Document jgm9Rm1pKm49y427mOVba0YKQ
. -i
0no.1 068844
(45) ISSUED 791225
(51)
(52) CUSS 400-76 C.R. CL.
INT. CL. 2 C08K7/12, C08L 67/06
CANADIAN PATENT
(54)
PRECIS ION-MOLDABL ABRASION-RESISTANT MOLDING COMPOSITION AND MOLDINGS
(TO)
Knoy, Maurice G.; Wilkinson, Robert E.; Johansen, Kenneth W., U.S.A.
Granted to Alien-Bradley Company, U.S. A.
APPLICATION No. 233,806
FILED
750820
PRIORITY DATE
U.S.A. (580,768)750527
No. OF CLAIMS 20
1068844
The embodiments of the invention in which an exclusive
property or privilege is claimed are defined as follows:
1. A molding composition adapted to undergo
thermosetting reaction under molding conditions to produce
a molding having low-shrink characteristics, precision
molding characteristics, and high abrasion resistance,
comprising
from 15% to 60% by weight of a low-profile resin
system containing a free-radical initiated thermosetting
polymer, a free-radical initiator therefor, a copolymeriz-
able monomer, and a. thermoplastic resin low-shrink additive,
from about 5% to about 40% of long fiber asbestos,
such asbestos constituting substantially the entire fiber
content of the composition,
from about 20% to about 80% of other mineral
filler, not including any substantial amount of glass fiber,
such other mineral filler being present in an amount at
least as great as asbestos so that the amount of asbestos
does not exceed one-half of the total amount of asbestos and
other mineral filler, taken together, and
from about one-half percent to about 10% of an
abrasion-improving additive consisting of a polyolefin
which is solid at room temperature.
2. A molding composition as in claim 1 in which
the asbestos is either chrysotile or crocidolite asbestos.
3. A molding composition as in claim 2 in which
the thermosetting polymer is a polyester polymer.
4. A molding composition as in claim 3 in which
the other mineral filler is hydrated alumina.
5. A molding composition as in claim 3 which
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contains about 30% resin system, about 15% asbestos, about 50% of hydrated alumina, and from 2% to 5% of polyethylene.
6. A molding composition as in claim 3 in which the abrasion-improving additive is a polyethylene resin.
7. A molding composition as in claim 3 in which the abrasion-improving additive is a polypropylene resin.
8. A molding composition as in claim 2 in which said low-shrink additive constitutes from about one-half percent to about 25% of the composition and is a polymerized thermoplastic compound which is soluble in said monomer or a compatible solvent intermixed therewith and which is not converted to a thermoset material under the conditions of molding and curing the composition.
9. A molding composition as in claim 2 in which said low-shrink additive is a polymer of vinyl acetate and constitutes from 5% to 40% of the resin system.
10. A molding composition as in claim 2 in which said low-shrink additive is a polymer having a polymerizable CH2=C^^ group and constitutes from 5% to 40% of the resin system.
11. A molding composition as in claim 2 in which said low-shrink additive is a polymer of a cyclic ester and constitutes from 5% to 40% of the resin system.
12. A cured thermoset molding having low-shrink characteristics, precision-molding characteristics, and high abrasion resistance, composed of a composition as set forth in claim 1.
13. A cured thermoset molding having low-shrink characteristics, precision-molding characteristics, and high abrasion resistance,? composed of a composition as set forth
26
10 20
; 30
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filled thermosetting molding compositions can be substantially
improved by the addition to the mineral-filled thermosetting
molding composition of a small proportion of polyethylene or
other polyolefin which is solid at room temperature. In that
patent No. 3,397,169, the abrasion-improving addition is
made to general purpose thermosetting resin compositions, and
the patent specifically mentions polyester resins which
contain free-radical initiators and modified epoxy resins
such as epoxy-acrylate resins which are reactive in the pre
sence of a free-radical catalyst.
The compositions of that prior Wilkinson patent have
a relatively high degree; of shrinkage during curing, with the
\
result that they do not have precision-molding characteristics
and moldings made therefrom are subject to warpage and do not
have high precision and accuracy. In moldings which are to form the assembled parts* of an electro-mechanical relay or
switch, such as a contactor, and in many other applications,
a degree of precision is required which often exceeds that
obtainable by molding such compositions, and use of such
compositions in these applications has required special steps
to overcome warpage and secure accuracy, such as machining to
meet critical dimensions.
