Refrigeration cycle device

US9726403B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-9726403-B2
Application numberUS-201314433439-A
CountryUS
Kind codeB2
Filing dateSep 5, 2013
Priority dateOct 8, 2012
Publication dateAug 8, 2017
Grant dateAug 8, 2017

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

In an air cooling mode of cooling air as a fluid to be heat-exchanged, a refrigeration cycle device is provided to perform switching to a refrigerant circuit in which a high-pressure refrigerant exchanging heat with outside air in an exterior heat exchanger and dissipating heat therefrom flows into an accumulator serving as a gas-liquid separator. In an air heating mode of heating the air, the refrigeration cycle device also performs switching to another refrigerant circuit that allows a low-pressure refrigerant decompressed by a first expansion valve to flow into the accumulator. Thus, even in any operation mode, a difference between a refrigerant temperature in the accumulator and the outside air temperature is reduced to thereby suppress the degradation of performance of the refrigeration cycle device due to the unnecessary transfer of heat between the refrigerant in the accumulator and the outside air.

First claim

Opening claim text (preview).

What is claimed is: 1. A refrigeration cycle device comprising: a compressor compressing and discharging a refrigerant; a heating heat exchanger that exchanges heat between a high-pressure refrigerant discharged from the compressor and a fluid to be heat-exchanged, to heat the fluid to be heat-exchanged; a first decompression device and a second decompression device that decompress a refrigerant on a downstream side of the heating heat exchanger; a cooling heat exchanger that exchanges heat between the refrigerant flowing out of the second decompression device and the fluid to be heat-exchanged, to cool the fluid to be heat-exchanged, while allowing the refrigerant to flow into a suction side of the compressor; a gas-liquid separator disposed in an external space exposed to an outside air, and separating the refrigerant into gas and liquid phases; an exterior heat exchanger exchanging heat between the refrigerant on the downstream side of the heating heat exchanger and the outside air; and a refrigerant circuit switch switching between refrigerant circuits for circulation of the refrigerant through a cycle, wherein in a cooling mode of cooling the fluid to be heat-exchanged, the high-pressure refrigerant flows into the gas-liquid separator via the first decompression device, and the refrigerant circuit switch performs switching to a refrigerant circuit in which the refrigerant flowing out of the heating heat exchanger flows into the exterior heat exchanger, and the refrigerant flowing out of the exterior heat exchanger flows into the gas-liquid separator, and in a heating mode of heating the fluid to be heat-exchanged, the refrigerant on the downstream side of the heating heat exchanger is decompressed by the first decompression device to a lower pressure than that in the cooling mode, and then flows into the gas-liquid separator, and the refrigerant circuit switch performs switching to a refrigerant circuit in which the first decompression device decompresses the refrigerant flowing out of the heating heat exchanger, and then allows the refrigerant decompressed by the first decompression device to flow into the gas-liquid separator. 2. A refrigeration cycle device comprising: a compressor compressing and discharging a refrigerant; a heating heat exchanger that exchanges heat between a high-pressure refrigerant discharged from the compressor and a fluid to be heat-exchanged, to heat the fluid to be heat-exchanged; a first decompression device and a second decompression device that decompress a refrigerant on a downstream side of the heating heat exchanger; a cooling heat exchanger that exchanges heat between the refrigerant flowing out of the second decompression device and the fluid to be heat-exchanged, to cool the fluid to be heat-exchanged, while allowing the refrigerant to flow into a suction side of the compressor; a gas-liquid separator disposed in an external space exposed to an outside air, and separating the refrigerant into gas and liquid phases; an exterior heat exchanger exchanging heat between the refrigerant on the downstream side of the heating heat exchanger and the outside air; and a refrigerant circuit switch switching between refrigerant circuits for circulation of the refrigerant through a cycle, wherein in a cooling mode of cooling the fluid to be heat-exchanged, the high-pressure refrigerant flows into the gas-liquid separator without being decompressed by the first decompression device, and then is decompressed by the second decompression device, and the refrigerant circuit switch performs switching to a refrigerant circuit in which the refrigerant flowing out of the heating heat exchanger flows into the exterior heat exchanger, and the refrigerant flowing out of the exterior heat exchanger flows into the gas-liquid separator, and in a heating mode of heating the fluid to be heat-exchanged, the refrigerant on the downstream side of the heating heat exchanger is decompressed by the first decompression device to a lower pressure than that in the cooling mode, and then flows into the gas-liquid separator, and the refrigerant circuit switch performs switching to a refrigerant circuit in which the first decompression device decompresses the refrigerant flowing out of the heating heat exchanger, and then allows the refrigerant decompressed by the first decompression device to flow into the gas-liquid separator. 