in one case more dense and stronger material during the sintering
and olid in anothei
to enable them to be riveted or spot-welded to 4 steel
Therefore, in each instance, the low melting point shoe or plate. This particular step forms no part Of the
metal, which acts as a lubricating metal, melts at tem present invention and is fully disclosed in copending
peratures within the normal operating temperature range Smiley application, S.N $96,266. filed July 6, 2956, as
of the fnction element and. in each instance, where com signed to the assignee of the present invention. Specifi
binations of these low melting point metals are used, cally, a backing material that is particularly useful with
the eutectic mixtures thereof meli at relatively lower tem the present formulations, since it has similar physical
peratures to quickly stabilize the frictional character change characteristics during briquetting and sintering,
istics of the element by presenting a liquid phase at the comprises a mixture of about 95 parts 100 mesb sponge
5 6 iron powder. 5 p u tt low drasity powdered graphite earn, h srifl be aotad (ha* fee co aM eot of frfeftea a t
(1.61 ( ru m per cc.. --325 mesh), ta d three pen* of the Ksriag is euetaMc until the wmperatuie a t epervlioa as
molybdenum rtiad phirl* powder (256 m e * ). Tbeee in- cend* the melting point of the habricaM Metal at wMah
grWwnu u t iatiauuly a l u d and the mixture ia
(low A t Beeflfcimt a t friction levels eff sad heeemei
ia e die ia desired quantity. Any a t the aforemeatioaed 8 stehikaed
friction onerrial a i m it then filled inso the die aad the two layer* are simultaneously briquetted at preeauree of frum 60,000 to 60,000 pounds per aqeart och. The briquette it tiaiered under condition*, time* and tem perature* noted in any of the examples A extensively
Thenegbam * ia spacaficaiioa, the teem emamic merial is uaed lfsgwhw with aauHitt m a m aaabedims thereof, ta is to be nademtood that this o i e g l i ia il lustrative ooly and that clays, silica magnesium oxide, Il mica or any of the other refractory ceramic materials
bonded material is formed havinf a strong backing layer may be used with varying useful results.
and a friction facing of the desired characteristics As mcetiooed before, the application S N $96,266 gives a detailed disclosure of the method of making these com
While the embodiments of the present invention at herein disclosed constitute preferred forms, it it to be understood that other forms might be adopted.
posite friction elements and the present invention is di ls What it claimed is as follows:
rected solely to the frictioo layer and its characteristics
I. A friction material for use as a friction facing ele
In place of the composite material described, the fric
ment. consisting essentially of: a sintered ferrous base
lion layer may be supported by and bonded to a retaining having dispersed therethrough graphite in quantities of
device or member made of stamped or cast metal Such from 20% to 30% by weight, together with at least one a retainer is shown at 40 in Figures 4 and $ The re 20 metal taken from the class consisting of: bismuth, bis
tainer 46 is preferably made of stamped steel and is muth-lead and bismuth-cadmium alloys wherein the
made in the form of a shallow cup or tray which carries melting point of the alloys does not exceed the melting
a friction material layer 41 therein The retainer 46 point of bismuth, said last-mentioned metal being pres
may include fastening means 42 welded or otherwise at ent in quantities of from 3% to 10% by weight tached thereto as shown in the right side of Figure S or 25 2 A friction material for use as a friction facing ele
the ret .er may be riveted by means of rivets 43 or di ment. consisting essentially of a sintered feirous bate
rectly welded to the band 26 In the case of rivets 43 having dispersed therethrough graphite in quantities of
being used, the friction layer 41 is counterbored so that from 20% to 30% by weight, together with bismuth in
the heads of the rivets bear against the container In quantities of from 3% to 10% by weight a)) cases, the fnciion layer 41 is sintered and bonded in 30 3 A friction material for use as a friction facing ele
situ to the container 40 by briquetting the powdered ma ment. consisting essentially of. a sintered ferrous base
terial directly in the retainer Prior to the briquetting having dispersed therethrough graphite in quantities of
operation, the retainer surface is preferaby flash copper from 20% to 30% by weight together with a bismuth-
plated as well known in the art to facilitate the bond
lead allov having a melting point noi exceeding the me't-
It will be observed that, when the graphite content of 35 mg point of bismuth in quantities of from 3% io 10%
the friction material exceeds 25%. different manu/aciur- by weight
ing technique- are required in order to form an elerr.eM
