IP Library Granted Patent US 10,406,889
Granted Patent B2
US 10,406,889 · App. 15/038,484 · Granted Sep 10, 2019

Heat pump system

Inventors: Kota Sakamoto (Kariya, JP); Satoshi Itoh (Kariya, JP)
Assignee: DENSO CORPORATION
B60H1/00921F25B47/02F25B49/02B60H2001/00928F25B2347/02F25B2400/05
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Quick Facts
Patent No.
US 10,406,889
App. No.
15/038,484
Granted
Sep 10, 2019
Kind
B2
Abstract

A heater core for exchanging heat between a coolant and ventilation air to be blown into a vehicle interior is disposed in a high-pressure side heat-medium circulation circuit that allows for circulation of the coolant heated by a heat pump cycle. A radiator for exchanging heat between at least a part of the coolant flowing out of the heater core and a low-pressure refrigerant in the heat pump cycle is disposed in a low-pressure side heat-medium circulation circuit coupled to the high-pressure side heat-medium circulation circuit. Thus, excessive heat included in the coolant flowing out of the heater core and which is not used to heat the ventilation air can suppress frost formation on an exterior heat exchanger and can also defrost the exterior heat exchanger.

Claims (62)

1. A heat pump system comprising:

a heat pump cycle including a compressor adapted to compress and discharge a refrigerant, a heat medium-refrigerant heat exchanger that exchanges heat between a high-pressure refrigerant discharged from the compressor and a heat medium, a decompression device that decompresses the refrigerant flowing out of the heat medium-refrigerant heat exchanger, and an exterior heat exchanger that exchanges heat between the refrigerant decompressed by the decompression device and outside air;

a first heat-medium circulation circuit in which the heat medium heated generally by the heat pump cycle circulates, the first heat-medium circulation circuit being provided with a heating heat exchanger that exchanges heat between a heating target fluid and the heat medium flowing out of the heat medium-refrigerant heat exchanger to heat the heating target fluid;

a second heat-medium circulation circuit in which a heat medium having a temperature, different from that of the heat medium in the first heat-medium circulation circuit, circulates;

a heat-medium radiation heat exchanger that is disposed in the second heat-medium circulation circuit and dissipates heat included in the heat medium flowing out of the heating heat exchanger of the first heat-medium circulation circuit, to a low-pressure refrigerant circulating through a range leading from an outlet side of the decompression device to a suction port of the compressor;

a heat-medium flow-rate adjustment valve that adjusts a flow rate of the heat medium flowing out of the heating heat exchanger of the first heat-medium circulation circuit into the heat-medium radiation heat exchanger of the second heat-medium circulation circuit; and

a heat-medium flow-rate controller configured to control an operation of the heat-medium flow-rate adjustment valve, based on a heating capacity of the heat pump cycle that is required for heating the heating target fluid in the first heat-medium circulation circuit, wherein

the heat-medium flow-rate controller is configured to control the heat-medium flow-rate adjustment valve, based on a target temperature of the heating target fluid in the first heat-medium circulation circuit to increase the flow rate of the heat medium flowing out of the first heat-medium circulation circuit into the second heat-medium circulation circuit solely in accordance with an increase of the target temperature.

2. The heat pump system according to claim 1 , wherein

the heat-medium radiation heat exchanger exchanges heat between the heat medium flowing out of the heating heat exchanger and the outside air, and

the heat-medium radiation heat exchanger and the exterior heat exchanger are integrated together to enable heat transfer between the heat medium circulating through the heat-medium radiation heat exchanger and the refrigerant circulating through the exterior heat exchanger.

3. The heat pump system according to claim 1 , wherein

the heat-medium radiation heat exchanger exchanges heat between the heat medium flowing out of the heating heat exchanger and the outside air, and

the exterior heat exchanger is disposed to exchange heat between the outside air flowing out of the heat-medium radiation heat exchanger and the refrigerant decompressed by the decompression device.