Improved precision-molding characteristics can be
obtained with certain mineral-filled thermosetting molding
compositions by using in the composition a "low-profile" resin
system which includes a "low-shrink" component. Low-profile
resin systems and molding compositions are shown, for example,
by the following patents:?
.
British No. 936,351
Publ. 9/11/68
F. J. Parker et al. British Industrial
Plastics Ltd.
rj#.f
-3-
10
.s-
%20
-V)
iX J3 i i
1 ai<
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U.S. No. 3,549,586 U.S. No. 3,668, 178 U.S. No. 3,701,748 U.S. No. 3,718,714
12/22/70 06/06/72 10/31/72 , 02/27/73
P. L. Smith et al. Union Carbide Corp.
I*. R. Comstock et al. Union Carbide Corp.
C. H. Kroekel Rohm & Haas Company
L. R. Comstock et al. Union Carbide Corp.
In general, these use a low-profile resin system which includes a thermosetting unsaturated polymer such as a polyester and a monomer such as styrene, and includes as a low-shrink additive therein a thermoplastic polymer which is soluble in the monomer but is not converted to a thermosetting material by or in the presence of the polymerization of the resin system.
These low-profile compositions were developed primarily to improve the surface finish of moldings which were to be painted and on which an especially smooth surface was needed. The same low-shrink characteristics which give good surface
i-
finish also give precision molding characteristics which are highly desirable in forming moldings which require high mechanical accuracy. It is found, however, that the low-profile, molding compositions have very poor abrasion resistance, and while the teachings of the Wilkinson patent No. 3,397,169 may be used to improve the poor abrasion resistance of low-profile compositions, the improvement is not sufficient to overcome the poor abrasion resistance, and the resulting moldings do not have adequate abrasion resistance for the applications here contemplated.
This failure was especially critical in the developraent of an improved electro-mechanical contactor switch in which both precision molding and high abrasion resistance were essential, along with other properties provided by mineral-
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10
20
30
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filled thermosetting polyester molding compositions. There are numerous other applications where this combination of properties would be of high value.
By precision molding properties, we mean that the composition may be molded in precision dies and will form molded parts in which little or no shrink occurs during cure and which match the dies with a high degree of precision, for example, with a variance therefrom of not to exceed +0.0005 inch per inch and with little or no warpage or distortion. This compares with a- variance of +0.003 inch per inch or more and warpage problems with corresponding moldings made with general purpose molding composition of a comparable formula not including a low-profile resin system. This is an improvement by a factor of 6 in an accuracy range which is already highly exact.
The very poor abrasion resistance of low-profile molding compositions is not well understood, but evidently involves the resin system and its characteristics and behavior in relation to the other components of the composition.
f:. In accordance with the present invention, a mold ing composition adapted to undergo thermosetting reaction under molding conditions to produce a molding having lowshrink characteristics, precision-molding characteristics, and high abrasion resistance, comprises from 15% to 60%, preferably about 30%, by weight of a low-profile resin system containing a free-radical initiated thermosetting polymer, a free-radical initiator therefor, a copolymerizable monomer, and a thermoplastic resin low-shrink additive, from about 5% to about 40%, preferably about 15%, of long fiber asbestos, such asbestos constituting substantially the entire fiber content of the composition, from about 20% to
$
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about 80%, preferably about 50%, of other mineral filler, not including any substantial amount of glass fiber, the other mineral filler, being present in an amount at least as great as the abestos so that the amount of asbestos does not exceed one-half of the total amount of asbestos and other mineral filler, taken together, and from about 1/2% to about 10%, preferably from 2% to 5%, of an abrasion-improving additive consisting of a polyolifin which is solid at room temperature. The invention also includes cured thermoset
4
moldings composed of a composition as set forth above. A molding composition in accordance with the inven
tion may comprise the following components in the weight proportions given: (a) A low-profile resin system including a thermosetting resin, a monomer and solvent, a catalyst or initiator, and a low-shrink additive, desirably in an amount from 15% to 60% of the composition. The low-shrink additive may comprise from 1% to 60% or preferably from 5% to 40% of the resin system, and from about 1% or less up to about 25% of the total composition; (b) From 40% to 85% of mineral filler of which up to one-half is mineral fibrous material, at least largely and preferably entirely long-fiber asbestos. We prefer to use either chrysotile asbestos or that known as blue asbestos or crocidolite, in an amount of from 5% to 40%, and preferably from 5% to 25% of the total composition; (c) From 1/2 of 1% to 10% of an abrasion-resistant additive as disclosed in Patent No. 3,397,169, preferably polyethylene; and (d) Minor amounts of supplementary ingredients such as processing aids, colorants, mold release agents, etc., in accordance with known practices.
