Claims
- 1. An air-conditioning apparatus comprising:
- a compressor having two suction ports, a discharge port, and two simultaneously operating cylinders corresponding to the two suction ports;
- an indoor heat exchanger;
- an outdoor heat exchanger;
- a directional control valve for connecting said indoor and outdoor heat exchangers with the discharge port and one of the suction ports of said compressor;
- an expansion valve disposed in piping for connecting said indoor heat exchanger with said outdoor heat exchanger;
- a refrigerant heater disposed between the piping and the other suction port of said compressor; and
- an open/close valve disposed between said refrigerant heater and the piping;
- wherein, when said refrigerant heater is turned off with said open/close valve being closed and one of said cylinders is driven to carry out a heating operation with a decreased heating capacity, the other of said cylinders is also driven to draw refrigerant downstream of said open/close valve, while said other suction port of said compressor is connected substantially only with said refrigerant heater, to exhaust the refrigerant in said refrigerant heater to form a vacuum condition therein;
- wherein, when said refrigerant heater is turned off with said open/close valve being closed and one of said cylinders is driven to carry out a cooling operation, the other of said cylinders is also driven to draw refrigerant downstream of said open/close valve, while said other suction port of said compressor is connected substantially only with said refrigerant heater, to exhaust the refrigerant in said refrigerant heater to form a vacuum condition therein; and
- wherein said open/close valve comprises a flow control valve.
- 2. The air-conditioning apparatus as claimed in claim 1, further comprising:
- a first temperature sensor disposed in piping on the outlet side of said refrigerant heater, for detecting the temperature of refrigerant;
- a second temperature sensor disposed in a heat exchanger of said refrigerant heater, for detecting the evaporation temperature of the refrigerant;
- a first controller including a microcomputer for receiving values detected by the first and second temperature sensors, calculating a proper degree of superheat of the refrigerant according to the received values, and adjusting the opening of said flow control valve according to the calculated degree of superheat;
- said expansion valve being a second flow control valve;
- a third temperature sensor disposed in piping for connecting said outdoor heat exchanger with one of the suction ports of said compressor, for detecting the inlet temperature of the suction port;
- a fourth temperature sensor for detecting an evaporation temperature in said outdoor heat exchanger;
- a fifth temperature sensor for detecting the temperature of said indoor heat exchanger; and
- a second controller for receiving values detected by said third, fourth and fifth temperature sensors, calculating the degree of superheat of refrigerant in said outdoor heat exchanger during a heating operation and the degree of superheat of refrigerant in said indoor heat exchanger during a cooling operation according to the temperatures detected by two of the third, fourth, and fifth temperature sensors, and controlling the opening of the second flow control valve according to the calculated degree of superheat.
- 3. The air-conditioning apparatus as claimed in claim 1, further comprising:
- a first temperature sensor disposed in piping on the outlet side of said refrigerant heater, for detecting the temperature of refrigerant;
- a second temperature sensor disposed in a heat exchanger of said refrigerant heater, for detecting the evaporation temperature of the refrigerant; and
- a controller involving a microcomputer for receiving values detected by the temperature sensors, calculating a proper degree of superheat of the refrigerant according to the received values, and adjusting the opening of the flow control valve according to the calculated degree of superheat.
- 4. An air-conditioning apparatus comprising:
- a compressor having two suction ports, a discharge e port, and two simultaneously operating cylinders corresponding to the two suction ports;
- an indoor heat exchanger;
- an outdoor heat exchanger;
- a directional control valve for connecting said indoor and outdoor heat exchangers with the discharge port and one of the suction ports of said compressor;
- an expansion valve disposed in piping for connecting said indoor heat exchanger with said outdoor heat exchanger;
- a refrigerant heater disposed between the piping and the other suction port of said compressor; and
- an open/close valve disposed between said refrigerant heater and the piping;
- wherein, when said refrigerant heater is turned off with said open/close valve being closed and one of said cylinders is driven to carry out a heating operation with a decreased heating capacity, the other of said cylinders is also driven to draw refrigerant downstream of said open/close valve, while said other suction port of said compressor is connected substantially only with said refrigerant heater, to exhaust the refrigerant in said refrigerant heater to form a vacuum condition therein;
- wherein, when said refrigerant heater is turned off with said open/close valve being closed and one of said cylinders is driven to carry out a cooling operation, the other of said cylinders is also driven to draw refrigerant downstream of said open/close valve, while said other suction port of said compressor is connected substantially only with said refrigerant heater, to exhaust the refrigerant in said refrigerant heater to form a vacuum condition therein; and
- wherein said expansion valve comprises a temperature expansion valve.
