Claims
- 1. A compressor-pump unit for use in a vapor-compression refrigeration system, the compressor-pump unit comprising:
a driving device including a rotatable shaft; a compressor, coupled with a first portion of the shaft, for compressing gaseous refrigerant within the vapor-compression refrigeration system; a liquid pump, coupled with a second portion of the shaft, for receiving liquid refrigerant having a first pressure and for discharging the received liquid refrigerant at a second pressure, the second pressure being higher than the first pressure by a predetermined amount such that the discharged liquid refrigerant is subcooled; and a pre-cooling circuit connected to the liquid pump, the pre-cooling circuit being exposed to the gaseous refrigerant whereby the gaseous refrigerant absorbs heat from the liquid refrigerant, prior to the liquid refrigerant entering the liquid pump.
- 2. The compressor-pump unit of claim 1, wherein the liquid refrigerant has a temperature at or below the saturation temperature of the liquid refrigerant prior to entering the liquid pump.
- 3. The compressor-pump unit of claim 1 wherein the pre-cooling circuit is a tube.
- 4. The compressor-pump unit of claim 1 wherein the pre-cooling circuit is an interstitial space defined between the gaseous refrigeration and the liquid pump.
- 5. The compressor-pump unit of claim 1, wherein the compressor-pump unit further includes a sealable housing within which the first and second portions of the shaft, the compressor, the pump, and the pre-cooling circuit are supported, wherein the housing includes a refrigerant inlet and a refrigerant outlet for the compressor and a refrigerant inlet and a refrigerant outlet for the pump.
- 6. The compressor-pump unit of claim 5, wherein the shaft of the driving device has a third portion external to the housing.
- 7. The compressor-pump unit of claim 6, wherein the driving device includes a belt assembly external to the housing and coupled to the third portion of the shaft to rotate the first and the second portions of the shaft.
- 8. The compressor-pump unit of claim 6, wherein the driving device includes an electric motor coupled to the third portion of the shaft to rotate the first and the second portions of the shaft.
- 9. The compressor-pump unit of claim 5, wherein the driving device includes an electric motor having a rotor coupled with a third portion of the shaft to rotate the first and the second portions of the shaft, the electric motor being disposed within the housing.
- 10. The compressor-pump unit of claim 9, wherein the compressor has a discharge pathway for transmitting compressed gaseous refrigerant from the compressor to the compressor refrigerant outlet of the housing and wherein the compressor-pump unit further includes a liquid injection pipe having an inlet on the pump refrigerant outlet of the housing and an outlet on the discharge pathway of the compressor, the liquid injection pipe being wholly contained within the housing.
- 11. The compressor-pump unit of claim 9, wherein the electric motor is interposed between the compressor and the pump.
- 12. The compressor-pump unit of claim 11, wherein the housing includes a pump cooling, refrigerant pathway for directing the gaseous refrigerant between the refrigerant inlet in the housing for the compressor and the compressor such that the gaseous refrigerant flows over and contacts a pump casing of the pump, whereby the gaseous refrigerant absorbs heat from the liquid refrigerant, through the pump casing, prior to the liquid refrigerant being discharged from the pump.
- 13. The compressor-pump unit of claim 11, the housing including a motor-cooling, refrigerant pathway for directing the gaseous refrigerant between the refrigerant inlet in the housing for the compressor and the compressor, wherein the electric motor is positioned within the motor cooling pathway to be cooled through contact with the gaseous refrigerant.
- 14. The compressor-pump unit of claim 5, wherein the pump is a centrifugal pump having an impeller coupled to the second portion of the shaft and further, wherein the housing includes a compressor end portion being configured to form the pump casing for the pump, the pump casing including a pump volute, the refrigerant inlet for the pump, and the refrigerant outlet for the pump.