The low profile resin system used may be any of such known systems as represented by those disclosed in the patents
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listed above and which employ a polyester-type thermosetting
resin. The polyester resin is desirably a free-radical
initiated polyester. Such resins are commonly obtained or
compounded to include free-radical initiators or catalysts and
the present invention does not depend on the use of any parti-
i
cular initiator. The system also contains a monomer which is
usually a solvent for the polyester and which copolymerizes
therewith. On the basis of availability and cost, styrene
is widely used as such monomer and solvent, and is suitable
for use here.
.
. The resin system also includes a low-shrink additive.
This may be any of the many thermoplastic polymers disclosed '
in the patents listed above. In general, these comprise
thermoplastic polymers which are soluble in the monomer of the
resin system or a monomer compatible therewith, and which
are not converted to thermosetting materials by the polymeri
zation reaction of the resin system. The additives are pre
ferably added to the resin system and mixed therewith before
the resin system is mixed with the fillers.
..
Low-shrink additives which may be used in the resin
systems include:
.
polymers of vinyl acetate, such as copolymers of vinyl acetate
and acrylic or methacryli'c acid, as disclosed in U.S. patent
No. 3,718,714;
`
polymers of substances having a polymerizable reactive CH2=C^
group such as polymers of methylmethacrylate and the like, and
ft
styrene, and copolymers thereof with other compounds, as dis
closed in part in British Patent No. 936,351 and more fully by
U.S. Patent No. 3,701,748.; and
h 7- -
1068844
*t
especially as thickeners in various thermoplastic and thermo
setting resin compositions, as set forth, for example, in
articles thereon in recent editions of Modern Plastics Encyclo
pedia. However, we believe it has not been known that any of
the different varieties of asbestos could have the effect of
overcoming the very poor abrasion resistance which occurs in
low-profile molding compositions. Indeed, the 1969-70 edition
of Modern Plastics Encyclopedia notes that one of the disad
vantages of asbestos as a fiber reinforcement is its
10 abrasiveness.
?
In accordance with the present invention we have
found that for the purpose of enhancing abrasion resistance
in compositions of the present invention, the asbestos to be
used is preferably a grade designated commercially as "long-
fiber" asbestos, and is preferably either chrysotile asbestos
such as that available from Johns-Manville Company under the
trademark "Plastibest", or that known as blue asbestos or
crocidolite.
Asbestos has a thickening effect in molding composi-
20 tions, in which respect it differs substantially from the
commonly used glass fiber, and the maximum usable proportion of
asbestos is limited by the necessity to avoid such excessive
thickening as would interfere with the desired molding results
in the particular molds used.
The composition also includes an abrasion resistance additive in accordance wih the teachings of Wilkinson U.S.
Patent No. 3,397,169. Such abrasion-resistant additive is a
polyolefin which is solid at room temperatures. In compositions
containing a free-radical initiated resin and a free-radical
30 catalyst, the added polyolefin is believed to chemically react
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two components is obtained. The other filler and the abrasion improving additive are then added, either together or in suc cession and mixing is continued until a uniform blend is ob tained. The minor amounts of supplemental components may be added at any appropriate times depending on their physical character, that is, liquid or soluble components may be added to the initial resin system, while dry powdered components such as colorants may be added either separately to the resin system or with one of the major dry components.
The composition may be molded under heat and pressure in the same way as known low-profile compositions. For example, a measured charge of the composition is placed in a heated mold, for example, at 300F., .and the mold is closed on the material under pressure and held for a time, for example, from 1 to 3 minutes, sufficient to cause polymerization and cure of the composition. The molded piece is then removed from the die.
