Claims
- 1. A method for rapidly achieving steady state operation in a desired operating mode of an air conditioning device having a compressor, a heat exchanger which operates as a condenser in the mode and a heat exchanger which operates as an evaporator in the mode, said method comprising the sequential steps at start up of:
- a. providing a substantially unrestricted path for the flow of refrigerant from said evaporator to said condenser;
- b. flooding refrigerant from said evaporator to said condenser through the unrestricted path; and
- c. providing a restricted path for metering refrigerant flow from said condenser to said evaporator during the desired operating mode.
- 2. The method defined in claim 1 in which said flooding step is performed by operating the compressor and directing compressed refrigerant vapor therefrom to said evaporator.
- 3. The method defined in claim 1 which further includes the sequential steps of:
- a. providing a substantially unrestricted path for the flow of refrigerant from said condenser to said evaporator;
- b. flooding refrigerant from said condenser to said evaporator;
- c. providing a restricted path for metering refrigerant flow from said evaporator to said condenser;
- d. operating the compressor and directing compressed refrigerant vapor from said compressor said evaporator to defrost said evaporator; and
- e. repeating the steps of
- i. providing a substantially unrestricted path for the flow of refrigerant from said evaporator to said condenser;
- ii. flooding refrigerant from said evaporator to said condenser;
- iii. providing a restricted path for metering refrigerant flow from said condenser to said evaporator.
- 4. The method defined in claim 3 in which said flooding steps are performed by operating the compressor and directing compressed refrigerant vapor to the one of said condenser and evaporator from which refrigerant is flooded.
- 5. A method for operating an air conditioning device having a compressor; an evaporator; a condenser; refrigerant lines disposed between the compressor and the condenser, between the evaporator and the compressor and between the evaporator and the condenser; a first valve means disposed in the refrigerant line between the evaporator and the condenser, the valve means having a flow-through portion opened for an operating condition in which refrigerant can flow through said valve means substantially unrestricted by the valve means between the evaporator and the condenser, and a metering portion restricted when the valve means is in a condition in which the flow of refrigerant is metered between the condenser and the evaporator; and a reversing valve having first and second operating conditions for directing refrigerant vapor from the compressor to the condenser or the evaporator; said method comprising the steps of first
- a. placing the first valve means in the flow-through operating condition;
- b. adjusting the reversing valve to direct refrigerant vapor from the compressor to the evaporator; and
- c. operating the compressor to pump excess liquid refrigerant from the evaporator to the condenser through the flow-through portion of the first valve means; thereafter
- d. placing the first valve means in the restricted operating condition for metering refrigerant flow from the condenser to the evaporator; and
- e. adjusting the reversing valve to direct refrigerant vapor from the compressor to the condenser.
- 6. The methd for operating an air conditioning device as defined in claim 5, said method further including the steps of;
- a. placing the first valve means in the flow-through operating condition while maintaining the reversing valve in a condition to pump refrigerant vapor to the condenser; and
- b. pumping the excess liquid refrigerant from the condenser to the evaporator; then
- c. placing the first valve means in the flow metering condition for metering refrigerant flow from the evaporator to the condenser; and
- d. adjusting the reversing valve to direct refrigerant vapor from the compressor to the evaporator for defrosting the evaporator; and, at completion of defrost
- e. reopening the first valve means to permit unrestricted refrigerant flow from the evaporator to the condenser, while maintaining the reversing valve in a condition to pump refrigerant vapor to the evaporator;
- f. pumping excess liquid refrigerant from the evaporator to the condenser through the reopened first valve means;
- g. returning the first valve means to a restricted operating condition for metering refrigerant flow from the condenser to the evaporator; and
- h. repositioning the reversing valve to direct refrigerant vapor from the compressor to the condenser.