3. The refrigeration cycle device according to claim 1 , wherein in the cooling mode, the refrigerant circuit switch performs switching to a refrigeration circuit that allows a liquid-phase refrigerant separated by the gas-liquid separator to flow into the second decompression device. 4. The refrigeration cycle device according to claim 3 , wherein in the heating mode, the refrigerant circuit switch performs switching to a refrigeration circuit that allows a low-pressure refrigerant decompressed by the first decompression device to flow into the gas-liquid separator via the exterior heat exchanger, and further allows a liquid-phase refrigerant separated by the gas-liquid separator to flow into the second decompression device. 5. The refrigeration cycle device according to claim 1 , further comprising: an auxiliary exterior heat exchanger that exchanges heat between a liquid-phase refrigerant separated by the gas-liquid separator and the outside air, wherein in the cooling mode, the refrigerant circuit switch performs switching to a refrigeration circuit that allows the liquid-phase refrigerant separated by the gas-liquid separator to flow into the auxiliary exterior heat exchanger, and further allows a refrigerant flowing out of the auxiliary exterior heat exchanger to flow into the second decompression device. 6. The refrigeration cycle device according to claim 5 , wherein in the heating mode, the refrigerant circuit switch performs switching to a refrigerant circuit that allows a low-pressure refrigerant decompressed by the first decompression device to flow into the gas-liquid separator via the exterior heat exchanger, allows a liquid-phase refrigerant separated by the gas-liquid separator to flow into the auxiliary exterior heat exchanger, and further allows the refrigerant flowing out of the auxiliary heat exchanger to flow into the second decompression device. 7. The refrigeration cycle device according to claim 1 , wherein the first decompression device is an ejector that draws a refrigerant from a refrigerant suction port by a flow of a refrigerant jetted at a high velocity from a nozzle for decompressing the refrigerant, and mixes the jetted refrigerant with the drawn refrigerant from the refrigerant suction port, thereby increasing a pressure of the mixed refrigerant, in the heating mode, the refrigerant circuit switch performs switching to a refrigerant circuit that decompresses a refrigerant flowing out of the heating heat exchanger by the nozzle, allows the low-pressure refrigerant decompressed by the nozzle to flow into the gas-liquid separator, allows a liquid-phase refrigerant separated by the gas-liquid separator to flow into the exterior heat exchanger, and further draws the refrigerant flowing out of the exterior heat exchanger via the refrigerant suction port, and in the cooling mode, the refrigerant circuit switch performs switching to a refrigeration circuit that allows a liquid-phase refrigerant separated by the gas-liquid separator to flow into the second decompression device. 8. The refrigeration cycle device according to claim 7 , further comprising: a third decompression device that decompresses a refrigerant flowing out of the heating heat exchanger and causes the decompressed refrigerant to flow out toward a refrigerant inlet side of the exterior heat exchang

Assignees

Inventors

Classifications

  • Separators · CPC title

  • comprising a plurality of heat exchangers, e.g. for multi zone heating or cooling · CPC title

  • where the flow direction of the refrigerant does not change and there is an extra subcondenser, e.g. in an air duct · CPC title

  • Mechanical Engineering · mapped topic

  • F25B30/02Primary

    of the compression type · CPC title

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What does patent US9726403B2 cover?
In an air cooling mode of cooling air as a fluid to be heat-exchanged, a refrigeration cycle device is provided to perform switching to a refrigerant circuit in which a high-pressure refrigerant exchanging heat with outside air in an exterior heat exchanger and dissipating heat therefrom flows into an accumulator serving as a gas-liquid separator. In an air heating mode of heating the air, the …
Who is the assignee on this patent?
Denso Corp
What technology area does this patent fall under?
Primary CPC classification B60H1/00921. Mapped technology areas include Operations & Transport.
When was this patent published?
Publication date Tue Aug 08 2017 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).