Moldings produced with the compositions of the present invention have advantageous properties corresponding to those of the best previously known mineral-filled thermosetting poly ester resin compositions! These comprise good electrical properties including high dielectric, arc-quenching, arcresistant, and non-tracking properties. The compositions have good moldability and consistently give uniform moldings. The moldings have high dimensional stability, good corrosion resistance, and satisfactory physical strength. The moldings are outstanding in the precision and accuracy with which they conform to the shape and dimensions of the molding dies, in their freedom from shrink deformities and surface imperfections and warpage, and in the high degree of abrasion resistance
i,
which they possess in combination with the other advantageous
1068844
properties which are essential to the highly demanding appli cations here contemplated. The combination of properties makes the new compositions economically advantageous both in production and use, and permits the moldings to meet precise dimensional requirements and high wear-resistant requirements as molded, without need for machining, clamping, or other special treatment of the molded units.
The accompanying drawings illustrate the invention. In such drawings:
10 Fig. 1 is an exploded isometric view of a set of moldings for assembly to? form the frame and movable contact carrier of an electro-mechanical contactor;
Fig. 2 is a diagrammatic side elevation of a test device in which abrasion resistance is indicated by the depth to which a vibrating metal ball penetrates a test sample in a predetermined time; and
Fig. 3 is a diagrammatic side elevation of a test device in which abrasion resistance is indicated by the depth of penetration of the corner of one test sample into the face
<2 -
20 of another test sample vibrated against the first. The set of moldings shown in Fig. 1 are for assembly
to form the base, frame, and movable contact carrier of an electro-mechanical contactor which also includes various elec trical components and is used to control the power circuit of a motor or other electrical load. The moldings are shown in Fig. 1 in an orientation which was found convenient for pur poses of illustration, but are normally used in a different orientation, rotated 90 clockwise from the orientation shown. The contactor moldings comprise a base unit 10 having a rear 30 mounting wall 12 which in use is mounted against a vertical
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.10 20
panel support, and having an end or bottom wall 14. The
base is formed with spaced ribs 16 which form rails having
slideway surfaces 18 for engagement by the slide-bearing
surfaces of the cross bar 20. The base molding 10 is also
formed at the lower end of its mounting wall 12 with a
series of parallel grooves and ribs 22 which form guides
for mating ribs and grooves formed on a hidden portion of
the cross bar 20. The base molding 10 also has a pair
of posts 24 spaced from each other and from the end wall
14, and the space between the posts and wall forms a cavity
for the reception of the'solenoid coil and core of the con
tactor.
The cross bar 20 is a generally U-shaped member
having a front or top cross wall 26 and two side walls 28.
The upper and lower edges of the side walls 28 define slide
bearing surfaces 30, one pair of which rides on the slideway
surfaces 18 of the ribs 16. The rear of the cross bar has
a pair of inturned flanges 32 which are interconnected by
a cross piece (hidden in this view) which carries a series of k
. ribs and grooves that engage the grooves and ribs 22 of the base
molding 10. The cross wall 26 of the cross bar carries three
yokes 34 in which the movable contacts of the contactor
are mounted.
|
A cover molding 40 mounts against the ends of the posts 24 and the edge of the end wall 14 of the base molding 10. It includes side walls 42 which at their edges define slideway surfaces 44 which slidably engage the upper pair of
. slide-bearing surfaces 30 of the cross bar 20. An arc hood 46 fits against the end face of the
30 assembled base molding 10 and cover molding .40 and has
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lugs 48 which fit into, sockets 50 formed in the mounting wall 12 of the base 10. Such arc hood 46 carries three sets of fixed contacts on its inner face, in suitably formed cavities and in position!to be engaged by the movable contacts carried in the yokes 34 of the cross bar 20. The arc hood *46 has three spaced passages 52 into which the yokes 34 of the cross bar project and in which they move as the contacts are closed. The end face of the arc hood 46 is closed by an arc hood cover 54 which interfits with the arc hood and is 10 secured in place with a pair of screws. There is also an arc hood top cover 56 which interfits with the arc hood. The moldings together define an arc chamber about each set of contacts, to enclose them and isolate them from each other.
In an assembled motor contactor unit, the mounting wall 12 of the base molding 10 stands in a vertical posi tion, with the wall 14 at the bottom thereof. The cross bar 20 is oriented with:- its yokes 34 at the top, and sur rounds the solenoid coil. Its flanges 32 are fixed to the armature of the solenoid so that energization of the solenoid 20 lifts the cross bar vertically upward to carry its contacts into engagement with the fixed contacts carried by the arc hood. The cross bar is urged downward (rearward as shown) to open position both by gravity and by springs mounted in the assembly.