4. The heat pump system according to claim 1 , wherein

the heat-medium radiation heat exchanger exchanges heat between the heat medium flowing out of the heating heat exchanger and the low-pressure refrigerant.

5. The heat pump system according to claim 1 , wherein

the heat-medium flow-rate adjustment valve is an electric flow-rate adjustment valve having a valve body and an electric actuator configured to adjust an opening degree by displacing the valve body.

6. The heat pump system according to claim 1 , wherein

the heat medium circulating in the first heat-medium circulation circuit is heated primarily by the heat pump cycle.

7. The heat pump system according to claim 1 , wherein

the exterior heat exchanger and the heat-medium radiation heat exchanger are integrated together and in direct fluid communication with each other so as to enable heat transfer between the refrigerant circulating through the exterior heat exchanger and the heat medium circulating through the heat-medium radiation heat exchanger.

8. The heat pump system according to claim 1 , wherein

the exterior heat exchanger and the heat-medium radiation heat exchanger are integrated together so as to be disposed on a windward side in a flow direction of an outside air blown by a blower fan.

9. The heat pump system according to claim 1 , wherein

the heating capacity of the heat pump cycle increases in accordance with the increase of the target temperature of the heating target fluid in the first heat-medium circulation circuit.

10. A heat pump system comprising:

a heat pump cycle including a compressor adapted to compress and discharge a refrigerant, a heat medium-refrigerant heat exchanger that exchanges heat between a high-pressure refrigerant discharged from the compressor and a heat medium, a decompression device that decompresses the refrigerant flowing out of the heat medium-refrigerant heat exchanger, and an exterior heat exchanger that exchanges heat between the refrigerant decompressed by the decompression device and outside air;

a first heat-medium circulation circuit in which the heat medium heated generally by the heat pump cycle circulates, the first heat-medium circulation circuit being provided with a heating heat exchanger that exchanges heat between a heating target fluid and the heat medium flowing out of the heat medium-refrigerant heat exchanger to heat the heating target fluid;

a second heat-medium circulation circuit in which a heat medium having a temperature, different from that of the heat medium in the first heat-medium circulation circuit, circulates;

a heat-medium radiation heat exchanger that is disposed in the second heat-medium circulation circuit and dissipates heat included in the heat medium flowing out of the heating heat exchanger of the first heat-medium circulation circuit, to a low-pressure refrigerant circulating through a range leading from an outlet side of the decompression device to a suction port of the compressor;

a heat-medium flow-rate adjustment valve that adjusts a flow rate of the heat medium flowing out of the heating heat exchanger of the first heat-medium circulation circuit into the heat-medium radiation heat exchanger of the second heat-medium circulation circuit; and

a heat-medium flow-rate controller configured to control an operation of the heat-medium flow-rate adjustment valve, that is adapted to increase a flow rate of the heat medium flowing out of the heating heat exchanger of the first heat-medium circulation circuit into the heat-medium radiation heat exchanger of the second heat-medium circulation circuit when the heat pump cycle is requested to stop heating the heating target fluid, wherein

the heat-medium flow-rate controller is configured to control the heat-medium flow-rate adjustment valve, based on a target temperature of the heating target fluid in the first heat-medium circulation circuit to increase the flow rate of the heat medium flowing out of the first heat-medium circulation circuit into the second heat-medium circulation circuit solely in accordance with an increase of the target temperature.

11. The heat pump system according to claim 10 , wherein

the heat-medium flow-rate adjustment valve is an electric flow-rate adjustment valve having a valve body and an electric actuator configured to adjust an opening degree by displacing the valve body.

12. The heat pump system according to claim 10 , wherein

the heat medium circulating in the first heat-medium circulation circuit is heated primarily by the heat pump cycle.

13. The heat pump system according to claim 10 , wherein

the exterior heat exchanger and the heat-medium radiation heat exchanger are integrated together and in direct fluid communication with each other so as to enable heat transfer between the refrigerant circulating through the exterior heat exchanger and the heat medium circulating through the heat-medium radiation heat exchanger.

