Claims
- 1. Any refrigeration, air conditioning or process cooling system using a reciprocating screw, scroll, centrifugal or other similar type of compressor and any type of refrigerant,
- the improvement including
- a first positive-displacement pimp used in a parallel piping arrangement which arrangement is parallel to a conventional liquid conduit between a condenser and an expansion valve, and parallel with a differential pressure regulating valve and a check valve,
- a variable speed drive, driving said positive displacement pump, and
- a drive controller connected to and controlling said variable speed drive and having as input a signal from a sensor of a variable proportional to refrigerant flow in the system or a related variable,
- whereby the speed of the positive displacement pump is adjusted to the minimum speed necessary to add a predetermined increment of pressure to the liquid conduit or to eliminate flash gas.
- 2. A system as recited in claim 1 further characterized by the provision of:
- a compressor rack having an electrical power source, and
- a sensor of amperage draw by the compressor rack producing a signal proportional to said amperage draw and communicating with said drive controller to control said pump speed.
- 3. A system as recited in claim 1 further characterized by the provision of:
- a pressure sensor in said liquid conduit producing a signal proportional to said pressure and communicating with said drive controller to control said pump speed.
- 4. A system as recited in claim 1 further characterized by the provision of:
- a pair of pressure sensors at, respectively, the input and output of the pump assembly producing a combined signal proportional the pressure differential across the pump and communicating with said drive controller to control said pump speed.
- 5. A system as recited in claim 1 further characterized by the provision of:
- a flow sensor in the liquid conduit at the outlet of the liquid receiver or condenser producing a signal proportional to the liquid flow rate and communicating with said drive controller to control said pump speed.
- 6. A system as recited in claim 1 further characterized by the provision of:
- a vapor sensor in the liquid conduit communicating with said drive controller to control said pump speed sufficiently to eliminate the vapor.
- 7. A system as recited in claim 1 further characterized by the provision of:
- a compressor rack having an electrical power source and a rack controller, said rack controller communicating with said drive controller to control said pump speed according to the same inputs received by said rack controller.
- 8. A system as recited in claim 1 further characterized by the provision of:
- a sensor of the amount of sub-cooling of the refrigerant at the inlet to the expansion valve and communicating with said drive controller to control said pump speed.
- 9. A system as recited in claim 1 further characterized by the provision of:
- a superheat sensor at the outlet of the evaporator providing a signal proportional to the degree of superheat and communicating with said drive controller to control said pump speed.
- 10. A system as recited in claim 1, wherein the system includes
- a liquid injection line between the output of the first pump and the output of a compressor, used for de-superheating the compressor discharge vapor, and
- a thermostatic expansion valve and sensing bulb to control the flow of liquid refrigerant through the injection line.
- 11. A system as recited in claim 1, wherein the system includes
- a control system which sets the minimum condensing temperature setting of refrigerant exiting the condenser to a lower-than-conventional value when the first pump is functioning properly and reverts the air conditioning or refrigeration system back to the higher minimum condensing temperature setting in case of failure of the first pump.
- 12. The system of claim 1 wherein the first pump consists of an outer driving magnet 200, a stationary cup 201, an O-ring seal 202, an inner driven magnet 203, a rotor assembly 204, vanes 205, an O-ring seal 206, and a brass head 207.
- 13. A vapor-compression heat transfer system having fluid refrigerant, a compressor, a condenser, an expansion valve, an evaporator, a refrigerant conduit between the condenser and the expansion valve, and a refrigerant pump in the conduit adapted to increase the pressure of the refrigerant between the condenser and the expansion valve,
- the improvement comprising
- (a) the fact that the said pump is a positive displacement pump, and
- (b) a first bypass conduit is provided in parallel around the pump, said first bypass conduit including a differential pressure regulating valve which imposes an upper limit on the pressure increase caused by the pump,
- (c) a second bypass conduit is provided in parallel around the pump, said second bypass conduit including a check valve adapted to stop flow of refrigerant through the said second bypass conduit from the expansion valve to the condenser, but to allow flow of refrigerant through the said second bypass conduit from the condenser to the expansion valve,
- (d) said pump, and bypass conduits being adapted to increase the said pressure of the refrigerant sufficiently to avoid the formation of refrigerant flash gas in said conduit between the pump and the expansion valve, while still allowing flow of refrigerant from the condenser to the expansion valve if the pump fails to operate,
- (e) a variable speed drive, driving said positive displacement pump, and
- (f) a drive controller connected to and controlling said variable speed drive and having as input a signal from a sensor of a variable proportional to refrigerant flow in the system or a related variable, whereby the speed of the positive displacement pump is adjusted to the minimum speed necessary to add a predetermined increment of pressure to the liquid conduit or to eliminate flashgas.
- 14. A vapor-compression heat transfer system as recited in claim 13, wherein a liquid injector conduit is provided between an output side of the pump to an output side of the compressor, and adapted to deliver pressurized liquid refrigerant de-superheat the refrigerant when it exits the compressor.