The several moldings have precise interfitting engagements so as to define an accurate slideway and bearing . surfaces for the cross bar, to support it for free and accurate sliding movement in response to actuation and deactuation of the solenoid coil. The cross bar slides directly on the other 30 moldings without interposed bearings or wear plates. The
_1 A--
10 20 30
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moldings support the contacts and other electrical components
in precisely located positions. They also form interrelated
ribs and walls which define the arc chambers and enclose and
separate the three sets of contacts from each other. They
also support and insulate the various other electrical
components. The assembly forms a highly compact unit which
performs a variety of both physical and electrical functions
and is subject to both physical and electrical stress. In
operation its parts are subjected to rubbing wear from
movements of the cross bar, to impact wear as such movements
stop, and to vibration wear from alternating current hum.
They must withstand high electrical potential and the effects
of arcing from contact closings and openings. The moldings
are intricate interfitted parts, which require both precision
molding characteristics and high wear and abrasion resistance
in the molding compositions of which they are made, so as
to withstand millions of operations and provide a long operative life. The moldings must also have essential elec
trical characteristics including high dielectric strength,
good arc-resistance and non-tracking properties, and good
physical characteristics lincluding adequate strength and
especially precise dimensional control during formation in
the molding step and high dimensional stability and freedom
from warpage and distortion. Prior molding compositions did
not provide the necessary combination of properties to satisfy
these requirements, whereas compositions of the present
invention do provide such critical properties and make the
improved contactor feasible.
The presence of many of these properties can be
determined by inspection or known tests. Tests for abrasion
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resistance have been conducted on various types of equipment,
designed to simulate conditions encountered in use. Two .
types of test equipment we have found useful are illustrated
in Figs. 2 and 3 of the drawing.
In the test apparatus of Fig. 2, a test sample 60
is fixed on a support 62 and a steel ball 64 is vibrated
in contact with the sample, under a predetermined load, by a
vibrator 66. The depth :of ball penetration in a given time,
for example one hour, indicates the resistance of the sample
to abrasion resulting from mechanical or electrical vibration.
In the test apparatus of Fig. 3, one test sample 70 '
is fixed on a support 72 and a second sample 74 is mounted on
an angle block 76 in contact with a corner of the first
sample 70, tinder a predetermined pressure. The angle block
76 and a second sample 74 are vibrated by a vibrator 78 for a
specified length of time, for example one hour, and the
depth of penetration into the surface of the test sample 74
is taken as an indication of the abrasion resistance.
The invention is illustrated by the following
examples, which are given as typical and representative, and
not as limiting.
i
In such examples, the proportions given are by
weight. In each test on the apparatus of Figs. 2 and 3, a
group of five test samples were tested under standardized
test conditions for test periods of one hour, and the
abrasive penetration results given represent the results on
all five samples. The numerical values given for abrasion
penetration represent depth of penetration measured on a
standardized scale.
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EXAMPLE 1
As representative of the prior art general purpose
molding compositions, moldings were made from a molding
compound containing 25% of a general purpose polyester resin
system including polyester polymer, a monomer, and a catalyst
or initiator. The compound also contained 15% glass fiber and
60% mineral filler, and compounds were made both with and
without the addition of 3% polyethylene in accordance with the
teachings of Patent No. 3,397,169. The compounds corresponded
10 to those of Example 2 of that patent. Test samples of such
moldings gave the abrasion resistant results shown in Items la
1 and lb of Table I set forth below. It will be seen that the
.
presence of 3% polyethylene in this glass-filled, general
purpose compound produced .substantial improvement of both
t-
vibration abrasion resistance (Fig. 2) and rubbing abrasion
resistance (Fig. 3).
EXAMPLE 2
Moldings were made from a known low-profile molding
compound containing 24% of a low-profile resin system, contain-
20 ing a free-radical initiated polyester polymer, a monomer and
solvent, specifically styrene, a free-radical initiator or
catalyst, and a thermoplastic polymer low-shrink additive.
The compound also contained 15% glass fiber, 61% filler
(hydrated alumina), and mihor amounts of supplementary com
ponents. Moldings of the same composition with the further addi
tion of 3% polyethylene powder were also prepared. Test
samples of such moldings gave the abrasion resistance results
reported in Items 2a and 2b of Table I. It will be seen
that the low-profile compound without polyethylene had much
3C lower abrasion resistance than the general purpose composition.
