Hinge mechanism for a variable displacement compressor
09765764 ยท 2017-09-19
Assignee
Inventors
Cpc classification
F04B27/1054
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B27/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T74/18056
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F04B27/1072
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A hinge assembly for coupling a rotor assembly to a swash plate assembly in a variable displacement compressor includes a hub integrally formed with the swash plate assembly and a pair of spaced part arms coupled to the hub and extending outwardly therefrom. Each of the arms having an aperture formed in a distal end thereof. At least one support member extending from the rotor assembly and having a slot formed therein. A hinge pin is slideably received in the slot of the at least one support member and received in the aperture of each of the arms to hingedly couple the arms to the at least one support member.
Claims
1. A hinge assembly for coupling a rotor assembly to a swash plate assembly in a variable displacement compressor comprising: a hub integrally formed with the swash plate assembly; a pair of spaced part arms coupled to the hub and extending outwardly therefrom, each of the arms having an aperture, formed in a distal end thereof, wherein each of the arms is received within an aperture formed in the hub and retained therein by at least one locating pin; a pair of support members extending from the rotor assembly, each of the pair of support members having a slot formed therein; and a hinge pin slideably received in the slot of each of the pair of support members and received in the aperture of each of the arms to hingedly couple the arms to the pair of support members.
2. The hinge assembly of claim 1, wherein the hub includes a pair of apertures and the arms are press fit in the apertures.
3. The hinge assembly of claim 1, wherein the hub and a swash plate of the swash plate assembly are formed from one of a copper alloy and an aluminum alloy, the aluminum alloy having a silicon content greater than 5% by mass.
4. The hinge assembly of claim 1, wherein each of the arms is formed from steel.
5. The hinge assembly of claim 1, wherein the distal end of each of the arms is spherical shaped.
6. The hinge assembly of claim 1, wherein the slot of each of the pair of support members is kidney shaped.
7. The hinge assembly of claim 1, wherein each of the support members is interposed between the pair of spaced apart arms.
8. The hinge assembly of claim 1, further comprising a fitted sleeve interposed between the pair of arms and receiving the hinge pin to maintain a position of the hinge pin.
9. The hinge assembly of claim 1, further comprising a guide received within an aperture centrally formed in the swash plate assembly.
10. The hinge assembly of claim 9, wherein the guide includes at least one flange extending radially outwardly therefrom, the at least one flange received in at least one recess formed in the swash plate assembly.
11. A variable displacement compressor comprising: a housing including a cylinder block and a drive shaft disposed therein, the cylinder block having a plurality of cylinders formed therein and a plurality of pistons each received within each of the cylinders; a rotor rotatably coupled to the drive shaft; a swash plate assembly slideably coupled to the pistons to cause a reciprocating motion thereof, the swash plate assembly including a swash plate and a hub integrally formed with the swash plate; a hinge assembly operatively and pivotally coupling the swash plate assembly to the rotor, the hinge assembly including: a pair of arms press fit into a pair of apertures formed in the hub and extending outwardly therefrom, wherein each of the pair of arms is retained in the hub by at least one locating pin; at least one support member extending from the rotor and having a slot formed therein; and a hinge pin slideably received in the slot of the at least one support member and hingedly coupling the arms to the at least one support member.
12. The hinge assembly of claim 11, wherein the swash plate and the hub of the swash plate assembly are formed from one of a copper alloy and aluminum alloy and one of coated with a low friction material and applied with a low friction material.
13. The hinge assembly of claim 11, wherein the slot is kidney shaped.
14. The hinge assembly of claim 11, further comprising a fitted sleeve interposed between the pair of arms and receiving the hinge pin to maintain a position of the hinge pin.
15. The hinge assembly of claim 11, further comprising a guide received within an aperture centrally formed in the swash plate assembly.
16. The hinge assembly of claim 15, wherein the guide includes at least one flange extending radially outwardly therefrom, the at least one flange received in at least one recess formed in the swash plate assembly.