J A fnciion materia) for use as a friction facing ele
having sufficient strength for the intended purpose and. ment consisting essentially of a sintered ferrous base
to this end. different types of graphite are used to over having dispersed therethrough graph'te in quantities o ' come problems which arise when using either type of 40 from 20% to 30% by weight, together with a metal taken
graphite alone These manufacturing technique; form no from the class of bismuth and bismuth alloys with metals
pan of this insertion and are fully disclosed in copend insoluble in iron wherein said alloys have a melting point
ing applicauon SN 684.853 (Docket No M P-27l2i. not in excess of the melting point of bismuth in quanti
filed September 19, 1957, wherein the full disclosure of ties of from 3%- to 10% by weight
the reasons for mixing the different types of graphite 45 5 A sintered fnciion material for use ns a frui or are set forth In this connection, so far as the finished facing element, consisting essentially of iron in.lud ng
friction elemem is concerned, there is no substantial dif sulfur up to 1% hy weight thereof. 100 parts graphite 30
ference in the operational characteristics of the different to 45 parts, copper up to 15 pans, and a met-! mien
types of graphite but the strength of the finished cle from the class consisting of bismuth and bismuth alloy
ment it markedly enhanced by mixing two types of 00 with metals insoluble in iron wherein said alloys have
graphite
melting points not in excess of the melting point of bu
While the friction elements utilizing graphite in the order of 20*2 have good frictional characteristics and
muth. 6 to 10 parts, said proportions being expressed as pans by weight.
under normal operating conditions function well, there
6 A sintered friction material for use as a fnciion
it tome tendency toward noisy operation under certain U facing element, consisting essentially of: iron, including
specific conditions As the graphite content is increased, sulfur up to 1% by weight thereof. ICO pan., graph.ic
ibis noise condition decreases to a point where the ele 30 to 45 parts, copper up to 15 pant, mulliic up to i 'i
ment is comparable with conventional nonmcullic ele by weight, and a meiul. taken from tbe clas. consisting
ment. at 25% of giaphitc and above In other words, o f bismuili and Ifi.iu ih alloys with metal nsohible m
at the graphite increases, the tendency toward noise de 641 iron wherein said alloys have melting points not in ex
crease* under all conditions
cess of the melting point of bismuth, 6 to 10 pans, said
The new friction facings described herein function proportions being expressed as pans by weight
well srith conventional mating surfaces such at Meet or
7 A sintered friction material for use as a friction
cast iron which is normally used as clutch disc aad brake facing element, consisting essentially of: iron 100 parts,
drum material. It will also function in combination with 65 graphite 30 to 45 pans, copper up to 15 parts, and bis
other metals providing the lubricant metal doe* not alloy therewith at operating temperatures. For this reason, the
muth 6 to 10 pans, said proportions being expressed as pans by weight.
metal of the mating surfaces should be chosen from met als and alloys that do not form imermetallic compounds
8. A sintered friction material for use as friction facing element, consisting essentially of iron 100 parts,
with the low melting point metals such as lead, bismuth 70 graphite 30 to 45 parts, copper up to 15 parts, together
or cadmium used in the friction material.
with sulfur and mullite in quantities not in excess of 2% .
The curves shown in Figure 3 are for two different and bismuth 6 to 10 pans, said proportions being ex
frictioo linings Curve *1 is for the material diacloaed pressed as parts by weight
in Example I Curve * 2 is the material using 3%
9. A sintered friction material for use as a friction fac
bismuth alloy instead a t the bismuth-lead alloy, la aacfc 76 ia l element, consisting essentially of: iron 100 pans,
7
graphite 30 to 45 part*, copper up to 15 part*, and a bis
8 meat being coextensively attached at ooe surface thereof
muth-lead alloy 6 to 10 parts, said proportions being ex
to a strong metal supponing member.
preaied a* pans by weight. 10. A heavy duty brake comprising a friction elemem.
References Cited in the file of this patent
consisting essentially of iron 67 parts, graphite 20-30 6
UNITED STATES PATENTS
pans, a bismuth-lead alloy wherein the bismuth and lead
2.072,070 F ish er........ .......................... Feb 23. 1937
are in equal proportion* 5-10 parts, copper 8 parts, all
2,416,830 Heuberger ....................... - Msr. 4. 1947
proportions being expressed in pert* by weight, said ele-
2,863.211 Wellman ............................. Dec 9. 1958
May 18, 1965
e w . reinsch et al BBAKE DRUM AND LINING Filed Aug. 16, 1962
3,184,001
500 X
F i g . /.