- 5. The air-conditioning apparatus as claimed in claim 4, further comprising:
- a temperature sensor and a pressure sensor disposed in piping for connecting said outdoor heat exchanger with one of the suction ports of said compressor; and
- a controller involving a microcomputer for receiving signals provided by the temperature and pressure sensors, and controlling the opening of the temperature expansion valve such that the degree of heat of refrigerant heated in said outdoor heat exchanger will be constant at the suction port.
- 6. An air-conditioning apparatus comprising:
- a compressor having two suction ports, a discharge port, and two simultaneously operating cylinders corresponding to the two suction ports;
- an indoor heat exchanger;
- an outdoor heat exchanger;
- a directional control valve for-connecting said indoor and outdoor heat exchangers with the discharge port and one of the suction ports of said compressor;
- an expansion valve disposed in piping for connecting said indoor heat exchanger with said outdoor heat exchanger;
- a refrigerant heater disposed between a part of the piping between said expansion valve and said indoor heat exchanger and the other suction port of said compressor;
- an open/close valve disposed between said refrigerant heater and the piping;
- a flow control valve disposed between a connection of said open/close valve to the piping and said indoor heat exchanger; and
- bypassing open/close valve disposed in parallel with said expansion valve;
- wherein, when said refrigerant heater is turned off with said open/close valve being closed and one of said cylinders is driven to carry out a heating operation with a decreased heating capacity, the other of said cylinders is also driven to draw refrigerant downstream of said open/close valve, while said other suction port of said compressor is connected substantially only with said refrigerant heater, to exhaust the refrigerant in said refrigerant heater to form a vacuum condition therein; and
- wherein, when said refrigerant heater is turned off with said open/close valve being closed and one of said cylinders is driven to carry out a cooling operation, the other of said cylinders is also driven to draw refrigerant downstream of said open/close valve, while said other suction port of said compressor is connected substantially only with said refrigerant heater, to exhaust the refrigerant in said refrigerant heater to form a vacuum condition therein.
- 7. The air-conditioning apparatus as claimed in claim 6, wherein said expansion valve is made of a capillary tube.
- 8. The air-conditioning apparatus as claimed in claim 7, further comprising:
- a first temperature sensor disposed in piping on the outlet side of said refrigerant heater, for detecting the temperature of refrigerant;
- a second temperature sensor disposed in a heat exchanger of said refrigerant heater, for detecting the evaporation temperature of the refrigerant; and
- a controller involving a microcomputer for receiving values detected by the temperature sensors, calculating a proper degree to superheat of the refrigerant according to the received values, and adjusting the opening of said flow control valve according to the calculated degree of superheat.
- 9. The air-conditioning apparatus as claimed in claim 6, wherein said expansion valve is a temperature expansion valve.
- 10. The air-conditioning apparatus as claimed in claim 9, further comprising:
- a first temperature sensor disposed in piping on the outlet side of said refrigerant heater, for detecting the temperature of refrigerant;
- a second temperature sensor disposed in a heat exchanger of said refrigerant heater, for detecting the evaporation temperature of the refrigerant;
- a first controller involving a microcomputer for receiving values detected by the temperature sensors, calculating a proper degree of superheat of the refrigerant according to the received values, and adjusting the opening of said flow control valve according to the calculated degree of superheat;
- a third temperature sensor and a pressure sensor disposed in piping for connecting said outdoor heat exchanger with one of the suction ports of said compressor; and
- a second controller involving a microcomputer for receiving signals from said third temperature sensor and pressure sensor, and controlling the opening of the temperature expansion valve such that the degree of heat of refrigerant heated in said outdoor heat exchanger will be constant at the suction port.
