Ejector cycle system

US8991201B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-8991201-B2
Application numberUS-80668310-A
CountryUS
Kind codeB2
Filing dateAug 19, 2010
Priority dateJun 30, 2005
Publication dateMar 31, 2015
Grant dateMar 31, 2015

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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.

An ejector cycle system with a refrigerant cycle through which refrigerant flows includes an ejector disposed downstream of a radiator, a first evaporator that evaporates refrigerant flowing out of the ejector, a throttling unit located in a branch passage and depressurizes refrigerant to adjust a flow rate of refrigerant, and a second evaporator located downstream of the throttling unit. In the ejector cycle system, a flow ratio adjusting means adjusts a flow ratio between a first refrigerant flow amount depressurized and expanded in a nozzle portion of the ejector and a second refrigerant flow amount drawn into a refrigerant suction port of the ejector, based on a physical quantity related to at least one of a state of refrigerant in the refrigerant cycle, a temperature of a space to be cooled by the first and second evaporators, and an ambient temperature of the space.

First claim

Opening claim text (preview).

What is claimed is: 1. An ejector cycle system with a refrigerant cycle through which refrigerant flows, the ejector cycle system comprising: a compressor configured to draw and compress refrigerant; a radiator located to radiate heat from high-pressure refrigerant discharged from the compressor; an ejector disposed downstream of the radiator, the ejector having a nozzle portion for depressurizing and expanding refrigerant, a refrigerant suction port through which refrigerant is drawn by a high-speed refrigerant flow jetted from the nozzle portion, and a pressure increasing portion for mixing refrigerant drawn through the refrigerant suction port with the high-speed refrigerant flow and for decelerating the mixed refrigerant flow to raise a pressure of the refrigerant flow; a first evaporator located to evaporate the refrigerant flowing out of the ejector; a branch passage that is branched from a branch portion between the radiator and the nozzle portion of the ejector and is coupled to the refrigerant suction port of the ejector, to guide the refrigerant flowing out of the radiator into the refrigerant suction port; a throttling unit located in the branch passage, the throttling unit having a fixed throttle that depressurizes refrigerant flowing through the throttling unit to adjust a flow amount of the refrigerant, the fixed throttle having a throttling opening which is set to a predetermined opening; a second evaporator that is located in the branch passage downstream of the throttling unit to evaporate the refrigerant flowing from the throttle unit; and a variable throttling device located in a refrigerant passage between the branch portion of the branch passage and a refrigerant inlet port of the nozzle portion to decompress the refrigerant; wherein the variable throttling device is configured to adjust an opening degree of a valve body portion, based on at least one of a superheat degree of refrigerant at a refrigerant outlet side of the first evaporator, a temperature and a pressure of refrigerant at the refrigerant outlet side of the radiator, a flow amount of refrigerant discharged from the compressor, a temperature of a space to be cooled by the first evaporator and the second evaporator, and an ambient temperature of the space to be cooled; and refrigerant always flows through the throttling unit when the compressor operates. 2. The ejector cycle system according to claim 1 , wherein the branch passage is a single passage connected only to the branch portion and the refrigerant suction port such that the refrigerant flowing through the branch passage is only received from the branch portion and the second evaporator only receives the refrigerant from the branch portion. 3. The ejector cycle system according to claim 1 , further comprising a heat exchanger exchanging heat between a flow of refrigerant flowing in the branch passage and a flow of refrigerant flowing between the first evaporator and the compressor. 4. The ejector cycle system according to claim 1 , wherein the variable throttling device is configured to adjust a ratio between a flow amount of refrigerant flowing into the nozzle portion and a flow amount of refrigerant flowing through the branch passage. 5. The ejector cycle system according to claim 4 , wherein the variable throttling device adjusts the flow amount of refrigerant such that the superheat degree of the refrigerant at the refrigerant outlet side of the first evaporator approaches a predetermined value. 6. The ejector cycle system according to claim 1 , further comprising a gas-liquid separator located downstream of the radiator to separate the refrigerant flowing out of the radiator into gas refrigerant and liquid refrigerant, wherein the branch portion is configured such that the separated liquid refrigerant of the gas-liquid separator is branched at the branch portion into a first flow flowing into the branch passage and a second flow flowing to the nozzle portion. 