500 X
F ig . 2.
vvEvroRS
to r / WReinsch Gene P Baynes
/
he.r Attorney
United States Patent Office
3 , 184,001
Patented May 18, 1965
1
2
We have found that cold pedal conditions may be
greatly lessened by utilizing a ipecific combination of
3,184,001
elements in the bnking lyslem. Thu, when using a
BRAKE DRUM AND LINING Earl W. Reinsrfc, Dayton, and G ent P. Bayses, Kettering,
ferrous metal brake lining such as is disclosed, for ex
Ohio, assignors to General Motors Corporation, De 5 ample, in Patent 2,945,291. we have found that the colJ
troit, Mich., a corporation of Delaware
pedal effects are greatly lessened if a brake drum surface
Filed Ana. 16. 1962, Ser. No. 217,426
formed from steel substantially free from ferrite is used
5 Claims. (CL 188--71)
in combina'ion therewith. Most automotive vehicles
made today utilize gray cast iron brake drums. The
This in-:ntion relates to a loiquc transmitting and/or 10 combination of the metallic lining with the aforementioned
energy absorbing device and is specifically directed to
brakes, clutches and the like. More particularly, the invention is directed to the
combination, of a sintered ferrous brake lining or facing ueJ in conjunction with a brake member including a braking surface formed from steel substantially free from
ferrite. An object of the mention is to produce a combination
ol elements for use ir. u to que tiansmiti.r.g and or an energy absorbing d :v k e t.r.d particularly a btake wherein
the uniformity of oper.iti.r, is improved In carrying out the above object i! is a fu'lher object
steel drum reduces the cold pedal effect in the order ci 25% whereby much better and more uniform operation
is obtained from the braking system. A typical cold pedal test procedure is as follows: the
15 linings an j drums are conditioned by making ten stops at '/: mile intervals each from 40 miles per hour at a decel eration rate of 10 ft./see.2. The vehicle is then parked for a minimum of two hours The cold pedal is then evaluated by making ten stops at : r mile in.ervals frem
Ju 40 mi f per hour at a d-;cJe;.ii< n rate of In ft / isc : ~ wherein the initial and fuu.l line presrurcs required to
mair.ta.n the spe. fie d s n i:r..t,or- is K .o-Jcd i l i r o
ol the invention to reduce cold p.dal cllc.'. normally picsent m automotive braking -vstei >s
r.irthe; objects and ..d \.image's of the p;csen; inven tion will be apparent from the to .'owing dceruption, inference being h id to tK c-omp.im :r.g Jrawir.es vh c:.in pteferred embodiments of the present invention are clc.rlv shown
In the d. ,,vi .tips M i l 1 -. ., phot, ! ... ,.ph o: " scetit n of .
cash slop Using brake iir.lngs a` disclosed in the aio 'c rrcr' '
patent with a standard cn,t ir.-r, drum cor.J.tioui! r. tr.tenth stop of the schedule rcqu-Tcd 270 p s : to p ',\l...e the desired deceleration After tli. car v p..rk.-J tor the two hour rest period frnm .. fervv,.rd 'top, the first che.l step after the cooling off pe:.od required an int i. line r-.-s uis <' 320 p.s.i.. v-hi.h in be termed ir. co'd f.-'i . :,! -.-It ..1 vsties- li ths car v- . - ; i . .' 1 : - -o '
S.\I 11)10 sicei drum show.! : the f s r '.. the structure.
m;t oil p<::>,! from a rcvcr,e stop, ths *: * -h e:' >p i.-
a"J I 1C 2 is a photo ir.'.roe .it h o' . ..to* se.t.i n of a
qutrcst jnTlal line pressure of : S ' p i le ts m r. termed eoid reverse effect;'.ne>-
SAl toys steel dtiim hew .. t1. abs.-.;. of f c u l c in the ... If the stir i- parked w tli . Ik" ...i slop bifote the
U'lCIOstrUetUlC. R etert trends in automotive ce-igr. and improved ro.i 1
Ci n.lii.ons h. v; made ro-.-;b;. higher speed tr.iv.i in
cool me pcrioJ .aid a cont'odcJ reverse slop is made
befo re the first che.k s op. the f" st cb-c.fc - n p requ:re- r.n initi:il line pre sure of 3S` p s > T hu i: also Call 1 the
automotive vehicles. These I r e n 1- have requited impiovemcnt in brake Je-v:;:n end e instruction so t l inc
cold riv erse eflccii'.eness It will be note., that the 1 ' : rie ssi.-e r.ricasc K ef.-.t
vehicles may be stopp-.J 'itr.tr a s. distance even item I1,, h giict spec.!' In o der it' it. ike this condition pos soke, heave duly braU n ne i,. q c i .d - h,.ve K . n devu-
a spcsifie deceleration to stop. :. the sc:;,, to effect .. 'n
if tn e immediate previous siop w. - a tcve-v; step w h .th .r ths Ieverse stop was before r : niter lln rriffin? i ff perio i
e'ped vvl.i.h arc melalii. ..n r..,..::e . nd which w.l1 v>.ll, st.ir.J the high terr.penitur . eonditums wti.ch prev.iu in the brake duiing a stop or stops from h-ch speed' These
T!hus the difference between w . -i i-..ks c f l t . i 'v c r .' .