- 15. The compressor-pump unit of claim 1, wherein:
the compressor includes a compressor housing and a discharge pathway within the compressor housing for storing compressed gaseous refrigerant within the compressor housing prior to discharge from the compressor housing; the liquid pump includes a refrigerant outlet for discharging the higher, second pressure liquid refrigerant; and the compressor-pump unit includes a liquid injection pipe assembly with a liquid injection pipe section, the liquid injection pipe section having an inlet on the pump refrigerant outlet and an outlet on the discharge pathway of the compressor, whereby a volume of the higher, second pressure liquid refrigerant is diverted into the gaseous refrigerant in the discharge pathway within the compressor housing.
- 16. The compressor-pump unit of claim 15, the liquid injection assembly further including a control valve for measuring and controlling the volume of the diverted liquid refrigerant.
- 17. The compressor-pump unit of claim 16, wherein the liquid injection assembly further includes a feedback controller for continually monitoring and operating the control valve to control the volume of the diverted liquid refrigerant in response to pressure signals received from a pressure sensor positioned to sense pressures within the discharge pathway of the compressor and from a temperature sensor operable to sense temperature of refrigerant downstream from the compressor housing.
- 18. The compressor-pump of claim 1 and further comprising:
a magnetic drive coupling whereby shaft torque is transmitted to the pump rotating member by magnetic flux and there is no direct connection between pump rotating member and shaft for inhibiting liquid refrigerant within the liquid pump from entering the gaseous refrigerant.
- 19. A combined refrigeration unit-having a refrigeration compressor for compressing gaseous refrigerant and a liquid refrigerant pump for receiving and discharging a liquid refrigerant, the combined refrigeration system comprising:
a liquid pre-cooling heat exchanger connected to the liquid refrigerant pump and exposed to the gaseous refrigerant, the gaseous refrigerant absorbing heat from the liquid refrigerant within the liquid pre-cooling heat exchanger, prior to the liquid refrigerant entering the liquid pump.
- 20. The combined refrigeration unit of claim 19 wherein the liquid refrigerant has a temperature at or below the saturation temperature of the liquid refrigerant prior to entering the liquid pump.
- 21. The combined refrigeration unit of claim 19 wherein the pre-cooling circuit is a tube.
- 22. The combined refrigeration unit of claim 19 wherein the pre-cooling circuit is a space defined between the gaseous refrigeration and the liquid pump.
- 23. The combined refrigeration unit of claim 19 wherein the pre-cooling circuit is composed of transpiring material providing heat exchange by evaporation of liquid through a slightly porous material.
- 24. A method of enhancing the operational efficiency of a combined refrigeration system having a refrigeration compressor for compressing gaseous refrigerant and a liquid refrigerant pump for receiving and discharging a liquid refrigerant, the method comprising the steps of:
exposing the liquid refrigerant to the gaseous refrigerant prior to the liquid refrigerant entering the liquid pump.
- 24. The method of claim 23 and further comprising:
lowering the temperature of the liquid refrigerant to a temperature at or below the saturation temperature of the liquid refrigerant prior to entering the liquid pump.
- 25. The method of claim 23 and further comprising:
enclosing the refrigeration compressor and the liquid refrigerant pump within a sealable housing; providing a pre-cooling circuit within the housing, the liquid refrigerant flowing through the pre-cooling circuit; and exposing the pre-cooling circuit to the gaseous refrigerant.
- 25. The method of claim 25 wherein the pre-cooling circuit is a tube.
- 26. The method of claim 25 wherein the pre-cooling circuit is a space defined between the gaseous refrigeration and the liquid pump.
Parent Case Info
[0001] The present application is a continuation-in-part of pending patent application Ser. No. 09/246,080, filed on Feb. 5, 1999, entitled “Refrigeration System with a Compressor-Pump Unit and a Liquid-Injection Desuperheating Line”.
CONTRACTUAL ORIGIN OF THE INVENTION
[0002] The United States Government has rights in this invention under Contract No. DE-AC36-99CH10093 between the United States Department of Energy and the National Renewable Energy Laboratory, a Division of the Midwest Research Institute.
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09246080 |
Feb 1999 |
US |
Child |
09783503 |
Feb 2001 |
US |