- 15. A vapor-compression heat transfer system as recited in claim 14, wherein the liquid injector conduit includes a thermostatic expansion valve and bulb sensor to monitor the temperature of the gas exiting the compressor so as to minimize the superheat in the refrigerant.
- 16. A vapor-compression heat transfer system as recited in claim 13, wherein a control system is provided to cause reduction in the minimum condensing temperature at the outlet of the condenser when the pump is effectively reducing flash gas, but the control system is adapted to raise the minimum condensing temperature to a point which reduces flash gas, if the pump fails to operate.
- 17. Any refrigeration, air conditioning or process cooling system using a reciprocating screw, scroll, centrifugal or other similar type of compressor and any type of refrigerant,
- the improvement including
- a first positive-displacement pump used in a parallel piping arrangement which arrangement is parallel to a conventional conduit between a condenser and an expansion valve, and parallel with a differential pressure regulating valve and a check valve.
- 18. A vapor-compression heat transfer system having fluid refrigerant, a compressor, a condenser, an expansion valve, an evaporator, a refrigerant conduit between the condenser and the expansion valve, and a refrigerant pump in the conduit adapted to increase the pressure of the refrigerant between the condenser and the expansion valve, the improvement comprising
- (a) the fact that the said pump is a positive displacement pump, and
- (b) a first bypass conduit is provided in parallel around the pump, said first bypass conduit including a differential pressure regulating valve which imposes an upper limit on the pressure increase caused by the pump, and
- (c) a second bypass conduit is provided in parallel around the pump, said second bypass conduit including a check valve adapted to stop flow of refrigerant through the said second bypass conduit from the expansion valve to the condenser, but to allow flow of refrigerant through the said second bypass conduit from the condenser to the expansion valve, and
- (d) said pump, and bypass conduits being adapted to increase the said pressure of the refrigerant sufficiently to avoid the formation of refrigerant flash gas on the said conduit between the pump and the expansion valve, while still allowing flow of refrigerant from the condenser to the expansion valve if the pump fails to operate.
- 19. A compression type refrigerant system, comprising:
- an evaporator, a compressor, a condenser, a refrigerant receiver and conduit means interconnecting the same in a single closed loop for circulating refrigerant therethrough, the conduit means including,
- a first conduit for circulating a flow of refrigerant from the receiver to the evaporator and,
- a second conduit for circulating a return flow of refrigerant gas from the evaporator to the receiver solely through the compressor and the condenser for condensation by the condenser at a first pressure directly related to the head pressure at the compressor,
- a variable flow expansion valve in the first conduit adjacent the evaporator for expanding the flow of refrigerant into the evaporator,
- a third conduit which provides a parallel path around a section of said first conduit adjacent an outlet port of the receiver,
- a positive displacement pump in the third conduit adjacent the receiver, the pump being adapted, continuously during operation of the compressor, to increase the pressure of the condensed refrigerant in the first conduit by a generally constant increment of pressure of at least five pounds per square inch to provide the refrigerant with a second pressure greater than the first pressure by the amount of said increment, the second pressure being sufficient to suppress flash gas and a feed a completely condensed liquid refrigerant to the expansion valve, the first conduit circulating the refrigerant solely through the pump,
- motor means for the pump, and
- a magnetic pump drive connecting the motor means to the pump to drive the pump.
- 20. A system as recited in claim 19, which includes
- a fourth conduit which provides a parallel path around the said section of said first conduit, and
- includes a pressure regulating valve, in said fourth conduit, said pressure regulating valve being adapted to regulate the amount of pressure added to the first conduit by the pump.
- 21. A system as recited in claim 20, which includes
- check valve in said section of said first conduit, said check valve being adapted to maintain the pressure differential added to the first conduit by the pump while allowing full and uninterrupted flow of refrigerant in the event of pump failure.
- 22. A system as recited in claim 19, which includes
- check valve in said section of said first conduit, said check valve being adapted to maintain the pressure differential added to the first conduit by the pump while allowing full and uninterrupted flow of refrigerant in the event of pump failure.
- 23. A system as recited in claim 19, which includes a pressure regulating valve in a bypass around the pump to control the effect of the pump, and a check-valve in a bypass around the pump to allow refrigerant flow if the pump fails.
CROSS REFERENCE TO RELATED APPLICATIONS
This application is a continuation of PCT/US/17147 filed 26 Oct., 1996 and is also a continuation-in-part of application Ser. No. 08/380,739, filed 30 Jan., 1995, now abandoned, which was a continuation of application Ser. No. 08/127,976, filed 28 Sep., 1993, now U.S. Pat. No. 5,435,148.
US Referenced Citations (28)
Foreign Referenced Citations (4)
| Number |
Date |
Country |
| 1254756 |
May 1989 |
CAX |
| 3415000 |
Apr 1984 |
DEX |
| 3511421 |
Mar 1985 |
DEX |
| 4116344 |
Apr 1992 |
JPX |
Continuations (1)
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Number |
Date |
Country |
| Parent |
127976 |
Sep 1993 |
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Continuation in Parts (1)
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Number |
Date |
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| Parent |
380739 |
Jan 1995 |
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