BACKGROUND OF THE INVENTION
1.Field of the Invention
[0001] The present invention relates to a swash plate type compressor enabling an improved
lubrication performance of the sliding contact surfaces of a swash plate and a shoe
of the compressor.
2.Description of the Related Art
[0002] Hitherto, swash plate type compressors have been used as an apparatus for compressing
refrigerant gas in automotive climate control systems. Such swash plate type compressors
are equipped with a cylinder block assembly which has a plurality of cylinder bores
provided parallel to a drive shaft; a swash plate secured to the drive shaft so as
to be rotated by the drive shaft in the cylinder block assembly; pistons slidably
fitted to reciprocate in the cylinder bores to compress the refrigerant gas; and shoes
which are provided between the pistons and the swash plate which reciprocate the pistons
in response to the rotation of the swash plate.
[0003] In the above swash plate type compressor, high load and high sliding speed regularly
act on the sliding contact surfaces of the swash plate and the shoes. Accordingly
the sliding contact surfaces of the swash plate and the shoes are apt to become dry
due to insufficient supply of lubricating oil. This poses a problem especially where
aluminum or an aluminum alloy is used as the base metal of the swash plate because
of its light weight.
[0004] To solve this problem, as disclosed in Japanese Patent Application Laid-open No.
60-22080, at least the swash plate or the shoes employ aluminum or an aluminum alloy
as the base metal with the sliding contact surface thereof coated with an alloy which
contains molybdenum disulfide (MoS2) as the main component. Another solution has been
proposed in Japanese Patent Application Laid-open No. 2-130272, in which the surface
of the swash plate is plated with an alloy, in which tin is the main component, to
form a surface treating layer.
[0005] In the former solution, although the solid lubricant layer, containing molybdenum
disulfide as the main component, exhibits good lubricating performance, it has such
shortcomings as poor wear resistance and a short service life.
[0006] The latter solution provides a high degree of hardness and accordingly good wear
resistance; however, it is disadvantageous in that the lubricating performance is
not as high as that of the former solution.
[0007] Document US 5 056 417 D1 discloses a swash plate made of aluminum alloy and having
a contact surface of aluminum alloy. According to this document, the surface shall
be covered by a plating layer composed of an alloy containing tin as the main component.
As a further component, the group of copper, nickel, zink, lead and indium is mentioned
to achieve a sufficient protection of the aluminum surface of the swash plate. Thus,
the disclosure of this document is very similar to the disclosure of the already discussed
document JP 2-130272.
[0008] The document JP 8199327 discloses the swash plate of a compressor made of aluminum
/ steel which is thermally sprayed with copper / aluminum wherein this copper / aluminum
layer is further covered by a coating layer containing MoS
2 as main component. This coating layer serves as a solid lubricant layer. Thus, the
document discloses a design having two layers wherein, to improve the lubrication
between the swash plate and the shoes, an outer layer containing MoS
2 is used. Thus, the disclosure of this document is similar to that one of the document
JP 60-22080.
SUMMARY OF THE INVENTION
[0009] The present invention has been made with a view toward solving the problems with
the prior art described above, and it is an object of the invention to improve the
lubricating performance of the sliding contact surfaces of a swash plate and a shoe
and to maintain the improved lubricating performance for a long period of time.
[0010] This object is solved by the features of claim 1.
[0011] To this end, according to the present invention, there is provided a swash plate
type compressor equipped with: a cylinder block assembly which has a plurality of
cylinder bores provided parallel to a drive shaft; the drive shaft rotatably held
in the cylinder block assembly; a swash plate which is rotatably disposed to the drive
shaft in the cylinder block assembly; pistons slidably disposed in the cylinder bores;
and shoes which are slidably provided between the pistons and the swash plate, which
reciprocate the pistons in response to the rotation of the swash plate; wherein the
swash plate and the shoes are in sliding contact, a sliding contact surface of the
swish plate or the shoes being covered with a plating layer composed of tin or an
alloy containing tin as the main component, and the plating layer being covered with
a coating layer composed of molybdenum disulfide as the main component which surves
as a solid lubricant layer.
[0012] The plating layer composed of tin or an alloy containing tin as the main component
refers to an alloy plating layer in which the weight of tin is the greatest among
the other alloy components. The coating layer composed of molybdenum disulfide as
the main component refers to an alloy coating layer in which the weight of molybdenum
disulfide is the greatest among the contained components, except for a binder.
