Claims
- 1. A compressor having a refrigerant gas passage connected to a refrigerant circuit separately provided from the compressor, said compressor having a plurality of reciprocable pistons for compressing refrigerant gas, said compressor comprising:
- a housing having a refrigerant discharge chambers a refrigerant suction chamber, and a crank chamber;
- a plurality of cylinder bores disposed in the housing, said cylinder bores communicating with said discharge chamber and said suction chamber and each of said cylinder bores accommodating one of said pistons;
- a drive shaft rotatably supported in the housing;
- a swash plate supported on the drive shaft for integral rotation with inclining motion with respect to the drive shaft in the crank chamber to drive the pistons, said swash plate being moveable between a maximum inclined angle and a minimum inclined angle greater than zero; and
- means for selectively connecting and disconnecting said refrigerant circuit to and from the refrigerant gas passage in direct association with the variable inclination of the swash plate.
- 2. A compressor operated in accordance with operating conditions computed by a computer electrically connected to the compressor, and having a refrigerant gas passage connected via an evaporator to a refrigerant circuit separately provided from the compressor, said compressor having a plurality of reciprocable pistons for compressing gas, said compressor further comprising:
- a housing having a refrigerant discharge chamber and a refrigerant suction chamber;
- a crank chamber disposed in the housing;
- a plurality of cylinder bores communicating with said refrigerant gas passage in the housing, each cylinder bore communicating with said discharge chamber and said suction chamber and accommodating one of said pistons;
- a drive shaft rotatably supported in the housing;
- a swash plate supported on the drive shaft for driven rotation therewith and variable inclination relative thereto in the crank chamber to drive the pistons, said swash plate being moveable between a maximum inclined angle and a minimum inclined angle greater than zero;
- a first passage for connecting the crank chamber and the suction chamber for delivering the refrigerant gas from the crank chamber to the suction chamber;
- a second passage for connecting the discharge chamber and the crank chamber for delivering the refrigerant gas from the discharge chamber to the crank chamber;
- driving means for driving the swash plate in accordance with an electric signal indicative of the operating conditions of the compressor, said signal being transmitted from the computer;
- disconnecting means for disconnecting said refrigerant circuit and the refrigerant gas passage when the swash plate is at the minimum inclined angle; and
- a circulating passage including the first passage and the second passage, said circulating passage being formed upon disconnection of the refrigerant circuit and the refrigerant.
- 3. A compressor as set forth in claim 2, wherein said first passage include an orifice.
- 4. A compressor as set forth in claim 2, wherein said driving means includes a drive valve for selectively opening and closing the second passage.
- 5. A compressor as set forth in claim 4, wherein said valve in an electromagnetic valve.
- 6. A compressor as set forth in claim 4 further comprising a control valve for controlling differences between pressures in the crank chamber and in the suction chamber to hold the swash plate at the inclining angle based on the difference between the two pressures.
- 7. A compressor as set forth in claim 6, wherein the control valve controls the quantity of the refrigerant gas flowing in the refrigerant gas passage which communicates with the suction chamber.
- 8. A compressor as set forth in claim 7, wherein said control valve is coupled responsively to the refrigerant gas passage upstream of the disconnecting means.
- 9. A compressor as set forth in claim 7, wherein said control valve is disposed in the second passage for opening the second passage in accordance with the decrease of the pressure of the refrigerant gas which is sucked into the second passage.
- 10. A compressor as set forth in claim 7, wherein said control valve includes a bellows capable of selectively contracting and expanding in accordance with the magnitude of the pressure of the refrigerant gas for changing the inclining angle of the swash plate.
- 11. A compressor as set forth in claim 6, wherein said control valve is formed integrally with the drive valve.
- 12. A compressor as set forth in claim 6, wherein the first passage extends through an area located between the spool and housing.
- 13. A compressor as set forth in claim 6, wherein said first passage extends within the drive shaft, said first passage having an inlet communicating with said crank chamber and an outlet communicating with an area defined by two ends of the moving region of the spool.
- 14. A compressor as set forth in claim 13 further comprising a seal member disposed between the drive shaft and housing for airtightly sealing the crankcase, wherein an outlet of the first passage in disposed adjacent to the seal member.
- 15. A compressor as set forth in claim 2, wherein said disconnecting means is disposed between the evaporator and the cylinder bores.
- 16. A compressor as set forth in claim 2, wherein said disconnecting means is disposed between the evaporator and the suction chamber.
- 17. A compressor as set forth in claim 2, wherein said disconnecting means includes a spool supported in the housing, said spool being arranged to slide along the refrigerant passage.