70 p.s.i. and cold reverse effc. ,-ne>s at
f .s l. !
] 15 p s i. This iliilerensC 1 ! 1e d . 1- CtC.l by the J r`v . '
temperature conditions ate si.ilieient to. in many in-tan. .
z r .1 is known as harden. 1 p . d . ! 1' o^cur :n n.arn .1
c.-ii'e eh.mine of non n u ' .lie type linings incluJ.re i i
ilr>\.ne when .. d iver b.i.k- out cf .. pjrking spare .r.,
g;;nie type material. T h s new b rale lining mateiiul
then is r . q u i t " , to make a forw tt.1 Mop T h : change m
wln.h is spcc.fically a sin.cr.J ferrous material ireluJrr.' graphite, is disclosed in some det ii! in U S. 1'.items 2 .945.291 and 2 .945.929. among others which arc as signed to the assignee oi this upp!i'e.,tion. These mctalhe
br.ii..e-outpu: i- ne-ted reg..:Jie.-- iff` the c..r p.s J.
Th. s..:ns scheduled te-i- wev mads- us-ng drum, formed fiom SM: ii'S'i steel v,,llt ,,11 other conJ i
identical. In this instance th: warm, effectiveness dropp-1
friction materials have the ability to provide reasonably
to 2)5 p.s.i.. the cold forward effectiveness to 230 p 'a.
constant coefficient!, of frietion oscr a wide range of 'r,'` and the cold reverse effectiveness to 25u p.s i. Thus, the
temperatures and specifically are capable of maintaining
steel d u m narrowed the difference between the wati :
the reasonably high coefficient of friction at high tempera stop and the cold reverse slop to 35 p.s.i. over the 115
tures whereby the vehicle may Ire brought to a stop with p.s.i. required when using a gray cast iron drum.
out excessive pedal pressure and wherein the fiiction ma
In addition to the improved brake characteristic':, st.'.-i
terial remains unharmed due to the rise in temperaiuie *>0 has greatly improved tensile st'ength o 'e r tbs used gray
These same materials, however, do not provide the
cast iron, as is wcK known. Further, when iubstarlu.ily
ultimate in cold pedal operation under normal conditions.
fret from ferrite, the steel has reduced scoring tendcnci.'
O l d pedal may best be defined as a reduction in effective This is a very important consideration since fie. fend,
ness of the brakes aflci a period of inactivity, that is.
such as is formed in SAT 1010 steel p.odue.- marked
when the automotive vehicle has been standing idle for e C> scoring tendencies ar.d is not us ful in braking application*
period of time, for example, the r rst stop or first few
Steel offers another benefit that is commercially im
stop, made require griv.cr p, !nl pressure to bring the
portant. namely, due to the increased slrcngf- over gta;
cai to a stop than do subsequent opetations of the hiakhip
cast iron the drums m..y K m.iJe consiJe . n l ' l.ehter
s.stcm. This condition, while not sirioiis ftom a safety-
will; decreased wall lhi.ktiess without sacrificing ruggi .1-
point of view, is nevertheless, annoying ar.d has itieJ a To
]* should be understood that similar rest it can
a deterrent in some case'. toward the application of m- tnl- be obtained using cast iron drum' imed with the desire1
lie brake linings in pleasure vehicles.
steel surface. Thus, when th: term drum is us:J herein
8,184,001
3
the term is sufficiently broad to include any combination
providing the braking surface is substantially free from
4
or energy absorption over a wide range of operating
temperatures.