[0013] With this arrangement, the coating layer, which serves as solid lubricant layer,
is formed on the surface of the swash plate on the shoes which make sliding contact,
so that good lubricating performance can be achieved. The coating layer has the shortcoming
of poor wear resistance; hence, it is possible that the coating layer may wear or
peel after an extended period of use because of the high sliding contact load applied
when the pistons reach their top dead centers. However, the plating layer is applied
under the coating layer; the plating layer exhibits high wear resistance, and the
plating layer and the molybdenum disulfide in the coating layer have good affinity.
Further, the sliding contact surfaces of the swash plate and the shoes are periodically
subjected to high and low sliding contact load. Hence, when the sliding contact load
decreases intermittently, frictional heat causes the coating layer to flow to the
portion which has worn or peeled. Thus, the portion of the plating layer which has
been exposed due to wearing or peeling, is re-covered and repaired by the coating
layer as a solid lubricant layer.
[0014] As set forth above, whenever the sliding contact load decreases, the coating layer
is repaired, permitting high lubricating performance to be maintained for a long period
of time.
[0015] Thus, providing the coating layer mainly composed of molybdenum disulfide on the
plating layer composed of tin or the alloy, which contains tin as the main component,
improves its adhesion to the base metal. The coating layer also has a self-repairing
function. This enables long lasting high lubricating performance.
[0016] In a preferred form of the invention, the swash plate is made of aluminum or an aluminum
alloy, and the sliding contact surface of the swash plate is provided with the plating
layer as a surface treating layer.
[0017] With this arrangement, the adhesion between the plating layer and the base metal
is improved and the service life of the plating layer is extended, thus enabling high
lubricating performance to be maintained for a longer period of time.
[0018] In another preferred form of the invention, the aforesaid surface of the swash plate
is arranged so that primary crystal silicon particles are exposed. The plating layer
composed of tin or an alloy containing tin as the main component is provided as the
surface treating layer on the exposed surface of the swash plate.
[0019] With this arrangement, adhesion between the plating layer and the base metal is further
improved, allowing high lubricating performance to be maintained for an even longer
period of time.
[0020] In another preferred form of the invention, the coating layer on the plating layer
contains graphite as an additional component.
[0021] With this arrangement, the coating layer provides better lubrication between the
surface of the swash plate and the shoes than a coating layer which, excepting for
a binder, is composed only of molybdenum disulfide.
BRIEF DESCRIPTION OF THE DRAWINGS
[0022] The above and other objects, features and advantages of the present invention will
become apparent from the ensuing description of preferred embodiments of the present
invention in conjunction with the accompanying drawings wherein:
Fig. 1 is a sectional view illustrating the entire structure of a swash plate type
compressor having double-headed pistons according to an embodiment of the present
invention;
Fig. 2 is a schematic sectional view showing an essential section of the present invention,
namely, the surface of the swash plate main body, wherein the swash plate is provided
with a plating layer and also a coating layer, the coating layer being formed on the
plating layer; and
Fig. 3 is a schematic chart showing a comparison in lubricating performance between
a swash plate provided with the plating layer and the coating layer of the present
invention shown in Fig. 2 and plates provided with conventional surface layers.
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0023] A swash plate type compressor having double-headed pistons which is an embodiment
of the present invention will now be described in conjunction with Fig. 1 to Fig.
3.
[0024] Fig. 1 is a general sectional view showing the swash plate type compressor having
double-headed pistons according to the embodiment. In the drawing, a drive shaft 5
is rotatably journaled via bearings 6, 7 in a cylinder block assembly 4. A swash plate
8 is connected and secured to the drive shaft 5, and thrust bearings 9 are disposed
at the front and rear of the swash plate 8. The cylinder block assembly 4 is provided
with five cylinder bores 10 normally formed at equal intervals of 72 degrees; double-headed
pistons 11 are axially slidably fitted in the respective cylinder bores 10. The front
end opening of the cylinder block assembly 4 is closed by a valve plate 12 and a front
housing 13, and the rear end opening thereof is closed by a valve plate 14 and a rear
housing 15.
[0025] A recessed section 11a for receiving the outer periphery of the swash plate 8 is
formed at the center of each double-headed piston 11; sockets 11b are formed on the
axially opposed surfaces of each recessed section 11a. Hemispherical shoes 16 are
in sliding contact with the sliding contact surface of the swash plate 8 so that the
double-headed pistons 11 are reciprocated as the swash plate 8 rotates. This construction
is basically the same as that of a typical conventional swash plate type compressor
having double-headed pistons.