- 11. An air-conditioning apparatus comprising:
- a compressor having two suction ports, a discharge port, and two simultaneously operating cylinders corresponding to the two suction ports;
- an indoor heat exchanger;
- an outdoor heat exchanger;
- a directional control value for connecting said indoor and outdoor heat exchangers with the discharge port and one of the suction ports of said compressor;
- an expansion valve disposed in piping for connecting said indoor heat exchanger with said outdoor heat exchanger;
- a refrigerant heater disposed between the piping and the other suction port of said compressor;
- a first open/close valve disposed between said refrigerant heater and the piping; and
- a second open/close valve disposed between two systems of piping connected to the two suction ports, respectively;
- wherein, when said refrigerant heater is turned off with said first open/close valve being closed and one of said cylinders is driven to carry out a heating operation with a decreased heating, capacity, the other of said cylinders is also driven to draw refrigerant downstream of said first open/close valve, while said other suction port of said compressor is connected substantially only with said refrigerant heater, to exhaust the refrigerant in said refrigerant heater to form a vacuum condition therein; and
- wherein, when said refrigerant heater is turned off with said first open/close valve being closed and one of said cylinders is driven to carry out a cooling operation, the other of said cylinders is also driven to draw refrigerant downstream of said first open/close valve, while said other suction port of said compressor is connected substantially only with said refrigerant heater, to exhaust the refrigerant in said refrigerant heater to form a vacuum condition therein.
- 12. The air-conditioning apparatus as claimed in claim 11, further comprising:
- ambient temperature detecting means for detecting an ambient temperature; and
- control means for receiving a signal from the ambient temperature detecting means, simultaneously carrying out a refrigerant heating operation and a heat pump operation using said outdoor heat exchanger when the ambient temperature is smaller than a predetermined value, and carrying out only the heat pump operation using said outdoor heat exchanger when the ambient temperature is greater than the predetermined value.
- 13. The air-conditioning apparatus as claimed in claim 11, wherein each of said first an second open/close valves is a two-way valve.
- 14. The air-conditioning apparatus as claimed in claim 11, wherein said first open/close valve is a two-way valve, and said second open/close valve is a flow control valve.
- 15. An air-conditioning apparatus comprising:
- a compressor having two suction ports, a discharge port, and two simultaneously operating cylinders corresponding to the two suction ports;
- an indoor heat exchanger;
- an outdoor heat exchanger;
- a directional control valve for connecting said indoor and outdoor heat exchangers with the discharge port and one of the suction ports of said compressor;
- an expansion valve disposed in piping for connecting said indoor heat exchanger with said outdoor heat exchanger;
- a refrigerant heater disposed between the piping and the other suction port of said compressor;
- a first open/close valve disposed between said refrigerant heater and the piping; and
- a second open/close valve disposed in bypass piping for connecting piping connected to the expansion valve side of said outdoor heat exchanger;
- wherein, when said refrigerant heater is turned off with said first open/close valve being closed and one of said cylinders is driven to carry out a heating operation with a decreased heating capacity, the other of said cylinders is also driven to draw refrigerant downstream of said first open/close valve, while said other suction port of said compressor is connected substantially only with said refrigerant heater, to exhaust the refrigerant in said refrigerant heater to form a vacuum condition therein; and
- wherein, when said refrigerant heater is turned off with said first open/close valve being closed and one of said cylinders is driven to carry out a cooling operation, the other of said cylinders is also driven to draw refrigerant downstream of said first open/close valve, while said other suction port of said compressor is connected substantially only with said refrigerant heater, to exhaust the refrigerant in said refrigerant heater to form a vacuum condition therein.
- 16. The air-conditioning apparatus as claimed in claim 15, wherein said second open/close valve is a two-way valve.
- 17. The air-conditioning apparatus as claimed in claim 16, further comprising a capillary tube disposed in said bypass piping in series with the two-way valve.