ferrite. In place of SAE 10R0 or 1085 steel any Other steel
2. A torque transmitting device com pliant a sintered ferrous facing and a mating surface cotafetmg of itecl
which has a structure substantially free from fertile is H substantially free from ferrite.
useful, for example SAE #8660, #9260. Alloy steels
3. A brake for uae in an automotive vehicle and the
of this character may also be used where specific physical like, comprising in combination; a sintered ferrous brake
characteristics are desired which may be obtained from lining and a braking surface cooperating with said lining,
the alloy.
said braking surface consisting of steel substantially free
In general, sintered ferrous linings and/or facings hav 10 from ferrite whereby the combination of the sintered fer
ing a sintered ferrous base and including graphite in quan rous lining and the said steel braking surface effect uni
tities above 10% with or without well-known friction form braking conditions over a wide range of operating
fortifying and/or modifying materials, may be used effec temperatuies.
tively in the combination.
4. A brake for use in an automotive vehicle and the
Any steel drum having a metallopraphic structure sub ]5 like, comprising in combination; a sintered ferrous brake
stantially free from ferrite when used in combination with lining and a brake drum for use as a rubbing surface
a sintered, ferrous brake lining material will offer im against said lining, said drum having a contacting surface
proved operational characteristics, particululy in the cold consisting of steel substantially free from ferrite whereby
pedal ranee. Such improvements arc easily noticeable the combination of the sintered ferrous lining and the said
by the operator of the vehicle and lessen the difference in 20 steel braking surface effect uniform braking conditions
pedal pressures required to bring a car to a stop unde: any over a wide range of operating temperatures.
giv en set of conditions.
5. A brake for use in an automotive vehicle and tbe
It is to be understood tti.it the prineiples in'c'ved arc
like, comprising in combination, a sintered ferrous brake
equally applicable to disc br.ikes. drum brakes, clutches lining and a braking surface cooperating with said lining,
a n d 'o r other torque transmitting and or cnergv .ihsoib- 25 said braking surface consisting of SAC 1080 steel sub
ir.g device-. wherein sliding or rubbing cngngenn.nl occjrs
stantially free from ferrite whereby the combination of
bet era the sever..1 element- of the structure.
said sintered brake lining and said SAE 1080 steel braking
Wb is the embodiments of the present invention as he:cir disclosed, constitute preferred forms, it is to be
surface effect unifo'm braking condili.ro over a wide range of operating conditions.
under:tood that other forms might be adopted.
30
W.'..,; is sl.umcJ is as follows:
References Cited by the Examiner
1. A torque transmitting and energy absorbing device,
UNITED STATES PATENTS
i ..lgtising .n combination: a driving and a driven n u m
1 900.804 3.73 C ro w e ............- .................188-- 218
ber herein one of sad members comprises a sintered fer- ,,. 2.09-.125 10,77 Le J e u n c ........................ . 1 8 8 --218
ro.iv surface and wberetD the other of saiJ members con
2,945.291 7/60 Ankeny c: al _________ 29-- 182 ?
sist oi a steel surface suKiant.ally free from ferrite where by the combination of the sintered ferrous surface an j the
ART HI 'R L. LA POINT, Primary Examiner.
s.-.i-.l suet surface effect uniform torque transmission a n d ' EUGENE G. BOTZ, Examiner.
JUNE 1950
AUTOMOTIVE ENGINEERS
THE varied properties required of a brake lining material calls for careful selection and blending of its ingredients.
Lining requirements are:
.
1. Correct coefficient of friction, which is influ
enced by temperature reaction, aging qualities, water reaction, and oil a n d g rease re a c tio n ;
2. Durability;
Automotive
3. Relative freedom from any tendency to score
drums; 4. Quietness In operation; and
5. Nonoffensive odor.
.
Lining friction coefficients generally run between
0.20 and 0.40. Manufacturers usually describe lin ings as having high, medium, and low friction co
BASED ON FA.PEP* EV
efficients without specifying friction value numeri cally. It's not hard to compound a lining with an initial specific friction coefficient; but to produce a lining with uniform braking performance under various operating conditions takes much compound
A. J. Carter
Assstant Department Head Poster P.as: :s Laboraron Crr.se- Corp
ing study and laboratory and road testing. The ideal lining would have a constant friction
coefficient at high and low tem peratures, under wet
and dry conditions, throughout th e lining's life.
There is no such lining. All linings disintegrate under high braking temperatures. Cnemical and physical changes either increase' friction coefficient (build-up) or decrease it (fade).