- 18. A compressor as set forth in claim 17, wherein the spool in supported on the drive shaft to move in the axial direction thereof.
- 19. A compressor as set forth in claim 18 further comprising a bearing for supporting the drive shaft, wherein the spool and the swash plate are operably connected by way of the bearing.
- 20. A compressor as set forth in claim 19, wherein the spool forceably holds the swash plate at the minimum angle position when the spool disconnects the refrigerant gas passage and the refrigerant circuit.
- 21. A compressor as set forth in claim 2, wherein the second passage opens to the crank chamber and directed towards the swash plate.
- 22. A compressor operated in accordance with operating conditions computed by a computer connected to the compressor, and having a refrigerant gas passage connected via an evaporator to a refrigerant circuit separately provided from the compressor, said compressor having a plurality of reciprocable pistons for compressing the refrigerant gas, said compressor comprising:
- a housing having a refrigerant discharge chamber and a refrigerant suction chamber;
- a crank chamber disposed in the housing;
- a plurality of cylinder bores communicating with said refrigerant gas passage in the housing, each cylinder bore communicating with said discharge chamber and said suction chamber and accommodating one of said pistons;
- a drive shaft rotatably supported by the housing;
- a swash plate supported on the drive shaft for integral rotation with inclining motion with respect to the drive shaft in the crank chamber for driving the pistons, said swash plate being moveable between a maximum inclined angle and a minimun inclined angle;
- a first passage for connecting the crank chamber and the suction chamber for delivering the refrigerant gas from the crank chamber to the suction chamber, said first passage having an orifice;
- a second passage for connecting the discharge chamber and the crank chamber for delivering the refrigerant gas from the discharge chamber to the crank chamber;
- drive means for driving the swash plate in accordance with an electric signal indicative of the operating conditions of the compressor, said signal being transmitted from the computer, and said drive means including a drive valve disposed in the second passage for selectively opening and closing the second passage;
- a spool operably connected to the swash plate and supported on the drive shaft to slide in the axial direction thereof in the passage between the evaporator and the cylinder bores, for disconnecting said refrigerant circuit and the refrigerant gas passage and connecting the first circuit with the second circuit to form a circulating circuit of the refrigerant gas when the swash plate is at the minimum inclined angle; and
- a control valve for controlling differences between pressures in the crank chamber and in the suction chamber to hold the swash plate at the inclining angle based on the difference between the two pressures, said control valve being formed integrally with the drive valve.
- 23. A compressor having a refrigerant gas passage selectively connected to and disconnected from a refrigerant circuit separately provided from the compressor, said compressor having a plurality of pistons reciprocal in a housing for compressing gas, said compressor further comprising:
- a drive shaft rotatably supported by the housing;
- a swash plate supported on the drive shaft for driven rotation therewith and variable inclination relative thereto to drive the pistons, said swash plate being movable between a maximum inclined angle and a minimum inclined angle greater than zero;
- disconnecting means for disconnecting said refrigerant circuit from said refrigerant gas passage when the swash plate is at said minimum inclined angle; and
- control means coupled responsively to said refrigerant gas passage upstream of said disconnecting means for controlling the inclined angle of the swash plate in accordance with the pressure of the refrigerant gas sucked from the refrigerant circuit into the refrigerant gas passage.
- 24. A compressor having a refrigerant gas passage connected to a refrigerant circuit separately provided from the compressor, said compressor having a plurality of reciprocable pistons for compressing refrigerant gas, said compressor further comprising:
- a housing having a refrigerant discharge chamber and a refrigerant suction chamber;
- a plurality of cylinder bores disposed in the housing, said cylinder bores communicating with said discharge chamber and said suction chamber, and each of said cylinder bores accommodating one of said pistons;
- a drive shaft rotatably supported in the housing;
- a swash plate supported on the drive shaft for driven rotation therewith and variable inclination relative thereto in a crank chamber to drive the pistons, said swash plate being movable between a maximum inclined angle and a minimum inclined angle greater than zero; and
- disconnecting means for disconnecting said refrigerant circuit from the refrigerant gas passage when the swash plate is at the minimum inclined angle;
- said refrigerant gas passage including:
- a first passage for connecting the crank chamber and the suction chamber for delivering the refrigerant gas from the crank chamber to the suction chamber;
- a second passage for connecting the discharge chamber and the crank chamber for delivering the refrigerant gas from the discharge chamber to the crank chamber; and
- a circulating passage including the first passage and the second passage, said circulating passage being formed upon disconnection of the refrigerant circuit and the refrigerant gas passage.
- 25. A compressor as set forth in claim 24, wherein said first passage includes an orifice.