14. The heat pump system according to claim 10 , wherein

the exterior heat exchanger and the heat-medium radiation heat exchanger are integrated together so as to be disposed on a windward side in a flow direction of an outside air blown by a blower fan.

15. A heat pump system comprising:

a heat pump cycle including a compressor adapted to compress and discharge a refrigerant, a heat medium-refrigerant heat exchanger that exchanges heat between a high-pressure refrigerant discharged from the compressor and a heat medium, an expansion valve that decompresses the refrigerant flowing out of the heat medium-refrigerant heat exchanger, and an exterior heat exchanger that exchanges heat between the refrigerant decompressed by the expansion valve and outside air;

a first heat-medium circulation circuit in which the heat medium heated generally by the heat pump cycle circulates, the first heat-medium circulation circuit being provided with a heating heat exchanger that exchanges heat between a heating target fluid and the heat medium flowing out of the heat medium-refrigerant heat exchanger to heat the heating target fluid;

a second heat-medium circulation circuit in which a heat medium having a temperature, different from that of the heat medium in the first heat-medium circulation circuit, circulates;

a heat-medium radiation heat exchanger that is disposed in the second heat-medium circulation circuit and dissipates heat included in the heat medium flowing out of the heating heat exchanger of the first heat-medium circulation circuit, to a low-pressure refrigerant circulating through a range leading from an outlet side of the expansion valve to a suction port of the compressor;

a heat-medium flow-rate adjustment valve that adjusts a flow rate of the heat medium flowing out of the heating heat exchanger of the first heat-medium circulation circuit into the heat-medium radiation heat exchanger of the second heat-medium circulation circuit; and

a heat-medium flow-rate controller configured to control an operation of the heat-medium flow-rate adjustment valve, that is adapted to increase a flow rate of the heat medium flowing out of the heating heat exchanger of the first heat-medium circulation circuit into the heat-medium radiation heat exchanger of the second heat-medium circulation circuit when a temperature of the heat medium heated by the external heat source is equal to or lower than a predetermined reference heat-medium temperature, wherein

an external heat source is disposed in the second heat-medium circulation circuit so as to heat the heat medium that is to flow into the heat-medium radiation heat exchanger, and

the heat-medium flow-rate controller is configured to control the heat-medium flow-rate adjustment valve, based on a target temperature of the heating target fluid in the first heat-medium circulation circuit to increase the flow rate of the heat medium flowing out of the first heat-medium circulation circuit into the second heat-medium circulation circuit solely in accordance with an increase of the target temperature.

16. The heat pump system according to claim 15 , the heat pump system being applied to an air conditioner for a vehicle, wherein

the external heat source is a vehicle-mounted device that generates heat during operation, and

the heating target fluid is ventilation air to be blown into a vehicle interior.

17. The heat pump system according to claim 15 , wherein

the heat-medium flow-rate adjustment valve is an electric flow-rate adjustment valve having a valve body and an electric actuator configured to adjust an opening degree by displacing the valve body.

18. The heat pump system according to claim 15 , wherein

the heat medium circulating in the first heat-medium circulation circuit is heated primarily by the heat pump cycle.

19. The heat pump system according to claim 15 , wherein

the exterior heat exchanger and the heat-medium radiation heat exchanger are integrated together and in direct fluid communication with each other so as to enable heat transfer between the refrigerant circulating through the exterior heat exchanger and the heat medium circulating through the heat-medium radiation heat exchanger.

20. The heat pump system according to claim 15 , wherein

the exterior heat exchanger and the heat-medium radiation heat exchanger are integrated together so as to be disposed on a windward side in a flow direction of an outside air blown by a blower fan.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 23, 2016
From: SAKAMOTO, KOTA; ITOH, SATOSHI
To: DENSO CORPORATION
Reel/Frame 038678/0897 →
Priority Claims (1)
JP 2013-242521 · Nov 25, 2013 · national
Continuity (1)
Related Publication 20160297283A1 · Oct 13, 2016
Cited By (1)
US 12,466,239