With fade, if lriction characteristics return to their initial condition, the lining is said to have good recovery properties. Satisfactory linings fade slightly with each brake application, but recover immediately after cooling Linings producing build up in friction coefficient are not satisfactory
Friction coefficient may increase ^r decrease with age When it decreases, it develops a hard pedal. Some linings harden and tend to score drums and be noisy.
Other linings are sensitive to water on the fric tion lace, with effects as pronounced ns those from temperature. Moisture alsu causes "morning sick ness. ' Iron oxide forms on the drum and gives high friction reaction during the first two or three stops made after the car has been parked over night. Be
cause of contact with oil and grease m service, lin ing.should have some resistance to there materials.
Linings also should wear slowly and uniformly. This insures more consistent braking action by con tinually renewing the friction surface. Negligible
wear may produce a glased friction surface. Certain ingredients tend to score drums. Steel
dru m ; score more readily th a n cast-iron ones. Brake system quietness is a function of the lining as well as other fa c to r1'. Ingredients m ust uci pro duce offensive odors at high braking temperatures. Good compounding ingredients may be di5c.'.rdr d because of this limitation.
Brake lining materials derive their properties from fillers, binders, and wear-enhancing ingredi ents, such as those in Table 1. Selection and per centages of ingredients used varies with the type of lining.
Chief lining constituent is Chrysotile asbestos, used as the primary reinforcing material. Chemi
cally, it is an hydrous m agnesium silicate (H4 Mg,
* Paper "A ,,-rr'or-v" c'-ate L-.:ng Mate - a < ' v..=s r ' : "" . 3 s'
Si: 0 9). The m ineral fibers are ^ to 6 in. long.
Anp_,a'
Derrp.t Jan _ e- C (Ts paper a ava^b'e ,n fu'l
in rr-./'iiithographed fpr-i ren 5.AE Spec* Pl. ' - . - '$ i
4
Under high magnification the fiber looks like many
Pr re 2~C to members, "2d to "o r--.em1. ers )
finer crystalline threads bundled together. Diam- ;
Binders
Elastomers Rubber OR-S Buna N Neoprene
Phenolic resins Oil modified phenolic resins Cashew nut oil resins Drying oils Bulfunzed oils
>
Table 1-- Brake Lining Ingredients
Reinforcing
Chrysotile Asbestos
Filler*
Nonieinforcing
Barium sulphate Calcium sulphate White lead Lead carbonate Clay Asbestine
Friction Modifying and Wear Enhancing Agents
Cashew nut liquid products ipowders' Rubber and synthetic rubber Ground rubber tire scrap Iron oxide Metals--lead. zinc. b"ass Lead salts Tale Graphite Bituminous materials Abrasives
Curing Agents ind Accelerators
Standard rubber and resin primary and secondary curing agents and accel erators
9 9
20
SAE IOURNAL
(
BRAKE LINING MATERIAL
Ingredients Hold Key To Service Behavior
etcr of the smallest fiber which can be separated is reducing cr inert atmosphere. This prevents oxida
about 0.00003 m.
tion of the metal to an oxide and permits it to func
Asbestos makes a coed friction material because tion as a friction stabilizer.
of its heat resistance, chemical resistance, flexibil G raphite in lining compounds im parts a lubricat
ity. low therm al conductivity, and hardness. Its ing effect for smoother stopping. It can be incor
reaction to heat is particular^1important.
porated in the hard rubber or added separately.
The asbestos fibers start losing their water of Some compounders see two advantages for graphite
crystallization a t about 600 F. The loss rate in encased in rubber. First, it does not interfere with
crease- with tem perature and become rapid a t 1000 flow of the resin binder during curing. Second,
F. When the water is driven off. asbestos looses its graphite is released for its lubricating action only
crystalline properties : nd Incomes a powder. As- a f t i r the rubber Is softened by high braking te m
! be-'tos fiber breakdown to powder with heat make? perature.
pn-'ible rejuvenation of the lining's fru lion surface. Iron oxide in small am ounts sometimes i used as Today's brake lim ner would be impossible if heat a friction-controlling element. It tends to have a
generated in braking a car decomposed only organic sc-li-poli.shing action which partly controls surface
materials and changed asbestos into a hard, organic frictional properties.
fused layer of abrasive material.