7. An ejector cycle system with a refrigerant cycle through which refrigerant flows, comprising: a compressor configured to draw and compress refrigerant; a radiator located to radiate heat from high-pressure refrigerant discharged from the compressor; an ejector disposed downstream of the radiator, the ejector having a nozzle portion for depressurizing and expanding refrigerant, a refrigerant suction port through which refrigerant is drawn by a high-speed refrigerant flow jetted from the nozzle portion, and a pressure increasing portion for mixing refrigerant drawn through the refrigerant suction port with the high-speed refrigerant flow and for decelerating the mixed refrigerant flow to raise a pressure of the refrigerant flow; a first evaporator located to evaporate the refrigerant flowing out of the ejector; a branch passage that is branched from a branch portion between the radiator and the nozzle portion of the ejector and is coupled to the refrigerant suction port of the ejector, to guide the refrigerant flowing out of the radiator into the refrigerant suction port; a throttling unit located in the branch passage, the throttling unit having a fixed throttle that depressurizes refrigerant flowing through the throttling unit to adjust a flow amount of the refrigerant, the fixed throttle having a throttling opening which is set to a predetermined opening a second evaporator that is located in the branch passage downstream of the throttling unit to evaporate refrigerant flowing from the throttle unit; wherein the branch portion is configured to branch the refrigerant flowing out of the radiator into a first stream flowing into an inlet of the nozzle portion and a second stream flowing through the branch passage extended from the branch portion to the refrigerant suction port; a variable throttling device is located to decompress the first stream of the refrigerant at an upstream side of the nozzle portion in the refrigerant flow of the first stream, the refrigerant of the second stream having passed through the throttling unit and the evaporator is drawn into the refrigerant suction port by suction action of the refrigerant flow jetted from the nozzle portion; and refrigerant always flows through the throttling unit when the compressor operates. 8. The ejector cycle system according to claim 1 , wherein the throttling unit is coupled to the refrigerant suction port such that only the refrigerant having passed through the throttling unit flows into the refrigerant suction port. 9. The ejector cycle system according to claim 8 , wherein the refrigerant having passed through the throttling unit and the second evaporator is drawn into the refrigerant suction port by suction action of the refrigerant flow jetted from the nozzle portion. 10. The ejector cycle system according to claim 1 , wherein the refrigerant having passed through the throttling unit and the second evaporator is drawn into the refrigerant suction port by suction action of the refrigerant flow jetted from the nozzle portion. 11. The ejector cycle system according to claim 7 , wherein the throttling unit is coupled to the refrigerant suction port such that only the refrigerant having passed through the throttling unit flows into the refrigerant suction port. 12. The ejector cycle system according to claim 11 , wherein the refrigerant having passed through the throttling unit and the second evaporator is drawn into the refrigerant suction port by suction action of the refrigerant flow jetted from the nozzle portion. 13. The ejector cycle system according to claim 7 , wherein the refrigerant having passed through the throttling unit and the second evaporator is drawn into th

Assignees

Inventors

Classifications

  • Ejectors with the cooled primary flow at high pressure · CPC title

  • F25B41/00Primary

    Fluid-circulation arrangements · CPC title

  • Expansion valves · CPC title

  • Subcoolers, desuperheaters or superheaters · CPC title

  • Pressures · CPC title

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What does patent US8991201B2 cover?
An ejector cycle system with a refrigerant cycle through which refrigerant flows includes an ejector disposed downstream of a radiator, a first evaporator that evaporates refrigerant flowing out of the ejector, a throttling unit located in a branch passage and depressurizes refrigerant to adjust a flow rate of refrigerant, and a second evaporator located downstream of the throttling unit. In th…
Who is the assignee on this patent?
Ikegami Makoto, Oshitani Hiroshi, Yamada Etsuhisa, and 5 more
What technology area does this patent fall under?
Primary CPC classification F25B41/00. Mapped technology areas include Mechanical Engineering.
When was this patent published?
Publication date Tue Mar 31 2015 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).