[0026] In this embodiment, the shoes employ a ferrous metal such as stainless steel as a
base metal. The swash plate 8 employs aluminum or an aluminum alloy as a base metal;
for example, an Al-Si-Cu-Mg type alloy or an aluminum alloy which does not contain
Si may be used as a base metal. It is preferable, however, to use an Al-Zr alloy which
contains primary crystal silicon in the form of hard coarse particles; Al-Zr alloy
features a high content of silicon, namely, about 13 to about 30 percent by weight,
which is higher than that of a eutectic composition, and has primary crystal silicon
in its matrix.
[0027] In this embodiment, a sliding contact surface 18 of the swash plate 8 which is in
sliding contact with the shoes 16 is configured as described below. As shown in the
sectional view in Fig. 2, the swash plate 8 is formed so that a plating layer 21 composed
of tin or an alloy containing tin as the main component is formed as a surface treating
layer on the surface of a swash plate main body 20 which employs, as the base metal
thereof, an Al-Zr alloy containing 17 percent by weight of silicon, and a coating
layer 22 mainly composed of molybdenum disulfide is formed as a solid lubricant layer
on the plating layer 21. Preferably, the coating layer 22 contains graphite as an
additional component to improve lubricating performance.
[0028] To form the foregoing plating layer, the surface of the swash plate 8 is polished
for finish, and primary crystal silicon particles 20a scattered in the base metal
of the swash plate main body 20 are arranged so that they project from the surface
and are exposed, then a publicly known tinning process is performed. This further
improves the adhesion between the plating layer 21 and the swash plate main body 20.
[0029] The plating layer 21 is comprised of tin and a metal selected from among zinc, lead,
and indium; hence, the plating layer 21 enables the frictional coefficient to be kept
low and permits higher hardness than a plating layer composed only of tin, thus leading
to high wear resistance.
[0030] In the composition described above, the sliding contact surfaces of the swash plate
8 and the shoes 16 are subjected to maximum sliding contact load when the pistons
11 are at their top dead centers, while they are subjected to minimum sliding contact
load when the pistons 11 are at their bottom dead centers.
[0031] Accordingly, with extended use of the swash plate type compressor, the wear resistance
of the coating layer 22 deteriorates and the coating layer 22 wears or peels when
the pistons 11 are at the top dead centers, and this causes the plating layer 21 to
be exposed on the surface.
[0032] The adhesion of the plating layer 21 with the base metal, however, is stronger than
that of the coating layer, and the plating layer 21 has higher hardness and higher
wear resistance; therefore, the plating layer 21 does not wear or peel. In addition,
the coating layer 22 exhibits good affinity for the plating layer 21. Further, the
shoes 16 are disposed at equal intervals, e.g. at 72-degree intervals in this embodiment,
along the circumference around the axis of the drive shaft 5; hence, the sliding contact
load does not act on the sliding contact surface when moving between the shoes 16.
For this reason, while the sliding contact load is not being applied to a shoe 16,
the coating layer composed primarily of molybdenum disulfide is melted by residual
frictional heat and flows to a worn or peeled portion of the coating layer 22 to re-cover
the exposed plating layer 21 thereby repairing the coating layer 22.
[0033] Thus, according to the embodiment, high lubricating performance of the sliding contact
surfaces of the swash plate 8 and the shoes 16 is maintained for a long period of
time.
[0034] Fig. 3 shows the comparison in lubricating performance between a coating A in which
an alloy coating layer employing molybdenum disulfide as the chief component is formed
directly on the surface of a base metal, e.g. a proposal disclosed in Japanese Patent
Application Laid-open No. 60-22080, a coating B in which an alloy plating layer employing
tin as the chief component is formed directly on the surface of a base metal, e.g.
a proposal disclosed in Japanese Patent Application Laid-open No. 2-130272, and a
coating C which is according to the present invention.
[0035] In the case of a coating A, high lubricating performance is observed at the beginning,
but afterward the performance suddenly deteriorates due to the occurrence of wearing
or peeling because of poor wear resistance. In the case of coating B, no marked change
is observed in lubricating performance after an extended period of time since coating
B has good adhesion to the base metal and provides high wear resistance; however,
coating B
per se does not have very good lubricating performance. In contrast to the conventional
publicly known coatings A and B, coating C, according to the embodiment indicated
by the chain line in Fig. 3, provides high lubricating performance imparted by the
coating layer 22 since the coating layer 22 develops no wearing or peeling in the
early stage of use. When coating C starts to wear or peel during an extended period
of use, it shows slight deterioration in lubricating performance; however, the repairing
action of the coating layer 22 described above makes it possible to maintain high
lubricating performance for a long time afterward.
