Claims
- 1. A fluid flow control system for use with a heat exchange apparatus including a compressor, a first heat exchanger to extract heat from the heat exchange apparatus and a second heat exchanger to provide heat to the heat exchange apparatus, said fluid flow control system comprising;
- a system charge control device operatively coupled between the compressor and the second heat exchanger to regulate the flow of refrigerant therebetween;
- said system charge control device comprising an enclosed liquid/vapor reservoir to retain sufficient liquid refrigerant to provide adequate refrigerant reserve over a range of operating conditions of the heat exchange apparatus,
- said enclosed liquid/vapor reservoir having a liquid/vapor inlet port formed therein to receive refrigerant from the second heat exchanger and a vapor outlet port formed therein to supply vaporized refrigerant to the compressor, whereby the refrigerant reaching said liquid/vapor inlet port passes in thermal contact with the liquid refrigerant stored in said enclosed liquid/vapor reservoir to evaporate liquid refrigerant in said enclosed liquid/vapor reservoir to reduce superheat of vaporized refrigerant from the second heat exchanger or to trap liquid refrigerant from the second heat exchanger within said enclosed liquid/vapor reservoir, and
- said enclosed liquid/vapor reservoir being thermally insulated from external conditions, such that the temperature of the liquid refrigerant within said enclosed liquid/vapor reservoir corresponds to the suction pressure of the compressor to control the proper active charge of refrigerant circulating throughout the heat exchanger apparatus.
- 2. The fluid flow control system of claim 1 wherein said system charge control device includes an evaporator tube having a liquid/vapor inlet port, a liquid/vapor outlet port and a liquid entrance, such that liquid refrigerant within said thermally insulated enclosed liquid/vapor reservoir may enter said evaporator tube, whereby refrigerant from the second heat exchanger passes through the interior of said evaporator tube, thereby trapping any liquid in the refrigerant or reducing superheat of the vapor arriving at said liquid/vapor inlet port by evaporating a portion of the liquid refrigerant within said evaporator tube.
- 3. The fluid flow control system of claim 2 wherein said system charge control device further includes a liquid/vapor tube disposed between said liquid/vapor port and said evaporator tube to feed refrigerant from the second heat exchanger to the interior of said evaporator tube.
- 4. The fluid flow control system of claim 2 wherein said system charge control device further includes a fluid velocity reducing means adjacent said evaporator outlet port to reduce the velocity of the refrigerant from said evaporator tube.
- 5. The fluid flow control system of claim 18 wherein the portion of said reservoir nearest the outlet thereof is reduced in cross-sectional area relative to the liquid refrigerant storage portion of said thermally insulated enclosed liquid/vapor reservoir to provide adequate liquid refrigerant storage within said reservoir and to provide the proper velocity of the refrigerant approaching the said outlet port, such that oil/vapor bubbles entrained in said refrigerant vapor proceed to exit said outlet port while liquid refrigerant is retained within said thermally insulated enclosed liquid/vapor reservoir.
- 6. A fluid flow control system for use with a heat exchange apparatus including a compressor, a first heat exchanger to extract heat from the heat exchange apparatus and a second heat exchanger to provide heat to the heat exchange apparatus, said fluid flow control system comprising;
- a system charge control device operatively coupled between the compressor and the second heat exchanger to regulate the flow of refrigerant therebetween,
- said system charge control device comprising an enclosed liquid/vapor reservoir to retain sufficient liquid refrigerant to provide adequate refrigerant reserve over a range of operating conditions of the heat exchange apparatus, said enclosed liquid/vapor reservoir having a liquid/vapor inlet port formed therein to receive refrigerant from the second heat exchanger and a vapor outlet port formed therein to supply vaporized refrigerant to the compressor,
- said system charge control device including an evaporator tube in fluid communication with said liquid/vapor inlet port, said evaporator tube having an entrance formed to feed liquid refrigerant to the interior of said evaporator tube from said enclosed liquid/vapor reservoir, a liquid/vapor inlet port and a liquid/vapor outlet port formed on said evaporator tube, such that refrigerant reaching said liquid/vapor inlet port passes through liquid refrigerant in said evaporator tube to evaporate liquid refrigerant from said enclosed liquid/vapor reservoir to reduce superheat of the vaporized refrigerant from the second heat exchanger or to trap liquid refrigerant from the second heat exchanger within said enclosed liquid/vapor reservoir, and
- said enclosed liquid/vapor reservoir being thermally insulated from external conditions such that the temperature of the liquid refrigerant within said enclosed liquid/vapor reservoir corresponds to the suction pressure of the compressor to control the proper active charge of refrigerant circulating throughout the heat exchange apparatus.
- 7. The flow control system of claim 6 wherein said system charge control device further includes a liquid/vapor tube disposed between said liquid/vapor port and said evaporator tube to feed refrigerant from the second heat exchange to the interior of said evaporator tube.
- 8. The fluid flow control system of claim 6 wherein said system charge control device further includes a fluid velocity reducing means adjacent said evaporator outlet port to reduce the velocity of the refrigerant from said evaporator tube.