- 26. A compressor as set forth in claim 25 further comprising control means for controlling the inclining angle of the swash plate in accordance with the magnitude of the pressure magnitude of the refrigerant gas sucked from the refrigerant circuit into the refrigerant gas passage.
- 27. A compressor as set forth in claim 26, wherein said control means includes a valve for opening the second passage in accordance with the magnitude of the pressure of the refrigerant gas.
- 28. A compressor as set forth in claim 27, wherein said control means is coupled responsively to said refrigerant gas passage upstream of said disconnecting means.
- 29. A compressor as set forth in claim 28, wherein a computer apart from the compressor is electrically connected to the compressor, said computer computing conditions relative to the operation of the compressor.
- 30. A compressor as set forth in claim 29 further comprising means for driving the swash plate in accordance with an electric signal indicative of the operating conditions of the compressor, said signal being transmitted from the computer.
- 31. A compressor as set forth in claim 30, wherein said driving means includes a valve for selectively opening and closing the second passage.
- 32. A compressor as set forth in claim 30, wherein said driving means is formed integrally with the control means.
- 33. A compressor having a refrigerant gas passage connected to a refrigerant circuit separately provided from the compressor, said compressor having a plurality of reciprocable pistons for compressing gas, said compressor further comprising:
- a housing having a refrigerant discharge chamber and a refrigerant suction chamber;
- a plurality of cylinder bores disposed in the housing, said cylinder bores communicating with said discharge chamber and said suction chamber, and each of said cylinder bores accommodating one of said pistons;
- a drive shaft rotatably supported in the housing;
- a swash plate supported on the drive shaft for driven rotation therewith and variable inclination relative thereto in a crank chamber to drive the pistons, said swash plate being movable between a maximum inclined angle and a minimum inclined angle greater than zero; and
- disconnecting means for disconnecting said refrigerant circuit from the refrigerant gas passage when the swash plate is at the minimum inclined angle;
- said disconnecting means including a spool supported in the housing, said spool being supported on the drive shaft to move in the axial direction thereof and constructed to slide along the refrigerant passage.
- 34. A compressor having a refrigerant gas passage selectively connected to and disconnected from a refrigerant circuit separately provided from the compressor, said compressor having a plurality of pistons reciprocal in a housing for compressing gas, said compressor further comprising:
- a drive shaft rotatably supported by the housing;
- a swash plate supported on the drive shaft for driven rotation therewith and variable inclination relative thereto to drive the pistons, said swash plate being movable between a maximum inclined angle and a minimum inclined angle greater than zero;
- disconnecting means for disconnecting said refrigerant circuit from said refrigerant gas passage when the swash plate is at said minimum inclined angle; and
- control means for controlling the inclined angle of the swash plate to change the displacement of the compressor, said control means being actuated to minimize the inclined angle of the swash plate to establish a substantially non-operating compressor status in response to an electrical signal.
- 35. A compressor having a refrigerant gas passage selectively connected to and disconnected from a refrigerant circuit separately provided from the compressor, said compressor having a plurality of pistons reciprocal in a housing for compressing gas, said compressor further comprising:
- a drive shaft rotatably supported by the housing;
- a swash plate supported on the drive shaft for driven rotation therewith and variable inclination relative thereto to drive the pistons, said swash plate being movable between a maximum inclined angle and a minimum inclined angle greater than zero;
- disconnecting means for disconnecting said refrigerant circuit from said refrigerant gas passage when the swash plate is at said minimum inclined angle; and
- control means for controlling the inclined angle of the swash plate to change the displacement of the compressor, said control means including actuating means for actuating the disconnecting means to control the gas flowing into the compressor.
- 36. A compressor having a refrigerant gas passage selectively connected to and disconnected from a refrigerant circuit separately provided from the compressor, said compressor having a housing having a front end and a rear end, a cylinder bore within said housing, a piston within said cylinder bore, means defining a suction region a said rear end of the housing, a crank chamber within said housing, and means defining a discharge region at said rear end of the housing, wherein refrigerant gas containing misted oil is supplied to said suction region from the refrigerant circuit, compressed in said cylinder bore by said piston and discharged to the discharge region, said compressor further comprising:
- a drive shaft rotatably supported in said housing by a bearing within said crank chamber at said front end of the housing and bearing means at said rear end of the housing;
- a swash plate supported on the drive shaft for driven rotation therewith and variable inclination relative thereto to drive the piston, said swash plate being movable between a maximum inclined angle and a minimum inclined angle greater than zero; and
- a connecting passage extending within the drive shaft connecting, and for drawing said refrigerant gas from, the crank chamber to the suction region, said passage having an inlet opening near said shaft bearing at the front end of the housing, whereby said misted oil in the refrigerant gas lubricates the bearing as the refrigerant gas flows from the crank chamber into the passage while the swash plate is at its said minimum inclined angle.