- 18. An air-conditioning apparatus comprising:
- a compressor having two suction ports, a discharge port, and two simultaneously operating cylinders corresponding to the two suction ports;
- an indoor heat exchanger;
- an outdoor heat exchanger;
- a directional control valve for connecting said indoor and outdoor heat exchangers with the discharge port and one of the suction ports of said compressor;
- an expansion valve disposed in piping for connecting said indoor heat exchanger with said outdoor heat exchanger;
- a refrigerant heater disposed between the piping and the other suction port of said compressor;
- a first open/close valve disposed between said refrigerant heater and the piping; and
- a second open/close valve disposed in piping for connecting piping connected to the discharge port of said compressor with the piping connected to the expansion valve side of said outdoor heat exchanger;
- wherein, when said refrigerant heater is turned off with said first open/close valve being closed and one of said cylinders is driven to carry out a heating operation with a decreased heating capacity, the other of said cylinders is also driven to draw refrigerant downstream of said first open/close valve, while said other suction port of said compressor is connected substantially only with said refrigerant heater, to exhaust the refrigerant in said refrigerant heater to form a vacuum condition therein; and
- wherein, when said refrigerant heater is turned off with said first open/close valve being closed and one of said cylinders is driven to carry out a cooling operation, the other of said cylinders is also driven to draw refrigerant downstream of said first open/close valve, while said other suction port of said compressor is connected substantially only with said refrigerant heater, to exhaust the refrigerant in said refrigerant heater to form a vacuum condition therein.
- 19. The air-conditioning apparatus as claimed in claim 18, wherein each of said first and second open/close valve is a two-way valve.
- 20. The air-conditioning apparatus as claimed in claim 19, further comprising a capillary tube disposed in said bypass piping in series with the two-way valve.
- 21. An air-conditioning apparatus comprising:
- a compressor having two suction ports, a discharge port, and two simultaneously operating cylinders corresponding to the two suction ports;
- an indoor heat exchanger;
- an outdoor heat exchanger;
- a directional control valve for connecting said indoor and outdoor heat exchangers with the discharge port and one of the suction ports of said compressor;
- an expansion valve disposed in piping for connecting said indoor heat exchanger with said outdoor heat exchanger;
- a refrigerant heater disposed between an intermediate position in the piping between said indoor heat exchanger and said expansion valve and the other suction port of said compressor;
- a first open/close valve disposed between said refrigerant heater and the piping; and
- a second open/close valve and heat accumulating means disposed in bypass piping for bypassing said expansion valve;
- wherein, when said refrigerant heater is turned off with said first open/close valve being closed and one of said cylinders is driven to carry out a heating operation with a decreased heating capacity, the other of said cylinders is also driven to draw refrigerant downstream of said first open/close valve, while said other suction port of said compressor is connected substantially only with said refrigerant heater, to exhaust the refrigerant in said refrigerant heater or form a vacuum condition therein; and
- wherein, when said refrigerant heater is turned off with said first open/close valve being closed and one of said cylinders is driven to carry out cooling operation, the other of said cylinders is also driven to draw refrigerant downstream of said first open/close valve, while said other suction port of said compressor is connected substantially only with said refrigerant heater, to exhaust the refrigerant in said refrigerant heater to form a vacuum condition therein.
- 22. An air-conditioning apparatus comprising:
- a compressor having two suction ports, a discharge port, and two simultaneously operating cylinders corresponding to the two suction ports;
- an indoor heat exchanger;
- an outdoor heat exchanger;
- a directional control valve for connecting said indoor and outdoor heat exchangers with the discharge port and one of the suction ports of said compressor;
- an expansion valve disposed in piping for connecting said indoor heat exchanger with said outdoor heat exchanger;
- a refrigerant heater disposed between the piping and the other suction port of said compressor; and
- an open/close valve disposed between said refrigerant heater and the piping;
- wherein, when said refrigerant heater is turned off with said open/close valve being closed and one of said cylinders is driven to carry out a heating operation with a decreased heating capacity, the other of said cylinders is also driven to draw refrigerant downstream of said open/close valve, while said other suction port of said compressor is connected substantially only with said refrigerant heater, to exhaust the refrigerant in said refrigerant heater to form a vacuum condition therein; and
- wherein, when said refrigerant heater is turned off with said open/close valve being closed and one of said cylinders is driven to carry out a cooling operation, the other of said cylinders is also driven to draw refrigerant downstream of said open/close valve, while said other suction port of said compressor is connected substantially only with said refrigerant heater, to exhaust the refrigerant in said refrigerant heater to form a vacuum condition therein.