- 9. The fluid flow control system of claim 6 wherein the portion of said thermally insulated enclosed liquid/vapor reservoir nearest the outlet thereof is reduced in cross-sectional area relative to the liquid refrigerant storage portion of said thermally insulated enclosed liquid/vapor reservoir to provide adequate liquid refrigerant storage within said reservoir and to provide the proper velocity of the refrigerant approaching the said outlet port such that oil/vapor bubbles proceed to exit said outlet port and liquid refrigerant is retained within said thermally insulated enclosed liquid/vapor reservoir.
- 10. A fluid flow control system for use with a heat exchange apparatus including a compressor, a first heat exchanger to extract heat from the heat exchange apparatus and a second heat exchanger to provide heat to the heat exchange apparatus, said fluid flow control system comprising;
- a system charge control device operatively coupled between the compressor and the second heat exchange to regulate the flow of refrigerant therebetween,
- said system charge control device comprising an enclosed liquid/vapor reservoir to retain sufficient liquid refrigerant to provide adequate refrigerant reserve over a range of operating conditions of the heat exchange apparatus,
- said enclosed liquid/vapor reservoir having a liquid/vapor inlet port formed therein to receive refrigerant from the second heat exchange and a vapor outlet formed therein to supply vapor refrigerant to the compressor and a liquid flow control device operatively coupled between the first and second heat exchangers to regulate the flow of liquid refrigerant therebetween and prevent passage of vapor from the first heat exchanger through said liquid flow control device to the second heat exchanger, much that refrigerant reaching said liquid/vapor inlet port passes in thermal contact with liquid refrigerant in said enclosed liquid/vapor reservoir to evaporate liquid refrigerant in said enclosed liquid/vapor reservoir to reduce superheat of the vaporized refrigerant from the second heat exchanger or to trap liquid refrigerant from the second heat exchanger within said enclosed liquid/vapor reservoir, and
- said enclosed liquid/vapor reservoir being thermally insulated from external conditions, such that the temperature of the liquid refrigerant within said enclosed liquid/vapor reservoir corresponds to the suction pressure of the compressor to control the proper active charge of refrigerant circulating within the heat exchange apparatus.
- 11. The fluid flow control system of claim 10 wherein said liquid flow control device includes a liquid metering means operatively disposed within an enclosed liquid/vapor reservoir, said enclosed liquid/vapor reservoir having a liquid/vapor inlet port to receive liquid from the first heat exchanger and a liquid metering orifice to feed liquid from said enclosed liquid/vapor reservoir, said liquid metering means comprising a movable flow restrictor disposed relative to said liquid metering orifice, such that movement of said movable flow restrictor relative to said liquid metering orifice controls the flow rate of liquid through said liquid metering orifice in response to the liquid level within said enclosed liquid/vapor reservoir to regulate the rate of flow of liquid from the first heat exchanger.
- 12. The fluid flow control system of claim 11 wherein said movable flow restrictor comprises a metering member rotatably attached to said enclosed liquid/vapor reservoir such that said metering member rotates relative to the center line axis of said liquid metering orifice in response to the liquid refrigerant level within said enclosed liquid/vapor reservoir to control the effective cross-sectional area of said liquid metering orifice.
- 13. The fluid flow control system of claim 10 wherein said system charge control device includes an evaporator tube having a liquid/vapor inlet port, a liquid/vapor outlet port and a liquid entrance such that liquid refrigerant within said thermally insulated enclosed liquid/vapor reservoir may enter said evaporator tube, whereby refrigerant from the second heat exchanger entering said inlet port passes through the interior of said evaporator tube thereby trapping any liquid in the refrigerant or reducing superheat of the vapor arriving at said liquid/vapor inlet port by evaporating a portion of the liquid refrigerant within said evaporator tube.
- 14. The fluid flow control system of claim 13 wherein said system charge control device further includes a liquid/vapor tube disposed between said liquid/vapor port and said evaporator tube to feed refrigerant from the second heat exchanger to the interior of said evaporator tube.
- 15. The fluid flow control system of claim 13 wherein said system charge control device further includes a fluid velocity reducing means adjacent said evaporator outlet port to reduce the velocity of the refrigerant from said evaporator tube.
- 16. The fluid flow control system of claim 13 wherein the portion nearest the outlet of said thermally insulated enclosed liquid/vapor reservoir is reduced in cross-sectional area relative to the liquid refrigerant storage portion of said thermally insulated enclosed liquid/vapor reservoir to provide adequate liquid refrigerant storage within said reservoir and to provide the proper velocity of the refrigerant approaching the said outlet port, such that oil/vapor bubbles proceed to exit said outlet port and liquid refrigerant is retained within said thermally insulated enclosed liquid/vapor reservoir.
CO-PENDING APPLICATIONS
This application is a continuation of application Ser. No. 35,472 abandoned filed Apr. 3, 1987, which application is a continuation of application Ser. No. 835,611 filed Mar. 3, 1986, now U.S. Pat. No. 4,665,716, which application is a continuation-in-part of application Ser. No. 652,849, filed Sept. 21, 1984, now U.S. Pat. No. 4,573,327.
US Referenced Citations (9)
Continuations (3)
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Number |
Date |
Country |
Parent |
35472 |
Apr 1987 |
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Parent |
835611 |
Mar 1986 |
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Parent |
652849 |
Sep 1984 |
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