- 37. The compressor as set forth in claim 36, further comprising:
- an annular seal interposed between the drive shaft and the housing at said front end of the housing;
- said connecting passage inlet opening being open to said seal whereby said misted oil is supplied thereto.
- 38. A compressor having a refrigerant gas passage connected to a refrigerant circuit separately provided from the compressor, said compressor having a housing that includes a suction region, a crank chamber, and a discharge region, wherein refrigerant gas contains misted oil and is supplied to said suction region from the refrigerant circuit, compressed by a piston reciprocally moving in a cylinder bore and discharged to the discharge region, said compressor further comprising:
- a drive shaft rotatably supported by the housing;
- a swash plate supported on the drive shaft for driven rotation therewith and variable inclination relative thereto to drive the pistons, said swash plate being movable between a maximum inclined angle and a minimum inclined angle greater than zero;
- disconnecting means for disconnecting said refrigerant circuit from said refrigerant gas passage when the swash plate is at said minimum inclined angle;
- said refrigerant gas passage including:
- a first passage for connecting the crank chamber and the suction region for delivering the refrigerant gas from the crank chamber to the suction region, said first passage including a connecting passage extending within the drive shaft along an axis thereof;
- a second passage for connecting the discharge region and the crank chamber for delivering the refrigerant gas from the discharge region to the crank chamber; and
- a circulating passage including the first passage and the second passage, said circulating passage being formed upon disconnection of the refrigerant circuit and the refrigerant gas passage.
- 39. The compressor as set forth in claim 38, further comprising:
- means interposed therebetween for slidably contacting the drive shaft and the housing; and
- said connecting passage is open to said slidably contacting means to supply the misted oil thereto.
- 40. The compressor as set forth in claim 39, wherein said slidably contacting means includes a seal member and a bearing member both interposed between the drive shaft and the housing.
- 41. A compressor having a cylinder block that includes a cylinder bore, said cylinder block having a front end and a rear end opposed to the front end, a front housing connected to the front end of the cylinder block and forming a crank chamber, and a rear housing connected to said rear end of the cylinder block and forming a suction chamber, wherein refrigerant gas containing misted oil is supplied to the compressor from an external refrigerant circuit, compressed and discharged from the compressor, said compressor comprising:
- a drive shaft rotatably supported by the cylinder block and the front housing adjacent to said front end of the cylinder block, the drive shaft having an outer surface and extending through the crank chamber from said front end of the housing to said rear housing;
- a swash plate supported on the drive shaft in the crank chamber for driven rotation therewith;
- a piston accommodated in the cylinder bore and coupled to the swash plate, whereby rotation of the swash plate is converted to reciprocal movement of the piston in the cylinder bore to compress the refrigerant gas;
- slidably contacting means within the crank chamber and interposed between the front housing and the drive shaft adjacent to said front end of the housing; and
- a gas passage extending within the drive shaft and connecting the crank chamber to the suction chamber, the passage having an opening near said slidably contacting means in the crank chamber, whereby the refrigerant gas in the crank chamber flows to the passage through the slidably contacting means whereby the misted oil in the gas lubricates the slidably contacting means.
- 42. The compressor as set forth in claim 41, wherein said swash plate is supported on the drive shaft for variable inclination between a maximum inclined angle and a minimum inclined angle greater than zero degree, wherein said slidably contacting means includes an annular seal around the drive shaft between the shaft and the front housing for preventing refrigerant gas in the crank chamber from leaking along the outer surface of the drive shaft out from the crank chamber, and said passage opening is adjacent to said seal whereby the misted oil in the gas lubricates the seal while said swash plate is at its said minimum inclined angle.
- 43. The compressor as set forth in claim 41, wherein said swash plate is supported on the drive shaft for variable inclination between a maximum inclined angle and a minimum inclined angle greater than zero degree, and wherein said slidably contacting means includes a radial bearing for rotatably supporting the drive shaft within the front housing, and wherein said refrigerant gas flows through said radial bearing while said swash plate is at its said minimum inclined angle.
- 44. The compressor as set forth in claim 41, wherein said slidably contacting means includes an annular seal around the drive shaft between the shaft and the front housing for preventing refrigerant gas in the crank chamber from leaking along the outer surface of the drive shaft out from the crank chamber, and a radial bearing for rotatably supporting the drive shaft within the front housing, wherein said opening of the gas passage is adjacent to the seal and near the radial bearing.