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and that while the addition of 3% polyethylene substantially improved the abrasion resistance, the abrasion resistance of the improved compound was significantly inferior to that of the general purpose compound with polyethylene in the vibration test apparatus of Fig. 2 and greatly inferior to the general purpose composition either with or without polyethylene on the rubbing abrasion apparatus of Fig. 3. Thus, the low-profile compound with the abrasion-improving polyethylene additive gave a rubbing abrasion test result of 10 2.4 which is substantially higher than the 1.7 given by the general purpose composition without polyethylene, and even worse in comparison with the test result of 1.0 given by the general purpose composition with polyethylene.
Sets of test moldings were prepared as shown in Fig. 1, in which the base molding 10, the cover molding 40, and the. cross bar 20 which slides on the other two were made from the low-profile glass-filled composition containing 3% polyethylene of this Example 2, and such moldings were furnished to an electrical apparatus manufacturer for
f' 20 assembly and test in an electro-mechanical contactor. We are
advised that the moldings were assembled with other parts to form operating contactors and that these were subjected to cycling tests to measure wear resistance and operating life under operating conditions, and that such contactors were found unsatisfactory because of excessive abrasion and wear of the moldings.
It is pointed out that abrasion and rubbing wear occur primarily between the cross bar 20 and the combined base 10 and coil cover 401 which form the slideway in which 30 the cross bar 20 moves and with which it has sliding contact;
*
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and that the arc hood 46 and its covers 54 and 56 are
subjected to less physical wear, and that is substantially
all vibration wear and not rubbing wear. On the other hand,
V.
'
the arc hood 46 and its covers 54 and 56 define the arc
chambers of the device and are subjected to substantial
arcing exposure. Because of these differences, the arc hood
46 and its covers 54 and 56 may be molded of a composition
5-
which is compounded to produce maximum arc resistance, even
at the expense of some loss of abrasion resistance, whereas
10 the base 10, cross bar 20, and cover 40 which are subjected
to critical rubbing wear and abrasion and less arc exposure
should be made of a compound having maximum abrasion resistance
even at the expense of less arc resistance.
EXAMPLE 3
Moldings were made from a molding composition in
accordance with the present invention, containing 29% of the
low-profile resin system used in Example 2, 15% of the
particular asbestos known as blue asbestos or crocidolite,
3% polyethylene, and 53% alumina hydrate filler. Test samples *i
20 of such moldings gave the abrasion resistance results shown
in Item 3a of Table I. It will be seen that on the vibration
resistance test with the apparatus of Fig. 2, the low-profile
. composition in accordance with the invention gave a test
result of 0.6 which is a substantial improvement over the 1.0
result with the low-profile glass-filled compound containing
the polyethylene abrasion-improving additive, and was better
than the 0.7 result obtained with the general purpose
composition containing polyethylene. The improvement in the
rubbing abrasion test with the apparatus of Fig. 3 was even
30 more pronounced. The low-profile asbestos-filled compound
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with polyethylene, in accordance with the present invention, gave a test figure of 0.3 which was an improvement by a factor of 8 over the 2.4 result given by the low-profile glass-filled compound containing polyethylene. The result was also a substantial improvement over the 1.0 result obtained with the general purpose compound containing polyethylene. This rubbing abrasion result was particularly important for the purposes of molding the contactor components shown in Pig. 1 which are subjected to rubbing wear, namely, 10 the cross bar 20, the base molding 10, and the cover molding 40.
Test moldings yrere made as shown in Pig. 1 in which the base molding 10, thej\ cross bar 20, and the cover 40 were molded of the composition of this Example 3 while the arc hood 46 and its covers 54 and 56 were made of an arc-resistant composition. The moldings were furnished to the manufacturer for test use in an electro-mechanical contactor. We are advised that various wear-resistance, abrasion-resistance, and like tests were made using a combination of moldings made 20 from the asbestos-filled compound containing propylene Of Example 3 and from the low-profile glass-filled compound containing polyethylene of Example 2a. We are advised that the wear life was improved by using a cross bar 20 made of the compound of Example 3 with a base 10 and cover 40 made of the low-profile glass-filled compound containing polyethylene of Example 2, but that the wear results were not fully satisfactory. We are further advised that satisfactory results were obtained only when the base, cross bar, and coil cover were all made *from the low-profile asbestos-filled 30 compound containing polyethylene of Example 3 in accordance
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with the present invention.