- 23. The air-conditioning apparatus as claimed in claim 22, wherein said expansion valve comprises a capillary tube.
- 24. The air-conditioning apparatus as claimed in claim 22, wherein said open/close valve comprises a two-way valve.
- 25. An air-conditioning apparatus comprising:
- an indoor heat exchanger;
- a first cylinder connected to said indoor heat exchanger in order to compress a refrigerant transmitted from said indoor heat exchanger in a cooling mode and to compress the refrigerant to be transmitted to said indoor heat exchanger in a heating mode;
- an outdoor heat exchanger connected between said first cylinder and said indoor heat exchanger in order that the refrigerant compressed in and transmitted from said first cylinder radiates heat through said outdoor heat exchanger and is then transmitted to said indoor heat exchanger through an expansion first valve in said cooling mode and that the refrigerant transmitted from said indoor heat exchanger through said expansion first valve absorbs heat through said outdoor heat exchanger and is transmitted to said first cylinder in said heating mode;
- valve means, connected to said first cylinder, said indoor heat exchanger and said outdoor heat exchanger, for controlling flow of the refrigerant in accordance with said cooling mode and said heating mode;
- a refrigerant heater connected to said indoor heat exchanger in parallel with said outdoor heat exchanger in order to heat the refrigerant transmitted from said indoor heat exchanger through a second valve; and
- a second cylinder connected between said refrigerant heater and said indoor heat exchanger for causing circulation of the refrigerant by drawing said refrigerant from said refrigerant heater through a suction port of said second cylinder,
- wherein, when said refrigerant heater is turned off with said second valve being closed and said first cylinder is driven to carry out a heating operation with a decreased heating capacity, said second cylinder is also driven to draw refrigerant downstream of said second valve, while said suction port of said second cylinder is connected substantially only with said refrigerant heater, to exhaust the refrigerant in the refrigerant heater to form a vacuum condition therein; and
- wherein, when said refrigerant heater is turned off with said second valve being closed and said first cylinder is driven to carry out a cooling operation, said second cylinder is also driven to draw refrigerant downstream of said second valve, while said suction port of said second cylinder is connected substantially only with said refrigerant heater to exhaust the refrigerant in the refrigerant heater to form a vacuum condition therein.
- 26. The air-conditioning apparatus as claimed in claim 25, wherein said expansion first valve comprises a capillary tube.
- 27. The air-conditioning apparatus as claimed in claim 25, wherein said second valve comprises a two-way valve.
- 28. A method of carry out a heating and cooling operation, comprising:
- providing an air-conditioning apparatus including a compressor having two suction ports and two simultaneously operating cylinders corresponding to the two suction ports; a refrigerant heater operatively connected by piping to one of said suction ports of said compressor; and an open/close valve disposed within piping operatively connected between said refrigerant heater and the other of said suction ports of said compressor;
- driving (A) one of said cylinders to carry out a heating operation with decreased capacity when said refrigerant heater is turned off and said open/close valve is closed, and (B) the other of said cylinders to draw refrigerant downstream of said open/close valve, while said other suction port of said compressor is connected substantially only with said refrigerant heater, to exhaust the refrigerant in said refrigerant heater to form a vacuum condition therein; and
- driving (C) one of said cylinders to carry out a cooling operation when said refrigerant heater is turned off and said open/close valve is closed, and (D) the other of said cylinders to draw refrigerant downstream of said open/close valve, while said other suction port of said compressor is connected substantially only with said refrigerant heater, to exhaust the refrigerant in said refrigerant heater to form a vacuum condition therein.
- 29. The method of claim 28, wherein the step of providing further comprises:
- arranging a directional control valve in said air conditioning apparatus so that an indoor heat exchanger and an outdoor heat exchanger are connected to a discharge port of said compressor and one of said two suction ports of said compressor; and
- disposing an expansion valve in piping that connects said indoor heat exchanger and said outdoor heat exchanger.
- 30. The method of claim 29, wherein the step of providing further comprises providing a two-way valve as said open/close valve.