17. A variable displacement compressor comprising: a housing including a cylinder block and a drive shaft disposed therein, the cylinder block having a plurality of cylinders formed therein and a plurality of pistons each received within each of the cylinders; a rotor assembly rotatingly coupled to the drive shaft and including a pair of support members extending therefrom, each of the pair of support members having a slot formed therein; a swash plate assembly having an aperture and at least one recess formed therein, the swash plate assembly operatively engaging with the plurality of pistons to cause a reciprocal motion thereof, the swash plate assembly including a swash plate and a hub integrally formed with the swash plate; a pair of arms coupled to the hub and extending outwardly therefrom, each of the pair of arms having an aperture formed in a distal end thereof, wherein each of the arms is received within an aperture formed in the hub and retained therein by at least one locating pin; a hinge pin slideably received in the slot formed in each of the pair of support members and the aperture of each of the arms to hingedly couple the rotor assembly to the swash plate assembly; and a guide received in the aperture of the swash plate assembly, the guide having at least one flange received in the at least one recess of the swash plate assembly.
18. A hinge assembly for coupling a rotor assembly to a swash plate assembly in a variable displacement compressor comprising: a hub integrally formed with the swash plate assembly; a pair of spaced apart arms coupled to the hub and extending outwardly therefrom, each of the arms having an aperture formed in a distal end thereof, wherein each of the arms is received within an aperture formed in the hub and retained therein by at least one locating pin; at least one support member extending from the rotor assembly and having a slot formed therein; and a hinge pin slideably received in the slot of the at least one support member and received in the aperture of each of the arms to hingedly couple the arms to the at least one support member.
19. A variable displacement compressor comprising: a housing including a cylinder block and a drive shaft disposed therein, the cylinder block having a plurality of cylinders formed therein and a plurality of pistons each received within each of the cylinders; a rotor assembly rotatingly coupled to the drive shaft and including at least one support member extending therefrom, the at least one support member having a slot formed therein; a swash plate assembly having an aperture and at least one recess formed therein, the swash plate assembly operatively engaging with the plurality of pistons to cause a reciprocal motion thereof, the swash plate assembly including a swash plate and a hub integrally formed with the swash plate; a pair of arms coupled to the hub and extending outwardly therefrom, each of the pair of arms having an aperture formed in a distal end thereof, wherein each of the arms is received within an aperture formed in the hub and retained therein by at least one locating pin; a hinge pin slideably received in the slot formed in each of the pair of support members and the aperture of each of the arms to hingedly couple the rotor assembly to the swash plate assembly; and a guide received in the aperture of the swash plate assembly, the guide having at least one flange received in the at least one recess of the swash plate assembly.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The above, as well as other advantages of the present invention, will become readily apparent to those skilled in the art from the following detailed description of a preferred embodiment when considered in the light of the accompanying drawings in which:
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DETAILED DESCRIPTION OF EXEMPLARY EMBODIMENTS OF THE INVENTION
(7) The following detailed description and appended drawings describe and illustrate various exemplary embodiments of the invention. The description and drawings serve to enable one skilled in the art to make and use the invention, and are not intended to limit the scope of the invention in any manner. The terms upper, lower, horizontal, and vertical are used with respect to the direction of gravity.
(8)
(9) Referring to
(10) The swash plate assembly 18 includes a centrally disposed aperture 27 for receiving the drive shaft 24 therethrough. The swash plate assembly 18 includes a substantially flat swash plate 28 and a hub 30. The swash plate 28 is variably angled relative to the rotor assembly 20 between a minimum angle and a maximum angle. The swash plate 28 is adapted to adjust the capacity of the compressor 10 by operating between the minimum angle and the maximum angle such as described in U.S. Pat. No. 7,021,193, hereby incorporated herein by reference in its entirety. In the embodiment shown, the hub 30 is integrally formed with the swash plate 28 and extends outwardly from a surface 31 of the swash plate 28. The swash plate assembly 18 is formed of a copper alloy such as described in U.S. Pat. No. 5,974,946, hereby incorporated herein by reference in its entirety. The swash plate assembly 18 can also be formed of an aluminum alloy such as described in U.S. Pat. No. 6,116,145, hereby incorporated herein by reference in its entirety. The aluminum alloy can have a silicon content greater than 5% by mass. Although, other high-strength materials can be used without departing from the scope of the present disclosure. Additionally, the swash plate assembly 18 can contain surfaces treated with, applied with, and/or coated with a seizure resistant layer such as tin, MoS.sub.2, PTFE, or any other low friction treatment or coating, for example.