[0036] The foregoing plating layer 21 and the coating layer 22 may be formed on the sliding
contact surfaces of the shoes 16 rather than on the surface of the swash plate main
body 20. In this case, the sliding contact surfaces of the shoes 16 are constantly
subjected to a sliding contact load; however, since the pistons 11 make one round
trip between the top dead center and the bottom dead center when the swash plate 8
makes one turn, the sliding contact load constantly changes, allowing the repairing
function of the coating layer 22 to be implemented when the sliding contact load is
low.
[0037] In general, the swash plate 8 is formed using aluminum or an aluminum alloy, and
the shoes 16 are fabricated using stainless steel or an other ferrous metal. Accordingly,
forming the plating layer 21 and the coating layer 22 on the surface of the swash
plate 8 provides good adhesion between the plating layer 21 and the base metal which
is superior to that between the plating layer and the shoes 16 made of steel or other
ferrous metal. This provides high wear resistance and makes it possible to maintain
high lubricating performance for longer period of time.
[0038] In the aforementiond embodiment, the plating layer 21 and the coating layer 22 have
been formed on the entire surface of the swash plate main body 20; however, the plating
layer 21 and the coating layer 22 may be formed on the entire surfaces of the shoes
16 as described above, or they may be formed partially on the sliding contact surface
of the swash plate 8 or the shoes 16.
[0039] Although the present invention has been described in connection with the preferred
embodiments, the invention is not limited thereto. For example, this invention is
not restricted to a swash plate type compressor having double-headed pistons. This
invention is also applicable to a swash plate type of variable displacement compressor
having single-headed pistons. It will be easily understood by those of ordinary skill
in the art that variations and modifications can be easily made within the scope of
this invention as defined by the appended claims.
[0040] A swash plate type compressor that provides long lasting high lubricating performance
to the sliding contact surfaces of a swash plate and shoes. The surface of the swash
plate or the shoes on which the swash plate comes in sliding contact with the shoes
is provided with an alloy plating layer, in which tin is the main component, as a
surface treating layer. An coating layer, in which molybdenum disulfide is the main
component, is formed as a solid lubricant layer on the foregoing plating layer. Preferably,
the swash plate is made of aluminum or an aluminum alloy, and its surface is provided
with the plating layer and the coating layer. More preferably, the coating layer contains
graphite.
1. A swash plate type compressor comprising:
a cylinder block assembly (4) which has a plurality of cylinder bores (10) provided
in parallel to a drive shaft (5);
said drive shaft (5) rotatably held in said cylinder block assembly (4);
a swash plate (8) which is rotatably disposed to said drive shaft (5) in said cylinder
block assembly (4);
pistons (11) slidably disposed in said cylinder bores (10); and
shoes (16) which are slidably provided between said pistons (11) and said swash plate
(8), which reciprocate said pistons (11) in response to the rotation of said swash
plate (8); wherein
said swash plate (8) and said shoes (16) come in sliding contact, and a sliding contact
surface of either said swash plate (8) or said shoes (16) is covered with a plating
layer composed of tin or an alloy containing tin as the main component, as a surface
treating layer, characterized in that the plating layer is covered by a coating layer containing molybdenum disulfide as
the main component which serves as a solid lubricant layer,
wherein friction heat produced between said swash plate (8) and said shoes (16)
causes said coating layer to flow to portions which have been worn or peeled.
2. A swash plate type compressor according to claim 1, wherein said swash plate (8) is
made of aluminum or an aluminum alloy, and said sliding contact surface of said swash
plate (8) is provided with said plating layer, as said surface treating layer.
3. A swash plate type compressor according to claim 2, wherein the surface of said swash
plate (8) is arranged so that primary crystal silicon particles are exposed, and said
plating layer is provided as said surface treating layer on said exposed surface of
said swash plate (8).
4. A swash plate type compressor according to claim 1, wherein the coating layer containing
graphite as an additional component.