- 31. The method of claim 29, wherein said step of disposing further comprises disposing a capillary tube as said expansion valve.
- 32. The method of claim 29, wherein the step of providing further comprises:
- providing a flow control valve as said open/close valve;
- disposing a first temperature sensor in piping on an outlet side of said refrigerant heater for detecting the temperature of the refrigerant;
- disposing a second temperature sensor in said heat exchanger of said refrigerant heater for detecting the evaporation temperature of said refrigerant; and
- providing a controller including a microcomputer for receiving values detected by said temperature sensors, calculating a proper of degree of superheat of the refrigerant according to said received values, and adjusting the opening of said flow control valve according to the calculated degree of superheat.
- 33. The method of claim 29, wherein said step of disposing further comprises:
- disposing a temperature expansion valve as said expansion valve;
- disposing a temperature sensor and a pressure sensor in piping that connects an outdoor heat exchange of said air conditioner to one of said two suction ports of said compressor; and
- providing a controller including a microcomputer for receiving values detected by said temperature sensor and said pressure sensor and for controlling the opening of said temperature expansion valve such that the degree of the refrigerant heated in said outdoor heater is constant at the suction port.
- 34. The method of claim 29, wherein the step of providing further comprises:
- disposing said refrigerant heater between a part of said piping between said expansion valve and said indoor heat exchanger and the other suction port of said compressor;
- disposing said open/close valve between said refrigerant heater and said part of said piping;
- disposing a flow control valve between a connection of said open/close valve to said piping and said indoor heat exchanger; and
- disposing a bypassing open/close valve in parallel with said expansion valve.
- 35. The method of claim 34, wherein said step of providing further comprises:
- providing a capillary tube as said expansion valve;
- disposing a first temperature sensor in piping on an outlet side of said refrigerant heater for detecting the temperature of the refrigerant;
- disposing a second temperature sensor in said heat exchanger of said refrigerant heater for detecting the evaporation temperature of said refrigerant; and
- providing a controller including a microcomputer for receiving values detected by said temperature sensors, calculating a proper of degree of superheat of the refrigerant according to said received values, and adjusting the opening of said flow control valve according to the calculated degree of superheat.
- 36. The method of claim 34, wherein said step of providing further comprises:
- providing a temperature expansion valve as said expansion valve;
- disposing a first temperature sensor disposed in piping on an outlet side of said refrigerant heater for detecting the temperature of refrigerant;
- disposing a second temperature sensor disposed in a heat exchanger of said refrigerant heater for detecting the evaporation temperature of the refrigerant;
- providing a first controller including a microcomputer for receiving values detected by the temperature sensors, calculating a proper degree of superheat of the refrigerant according to the received values, and adjusting the opening of said flow control valve according to the calculated degree of superheat;
- disposing a third temperature sensor and a pressure sensor disposed in piping for connecting said outdoor heat exchanger with one of the suction ports of said compressor; and
- providing a second controller for receiving signals from said third temperature sensor and pressure sensor, and controlling the opening of the temperature expansion valve such that the degree of heat of refrigerant heated in said outdoor heat exchanger is constant at the suction port.
- 37. The method of claim 29, wherein the step of providing further comprises:
- providing a first flow control valve as said open/close valve;
- disposing a first temperature sensor in piping on an outlet side of said refrigerant heater for detecting the temperature of refrigerant;
- disposing a second temperature sensor in a heat exchanger of said refrigerant heater for detecting the evaporation temperature of the refrigerant;
- providing a first controller including a microcomputer for receiving values detected by the first and second temperature sensors, calculating a proper degree of superheat of the refrigerant according to the received values, and adjusting the opening of said first flow control valve according to the calculated degree of superheat;
- providing a second flow control valve as said expansion valve;
- disposing a third temperature sensor in piping for connecting said outdoor heat exchanger with one of the suction ports of said compressor for detecting the inlet temperature of the suction port;
- providing a fourth temperature sensor for detecting an evaporation temperature in said outdoor heat exchanger;
- providing a fifth temperature sensor for detecting the temperature of said indoor heat exchanger; and
- providing a second controller for receiving values detected by said third, fourth and fifth temperature sensors, calculating the degree of superheat of refrigerant in said outdoor heat exchanger during a heating operation and the degree of superheat of refrigerant in said indoor heat exchanger during a cooling operation according to the temperatures detected by two of the third, fourth, and fifth temperature sensors, and controlling the opening of the second flow control valve according to the calculated degree of superheat.