(11) As more clearly shown in
(12) The hinge assembly 26 includes the support members 40 of the rotor assembly 20 and the arms 34 received in the apertures 32 of the hub 30. The arms 34 are spaced apart to receive the support members 40 therebetween and align the apertures 38 of the arms 34 with the slots 44 of the support members 40. The hinge assembly 26 further includes a hinge pin 46 that extends between the arms 34 and is received through the apertures 38 and slidingly received in the slots 44 of the support members 40. The hinge pin 46 is press fit through a fitted sleeve 48 to maintain the hinge pin 46 in place. The hinge pin 46 can be formed from any durable material such as steel, titanium, aluminum, other metal or metal alloy, or any other material as desired. The sleeve 48 is be formed from a lightweight material such as aluminum, for example.
(13) As illustrated in
(14) The compressor 10 is referred to as a variable displacement compressor because a total displacement, due to an amount of the reciprocal motion of the pistons 16 within the cylinders 14, may be adjusted by changing the inclination angle of the swash plate 28, thereby changing a refrigerant pumping capacity of the compressor 10. In operation, the drive shaft 24 is caused to rotate by the auxiliary drive means which causes the rotor assembly 20 to rotate. The rotation of the rotor assembly 20 causes the swash plate assembly 18 to rotate. The rotation of the swash plate assembly 18 causes the pistons 16 to reciprocate within the cylinders 14 of the cylinder block 12 through sliding or rolling engagement with the bearing shoes 17.
(15) By changing the inclination angle of the swash plate 28, a length of a stroke of the pistons 16 is changed. The swash plate 28 is caused to change inclination angles between a minimum angle and a maximum angle. The minimum angle of the swash plate 28 causes the pistons 16 to operate at a minimum displacement and the maximum angle of the swash plate 28 causes the pistons 16 to operate at a maximum displacement. The inclination of the swash plate 28 changes based on pressure differentials within the compressor 10 as is commonly known and disclosed in U.S. Pat. No. 7,021,193, hereby incorporated herein by reference in its entirety. At the maximum angle, the hinge pin 46 is caused to move slidably and outwardly with respect to the drive shaft 24 within the slots 44 of the support members 40. Conversely, at the minimum angle, the hinge pin 46 is caused to move slidably and inwardly with respect to the drive shaft 24 within the slots 44 of the support members 40. The shape of the slots 44 of the support members 40 maintain a constant TDC position of the pistons 16 regardless of the angle of the swash plate 28 by supporting a resulting load acting on the swash plate 28 from the reciprocating motion of the pistons 16.
(16) The guide 50 allows the swash plate 28 to move axially along the drive shaft 24 and facilitates the varying of the inclination angle of the swash plate 28. The helical spring 25 urges the guide 50 to move axially along the drive shaft 24 in a direction away from the rotor assembly 20. The swash plate 28 engages with the guide 50 and the flanges 52 formed thereon to facilitate smooth transition of the swash plate 28 from minimum angle to maximum angle and vice versa. The recesses 54 of the swash plate 28 cooperate with the flanges 52 to militate against the swash plate 28 tilting or wobbling about an axis normal to a longitudinal axis of the drive shaft 24. The flanges 52 further facilitate a reduction of friction of the hinge assembly 26.
(17) As the swash plate 28 changes inclination angles, the hinge assembly 26 maintains a low hysteresis and provides a constant support and maintains balance under a resultant load of the swash plate 28 which causes the TDC position of the pistons 16 to remain substantially constant. The hinge assembly 26 is easily assembled and allows the swash plate assembly 18 to exhibit necessary bearing properties. The hinge assembly 26 is durable and militates against friction.
(18) From the foregoing description, one ordinarily skilled in the art can easily ascertain the essential characteristics of this invention and, without departing from the spirit and scope thereof, can make various changes and modifications to the invention to adapt it to various usages and conditions.