1. Taumelscheibenkompressor mit
einer Zylinderblockeinheit (4), die eine Vielzahl von Zylinderbohrungen (10) aufweist,
die parallel zu einer Antriebswelle (5) vorgesehen sind;
wobei die Antriebswelle (5) drehbar in der Zylinderblockeinheit (4) gehalten wird;
einer Taumelscheibe (8), die drehbar zur Antriebswelle (5) in der Zylinderblockeinheit
(4) angeordnet ist;
Kolben (11), die gleitend in den Zylinderbohrungen (10) angeordnet sind; und
Schuhen (16), die gleitend zwischen den Kolben (11) und der Taumelscheibe (8) vorgesehen
sind und die Kolben (11) in Abhängigkeit von der Drehung der Taumelscheibe (8) hin-
und herbewegen; wobei
die Taumelscheibe (8) und die Schuhe (16) in Gleitkontakt treten und eine Gleitkontaktfläche
der Taumelscheibe (8) oder der Schuhe (16) mit einer Plattierungsschicht, die aus
Zinn oder einer Zinn als Hauptkomponente enthaltenden Legierung besteht, als Oberflächenbehandlungsschicht
bedeckt ist,
dadurch gekennzeichnet, dass die Plattierungsschicht mit einer Überzugsschicht bedeckt ist, die Molybdändisulfid
als Hauptkomponente enthält und als feste Schmiermittelschicht dient,
wobei zwischen der Taumelscheibe (8) und den Schuhen (16) erzeugte Reibungswärme bewirkt,
dass die Überzugsschicht zu Abschnitten strömt, die verschlissen oder abgeblättert
sind.
2. Taumelscheibenkompressor nach Anspruch 1, bei dem die Taumelscheibe (8) aus Aluminium
oder einer Aluminiumlegierung hergestellt ist und die Gleitkontaktfläche der Taumelscheibe
(8) mit der Plattierungsschicht als Oberflächenbehandlungsschicht versehen ist.
3. Taumelscheibenkompressor nach Anspruch 2, bei dem die Oberfläche der Taumelscheibe
(8) so ausgebildet ist, dass Partikel aus Primärkristallsilicium freiliegen, und die
Plattierungsschicht als Oberflächenbehandlungsschicht auf der freiliegenden Oberfläche
der Taumelscheibe (8) vorgesehen ist.
4. Taumelscheibenkompressor nach Anspruch 1, bei dem die Überzugsschicht Graphit als
zusätzliche Komponente enthält.
1. Compresseur du type à plateau oscillant comprenant :
un ensemble de bloc cylindres (4) qui a une pluralité d'alésages de cylindre fournis
parallèlement à un arbre d'entraînement (5) ;
ledit arbre d'entraînement (5) étant maintenu, pour tourner, dans ledit ensemble de
bloc cylindres (4) ;
un plateau oscillant (8) qui est disposé, pour tourner, sur ledit arbre d'entraînement
(5) dans ledit ensemble de bloc cylindres (4) ;
des pistons (11) disposés, pour coulisser, dans lesdits alésages de cylindre 10) ;
et
des patins (16) qui sont fournis, pour coulisser, entre lesdits pistons (11) et ledit
plateau oscillant (8), qui font effectuer un mouvement de va-et-vient aux dits pistons
(11) en réponse à la rotation dudit plateau oscillant (8) ; dans lequel
ledit plateau oscillant (8) et lesdits patins (16) viennent en contact coulissant,
et une surface de contact coulissant de l'un ou l'autre desdits plateaux oscillants
(8) ou desdits patins (16) est recouverte d'une couche de plaquage composée d'étain
ou d'un alliage contenant de l'étain comme composant principal, qui sert de couche
de traitement de surface, caractérisée en ce que la couche de plaquage est recouverte d'une couche de revêtement contenant du bisulfure
de molybdène comme composant principal qui sert de couche de lubrifiant solide,
dans lequel la chaleur provoquée par le frottement produite entre ledit plateau oscillant
(8) et lesdits patins (16) provoque une usure ou un arrachage de ladite couche de
revêtement et son écoulement vers des parties qui ont été usées ou arrachées.
2. Compresseur du type à plateau oscillant selon la revendication 1, dans lequel ledit
plateau oscillant (8) est composé d'aluminium ou d'un alliage d'aluminium, et ladite
surface de contact coulissant dudit plateau oscillant (8) est munie de ladite couche
de plaquage, comme étant ladite couche de traitement de surface.
3. Compresseur du type à plateau oscillant selon la revendication 2, dans lequel la surface
dudit plateau oscillant (8) est agencée de telle manière que des particules de silicium
à cristaux primaires sont exposées, et que ladite couche de plaquage est fournie comme
étant ladite couche de traitement de surface sur ladite surface exposée dudit plateau
oscillant (8).
4. Compresseur du type à plateau oscillant selon la revendication 1, dans lequel la couche
de revêtement contient du graphite comme composant supplémentaire.