The test results referred to in Examples 1, 2, and
3 are given in the following table:
Example la lb 2a 2b 3a
l TABLE I
Composition
General purpose; no polyethylene
General purpose; plus 3% polyethylene
Test Results
Fig. 2
Fig. 3
2.5
1.7.
0.7
1.0
Low-profile, glass-filled; no polyethylene
5.0
13.0
Low-profile, glass-filled; 3% polyethylene
1.0
2.4
Low-profile,, crocidolitefilled; 3% polyethylene
0.6
0.3
EXAMPLE 4
.
Moldings were made from a molding composition in
accordance with the present invention, containing 30% of the
20 low-profile resin system used in Example 2, 15% of long-fiber
chrysotile asbestos (obtained from Johns-Manville under the
trademark "Plastibest"), 3% polyethylene, and 53% alumina
. hydrate. Test samples of such moldings were tested in
comparison with the low-profile, glass-filled, polyethylene
containing compositions of Example 2 (sample 2b, in Table X) ,
and with the composition of Example 3 (sample 3a of Table I) .
Tests were run both on the apparatus of Fig. 2 and on that of
Fig. 3, and in each case a number of samples were tested for
the same specified time, the depth of wear penetration on each
30 test sample wasmeasured in thousandths of an inch, andthe
* averageobtained foreach composition- Theresults were as
follows:
h I -.
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Example
Composition
Test Results I
4a (2b)
Low-profile, glass-filled; 3%:polyethylene
1.3
2.0
4b (3a)
Low-profile, crocidolitefilled; 3% polyethylene
0.35
0.12
4c Low-profile, chrysotile-
filled; 3% polyethylene
0.36
0.12
The results for test samples 4a were similar to
those obtained with the same glass-filled composition in test
samples 2b reported in Table I. The test samples 4b of the
same composition as|in Example 3, containing blue or crocido-
lite asbestos in accordance with the present invention, again
gave results showing a substantial improvement in wear resis
tance over the glass-filled samples 4a. The test samples 4c
of the composition of this Example 4, containing long-fiber
chrysotile asbestos in accordance with the present invention,
gave results nearly /-the same as samples 4b and likewise
showed a substantial improvement by a factor of nearly 4
over the corresponding glass-filled composition.
I EXAMPLE 5
The proportions of the ingredients of compositions
in accordance with the present invention may be varied from
those given in Examples 3 and 4, over a range previously set
forth in this specification. Examples of compositions con
taining different proportions of such components are as
follows:
Component
Composition
5A '5B 5C
5D
Low-profile resin systems
20% 25% 30% 40%
Asbestos
5% 10% 15% 25%
Filler
72% 62% 52% 32%
Polyethylene
3% 3% 3% 3%
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Various other examples might be given. The resin
system should be present"in sufficient amount to provide
adequate binder for the molded products and adequate plasticity
to the composition, and may range up to 60% or more of the
basic composition. The top limit of resin is usually a matter
of economics. The asbestos should be present in a significant
amount of at least 5% and its top amount may be limited by its
thickening effect on the composition. The nature and quantity
of the other filler may follow conventional practices, and the
amount may vary over a wide range from about 20% to about 80%
of the composition. The ^nature and quantity of abrasion
improving additive may follow the teachings of Patent No.
3,397,169.
The improved compositions made in accordance with l
the invention, as particularly exemplified by Examples 3 and 4,
.
provide an especially advantageous combination of properties.
The low-profile resin system provides precision moldings which
have zero shrink or substantially zero shrink, for example,
less than 0.0005 inch per inch, so that the moldings precisely
20 reflect the size and shape of the dies, and incur substantially
no warpage or distortion when removed from the dies. The
moldings can thus be made with good surface flatness and accuracy
and in intricate interfitting shapes as required, for example,
in the improved contactor; moldings shown in Fig. i and in other
applications where precise dimensions and alignment are required.
The moldings also have good dimensional stability so that the
design precision is maintained. Most importantly, the moldings
have good abrasion resistance which in combination with low-
profile characteristics of good surface flatness and accuracy
30 permits moldings to slide or otherwise bear on each other
.
without intervening wear plates and provides long wear life.
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The compositions also provide good electrical characteristics and satisfactory physical strength as needed in demanding electrical and mechanical applications.
The foregoing specification sets forth specific compositions and structures in considerable detail for the purpose of exemplifying the invention and indicating modifications. It will be understood that various other modifications may be made by those skilled in the art without departing from the spirit of the invention or the scope of the following claims.