- 45. A compressor having a cylinder block that includes a plurality of cylinder bores, said cylinder block having a first end and a second end opposed to the first end, a front housing connected to the first end of the cylinder block and forming a crank chamber, and a rear housing connected to the second end of the cylinder block and forming a suction chamber, wherein refrigerant gas containing a misted oil is supplied to the compressor from an external refrigerant circuit, compressed and discharged from the compressor, said compressor comprising:
- a drive shaft rotatably supported by the cylinder block and the front housing, the drive shaft having an outer surface and extending through the crank chamber;
- a swash plate supported on the drive shaft for driven rotation therewith within the crank chamber;
- a plurality of pistons each respectively accommodated in one of the cylinder bores and all of said pistons being coupled to the swash plate, whereby rotation of the swash plate is converted to reciprocal movement of the pistons in the cylinder bores to compress the refrigerant gas;
- a gas passage extending within the drive shaft along an axis thereof, said gas passage having an inlet opening into the crank chamber and an outlet opening communicating with the suction chamber to form a gas flow path from the crank chamber to the suction chamber; and
- slidably contacting means within the crank chamber and interposed between the front housing and the outer surface of the drive shaft within the gas flow path within the crank chamber to said inlet opening of said drive shaft gas passage, whereby said misted oil in said gas lubricates said slidably contacting means.
- 46. A variable displacement compressor having a housing having a front end and a rear end, a plurality of cylinder bores, a crank chamber extending to said front end of the housing, and a suction chamber and a discharge chamber in said rear end of the housing, said cylinder bores having respective pistons therein, said compressor comprising:
- a drive shaft rotatably supported by the housing at said front end thereof, the drive shaft extending through the crank chamber, and being further rotatably supported by means adjacent to said rear end of the housing;
- a swash plate supported on the drive shaft for driven rotation therewith and variable inclination relative thereto to drive the pistons, said pistons being coupled to the swash plate, said swash plate being movable between a maximum inclined angle and a minimum inclined angle greater than zero, whereby rotation of the swash plate is converted to reciprocating movement of the pistons in the cylinder bores to compress refrigerant gas containing misted oil for lubricating parts of said compressor which are in moving contact with each other during operation of the compressor, said gas being supplied to the cylinder bores from said suction chamber to be compressed by the pistons and discharged to the discharge chamber;
- a first connecting passage connecting the crank chamber at said front end of the housing to the suction chamber at said rear end of the housing;
- a second connecting passage connecting the discharge chamber to the crank chamber;
- a control valve disposed in the second connecting passage to change the inclining angle of the swash plate based on a differential pressure between the crank chamber and the suction chamber by changing the opening of the second connecting passage to adjust the pressure in the crank chamber; and
- slidably contacting means around the drive shaft within said crank chamber at said front end of the housing,
- the first connecting passage extending within the drive shaft and having an inlet opening within the crank chamber adjacent to the slidably contacting means, whereby the misted oil in said refrigerant gas lubricates the slidably contacting means, and
- wherein said refrigerant gas circulates through the compressor from the crank chamber, wherein the gas contacts the slidably contacting means, into said opening of the first connecting passage, then through the first connecting passage to the suction chamber, the cylinder bores, the discharge chamber, and the second connecting passage to the crank chamber.
- 47. The compressor as set forth in claim 46, wherein the drive shaft has an outer surface and a drive shaft end projecting out from said front end of the housing, and said slidably contacting means comprises an annular seal around the drive shaft adjacent to said drive shaft projecting end for preventing refrigerant gas within the crank chamber from leaking therefrom and externally of the compressor via the outer surface of the drive shaft, the seal being between the outer surface of the drive shaft and the housing, said first connecting passage in the drive shaft having an opening near the seal whereby said misted oil lubricates the seal.
- 48. The compressor as set forth in claim 47, wherein said slidably contacting means further comprises a radial bearing rotatably supporting the drive shaft at said front end of the housing, the radial bearing being between the outer surface of the drive shaft and the housing, said opening of the first connecting passage further being located near the radial bearing, whereby said misted oil lubricates both the seal and the radial bearing.
Priority Claims (2)
Number |
Date |
Country |
Kind |
5-137931 |
Jun 1993 |
JPX |
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5-150878 |
Jun 1993 |
JPX |
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Parent Case Info
This application is a continuation of application Ser. No. 08/255,043, filed Jun. 7, 1994 now abandoned.
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Continuations (1)
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Number |
Date |
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Parent |
255043 |
Jun 1994 |
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