The compound usually requires large amounts of
Poor heat-conducting properties of asbestos help inorganic fillers to produce frictional effect.'.. This
keep heat from penetratme. deeply into the lining. necessitates an improved friction stabilizer that
Tins would produce civ mica! chance, in binder functions over a wide temperature range. Organic
m att rials a r c' would harm lining fr.ction character- modifier.' such as rubber, ground ruboer scrap,
15-'tiC S .
pitches, and gilsonite- function besf over narrow
Asbestos fabrics have a Ira. tion coefficient of tem perature ranges. about 0.35. This is within the 0.2 to 0 4 range A powdered product made from cashew n u t liquid
aiour.d which satisfactory braking systems h a w is. cne of the bettei friction-stabilizing and w ear
beer, designed.
enhancing agents used today. This material works
Brass lead, or lead alloy wires used in woven m a satisfactorily up to tem peratures of 000 to C50 F.
terials strengthen the yarn Some claim lead su r Tire scrap particles function up to about only 500 F.
passes other metal- b e c a m e it stabilizes the friction About G to 8To of dust is needed to improve wearing
coefficient, act- as a dry lubricant to prevent drum qualities.
scoring, and inhibits iorm.nion of abrasive particles Ground- rubber tire scrap has been, and will con
on the friction surface.
tinue to be, widely used because it is a cheap raw
Metallic powders, such as zinc and lead, improve material. Other friction modifiers--such as pitches,
performance at high tem peratures. Limitation gilsonite. coal, and petroleum coke--can be used in
with fine ler d is that it oxidizes easily to litharge, limited quantities oru.y because of their low te m
which promotes oxidation m unsaturatort organic perature resistance. Braking temperatures destruc
compounds. Some believe these powders help tively distill these materials to form tarry or pitchy
break the continuity of the friction surface film residues at the friction surface. These increase the
during braking action. Larue am ounts of metal friction coefficient a t low tem peratures. But at high
(409c). such as brass chips, are added to linings for tem peratures, volatile m aterials may be driven oft
u ry high temperature req lirements.
too rapidly before formation of tarry products, los
Brake lining compound' rs also add lead to com ing their effectiveness.
positions in th e form of organic salt. High t e m Researeh today is aimed at. getting binding m a
perature liberates it ns finely divided h a d in a terials with high heat resistance. Currently the
U-'NE 195C
21
Fi*i I-- M fh$ brake shoe shows, borocd limn? nukes avaiLb1* fwicc the us:*! lining and v *tjalK eliminate' <*un -cere
Lists New Need With Bonding Lining
Acid b o n a a t i i i t y as a s i;:t h lim n g reej a ire n m :a t .
; vIvi.-.es S . CV T i l d e n , T h e P e r m .a fu .s e C o . T h e
ad vi n t r -1 bonded broke lin in g s n take-' th is a
n ,\.A .
T h e ; e ll'S o. n a m ,- a tii h : n se t u p d ll . r b k r ; r "
tv;h ' ir / :-.an b a r d s t r e u " ` i : : e . , u i v m 1:.f. 1 o f 0 ) 0 ;
1 :
T ; . m owe -. 1 ' .'J .`-h-',u r c. t n o t h <:
J ' .Vif) V on :< l - ; , 1 1 - in . s c - r m e r it , T h a t ) ' a :i y j v A fiv e t in . . ' ! f m a x i m u m s ie a:* f ! f<. ( x -
e r e cl o n lin k '. m: ) ;y a s i m u l a t e d cm. V I *: u ;c y .-t o u w ;1 . i 1 e cmcel<' l a t : ' r.
A .I l i n i n ' ' f:a c t o r s j h '.icl ic in g tcocr.i! b o n d a 'n ' l ' i ;
i ; . .v * * c.t w
c - t a b li h id . B u i ' <l h v* bi *n
) - 'n 0 1(, l ' > d th-. c ih r t o f p o r m n y S t IV : L. ' V
. . : )\" 1.. cl m i ; r r<v.d 1a " ;. a b w r b m
11. V m i
b' : ' :.
B o n d im s u ita b ili f\ also ca lls fo r a v a il ..o iu ty
o f t h e e n tir-' 1m u m t h i c k n c ess fo r u s e . T h a t *
V-i :y w ir e - b a c k l i n i n g s a r e n o ' s u it e d f o r b o n d -
in ;j . T h e y ca : be- a s e d cm.l y d o w n to th .o w i r e
h a.e k in g ; rt i t e r t h a t t h e y -.co re t h e d r u m - W i t h
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i; u a l.iy p r e s e n t i i r W - V I n n :
m . i i i i h i . c' : : : a ' j M t ' ; n r , v - m he u c r e
. dry mg
oil.1, r iboi-r. and bituminous ir.aieri.Li-. Ma-' im
p ortant croup is the synthetic' re.-:n:-. Oil modilied
ph.-nolies arc- moatly used. Syn'nc-tie ic.'.in.- Imld
much promise because they can be svnthetizect in
the laboratory tc meet desired Liiutiiic material
requirements.