- 38. The method of claim 29, wherein the step of providing further comprises providing a second open/close valve disposed between two systems of piping connected to the two suction ports, respectively.
- 39. The method of claim 38, wherein the step of providing further comprises providing a two-way valve for each said open/close valve and said second open/close valve.
- 40. The method of claim 38, wherein the step of providing further comprises providing a two-way valve for said open/close valve and a flow control valve for said second open/close valve.
- 41. The method of claim 29, wherein the step of providing further comprises providing a second open/close valve in piping for connecting piping connected to the discharge port of said compressor with piping connected to the expansion valve side of said outdoor heat exchanger.
- 42. The method of claim 41, wherein the step of providing further comprises providing a capillary tube in said piping in series with said second open/close valve.
- 43. The method of claim 29, wherein the step of providing further comprises providing a second open/close valve disposed in bypass piping for connecting piping connected to the expansion valve side of said outdoor heat exchanger.
- 44. The method of claim 43, wherein the step of providing further comprises providing a capillary tube in said piping in series with said second open/close valve.
- 45. The method of claim 39, wherein the step of providing further comprises providing a second open/close valve and a heat accumulator in bypass piping for bypassing said expansion valve.
- 46. A method of carrying out a heating and cooling operation, comprising:
- providing an air-conditioning apparatus with an indoor heat exchanger;
- connecting a first cylinder is said indoor heat exchanger to compress a refrigerant transmitted from said indoor heat exchanger in a cooling mode and to compress the refrigerant to be transmitted to said indoor heat exchanger in a heating mode;
- connecting an outdoor heat exchanger between said first cylinder and said indoor heat exchanger in order that the refrigerant compressed in and transmitted from said first cylinder radiates heat through said outdoor heat exchanger and is then transmitted to said indoor heat exchanger through an expansion first valve in said cooling mode and that the refrigerant transmitted from said indoor heat exchanger through said expansion first valve absorbs heat through said outdoor heat exchanger and is transmitted to said first cylinder in said heating mode;
- connecting at least one valve to said first cylinder, said indoor heat exchanger and said outdoor heat exchanger, for controlling flow of the refrigerant in accordance with said cooling mode and said heating mode;
- connecting a refrigerant heater to said indoor heat exchanger in parallel with said outdoor heat exchanger in order to heat the refrigerant transmitted from said indoor heat exchanger through a second valve; and
- connecting a second cylinder between said refrigerant heater and said indoor heat exchanger for causing circulation of the refrigerant by drawing said refrigerant from said refrigerant heater through a suction port of said second cylinder,
- driving (A) one of said cylinders to carry out a heating operating with decreased capacity when said refrigerant heater is turned off and said open/close valve is closed, and (B) said second cylinder to draw refrigerant downstream of said second valve, while said suction port of said second cylinder is connected substantially only with said refrigerant heater, to exhaust the refrigerant in the refrigerant heater to form a vacuum condition therein; and
- driving (C) one of said cylinders to carry out a cooling operation, when said refrigerant heater is turned off and said second valve is closed, and (D) the other of said cylinder to draw refrigerant downstream of said open/close valve, while said other suction port of said compressor is connected substantially only with said refrigerant heater, to exhaust the refrigerant in the refrigerant heater to form a vacuum condition therein.
Priority Claims (2)
Number |
Date |
Country |
Kind |
2-322558 |
Nov 1990 |
JPX |
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2-322559 |
Nov 1990 |
JPX |
|
Parent Case Info
This application is a continuation of application Ser. No. 07/797,959, filed Nov. 26, 1991 now abandoned.
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Foreign Referenced Citations (6)
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JPX |
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Jul 1989 |
JPX |
0300166 |
Dec 1989 |
JPX |
186330 |
Nov 1963 |
SEX |
872336 |
Jul 1961 |
GBX |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
797959 |
Nov 1991 |
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