Available resins vary in their properties Some
can be used alone, other* must he used, to jo th e r
with nature:, synthetic, or reclaimed n .b b ei Oi
modified ty p e s also a re commonly u m c \. it h th o se
rubbers.
Used as a binder, rubber or GR-c> m ust be vuKta.1-
ized to function properly. In lininr composition?
they usually are cured to a h ard rubocr n ith 2a to
4U'f. su'ii.r a.-.- the vulcai icinc aeor.t. Their rela t e ely low copisnir.-j and d c - c c m p o - i t e m p e r a tures limit rubbers clone ns. binding averts. In the f ut ure It may b< pos-ublc U .--yi'h 'ir.e rubber polymers th at will make satisfactory brake lining binding materials. Some day tpecial rubbers may be expressly mt.de for this use.
Drying oils, used for many years in brake lining formulations. are limited because of control oi
polymerization (h ardening). They are used in aitettrinz type and v even linings. Wide use also is made of them as a binding component in modifying phenolic resins.
tThe paper also tells how fabric and molded lin ing;- are made.)
9 3
22
SAE JOURNAL
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Designers can affect frictional coefficients of brake ana clutch linings by blending ingredients in their binders.
Friction modifiers tailor brake
New requirements for friction lining materials exist because of the elimination of asbestos in brake and clutch compositions and the use of small pads for down sized and compact cars. Semi metallic compositions generally need some friction modifiers to reduce squeal and wear and pro duce friction characteristics that are less temperature-dependent. Research on solid friction control additivies at Dow Coming has pro duced new technology by which friction and wear properties can be tailored to specific require ments.
Friction modifier*
Friction modifier additives are synergistic blends of tem pera ture-stable materials which can be incorporated into various com positions to provide specific fric tion, wear, and load-carrying pro perties. Concentrations of one to six weight percent can reduce noise levels and dependence of fric tion on speed and temperature.
Additives, such as cashew resin or graphite, have been used for many yean to control friction properties in brake and clutch compositions. Friction composites are composed of a balanced mix ture of resin plus additives and generally contain over a dozen ingredients to achieve desired
74
characteristics. In Europe M0S2 (molybdenum disulfide) has been u tilized 'as a friction modifier for harder brake pad compositions. Comparisons were made between M0S2 and a composition termed by Dow Coming "Friction Modi fier A" .
Phenolic retin composition*
Phenolic resins are the most common organic binders used in friction composites. Compositions of phenolics with high loading of M0S2 powder and Friction Modifier "A" were tested using an Alpha LFW-1 friction and wear testing machine.
Phenolic resin by itself does not have the best lubricating properties. Addition of MoSs or Friction Modififer "A" provided a reduction in wear and friction. Generally, the phenolic resin with Friction Modifier "A" gave lower initial coefficients of friction and wear values as compared to an equivalent weight concentration of M0S2. Coefficient of friction for the Friction Modifier "A" formu lation changed less with time than the base resin or MoSi composi tion.
Additional tests at a lower load of 13.6 kg and higher speeds re vealed that formulations with Fric tion Modifier "A" gave a more con stant coefficient of friction with
changes in speed, load, and time. At higher speeds and lower loads, no difference in wear was appar ent between M0S2 and Friction Modifier "A", but wear was sig nificantly lower than the base re sin.
Composition*
Three different brake composi tions were categorized as follows: Class A--High in asbestos and organic components Class B--Less asbestos and or ganic components plus some inor ganic components Class C--Semi-metallic non asbestos composite Class C prototype--Semi-metal lic nonasbestos Composite with 10% Friction Modifier "A" .
Table 1 lists the different char acteristics of the three classes. The brake compositions were test ed on the LFW-1 test machine.
The results of the testing are listed in Table 2. Good corre lation between the LFW-1 tests and the general characteristics provided for each of the classes was obtained. Complete correla tion existed for the wear of the brake composite and the metal mate, and very close correlation existed with noise and friction properties at low and high tem peratures.
Class C, which produced the