- 7. A method for operating a heat pump having indoor and outdoor heat exchangers functioning alternatively as the evaporator and the condenser during cooling and heating modes respectively; a compressor; refrigerant lines disposed between the heat exchangers and the compressor; a reversing valve having first and second positions for directing refrigerant from the compressor to the outdoor heat exchanger in a first operating mode and to the indoor heat exchanger in a second operating mode, respectively; and a bi-flow expansion valve assembly in a refrigerant line between the indoor and outdoor heat exchangers for metering refrigerant flow in either direction between the heat exchangers and for providing substantially unrestricted refrigerant flow through the refrigerant line between the heat exchangers; said method comprising the steps of:
- a. placing the reversing valve in the position for directing refrigerant vapor to the heat exchanger which will function as an evaporator during the desired operating mode;
- b. adjusting the bi-flow expansion valve assembly to permit virtually unrestricted refrigerant flow between the heat exchangers; and
- c. operating the compressor to flood liquid refrigerant from the heat exchanger which will function as the evaporator during the desired operating mode to the heat exchanger which will function as the condenser during the desired operating mode; thereafter
- d. placing the bi-flow expansion valve in a position for metering refrigerant flow between the heat exchangers; and
- e. placing the reversing valve in the position for directing refrigerant vapor to the heat exchanger which will function as a condenser during the desired mode of operating.
- 8. The method for operating a heat pump as defined in claim 7 wherein the heat pump is operating in the second operating mode with the indoor heat exchanger functioning as a condenser and the outdoor heat exchanger functioning as an evaporator, said method further comprising the steps of:
- a. adjusting the bi-flow expansion valve assembly for unrestricted flow therethrough from the indoor heat exchanger to the outdoor heat exchanger while maintaining the reversing valve in the second operating mode; and
- b. flooding refrigerant from the indoor heat exchanger to the outdoor heat exchanger through the bi-flow expansion valve assembly; thereafter
- c. placing the reversing valve in the first operating mode and adjusting the bi-flow expansion valve assembly for metering refrigerant flow from the outdoor heat exchanger to the indoor heat exchanger; and
- d. operating the compressor to defrost the outdoor heat exchanger; and, at completion of defrost
- e. re-adjusting the bi-flow expansion valve assembly to permit unrestricted flow through the refrigerant line from the outdoor heat exchanger to the indoor heat exchanger while maintaining the reversing valve in the first operating mode;
- f. flooding refrigerant from the outdoor heat exchanger to the indoor heat exchanger through the re-adjusted bi-flow expansion valve assembly; and
- g. returning the reversing valve to the second operating mode and the bi-flow expansion valve assembly to the condition for metering refrigerant flow from the indoor heat exchanger to the outdoor heat exchanger.
- 9. A method for defrosting a heat pump having an outdoor evaporator; an indoor condenser; a compressor; refrigerant lines disposed between the compressor and the evaporator, between the compressor and the condenser, and between the evaporator and the condenser; and restriction means for metering refrigerant flow in paths from the evaporator to the condenser and from the condenser to the evaporator; said method comprising the sequential steps of:
- a. unrestricting the flow of refrigerant in a path from the condenser to the evaporator;
- b. flooding liquid refrigerant from the condenser to the evaporator;
- c. restricting the flow of refrigerant in a path from the evaporator to the condenser;
- d. operating the heat pump in a conventional defrost mode, by directing refrigerant vapor from the compressor to the evaporator;
- e. unrestricting the flow of refrigerant in a path from the evaporator to the condenser;
- f. flooding refrigerant from the evaporator to the condenser;
- g. restricting the flow of refrigerant in a path from the condenser to the evaporator; and
- h. resuming conventional heat pump operation.
- 10. In an air conditioning device having first and second heat exchangers, one of said heat exchangers operating as an evaporator and the other of said heat exchangers operating as a condenser; a compressor; refrigerant lines disposed between the heat exchangers and between the compressor and the heat exchangers; and a reversing valve for directing refrigerant from the compressor to either of said heat exchangers, the improvement comprising: means initiated for a short time period at start up to cause flooding of refrigerant from said heat exchanger operating as a evaporator to said heat exchanger operating as a condenser.
- 11. The air conditioning device defined in claim 10, wherein said flooding means includes a bi-flow expansion valve assembly disposed in the refrigerant line between said first and second heat exchangers having a first path therethrough for metering the flow of refrigerant between said first and second heat exchangers and second path therethrough for allowing the flow of refrigerant between said first and second heat exchangers substantially unrestricted by said bi-flow expansion valve assembly.
- 12. A method for rapidly achieving steady state operation of a heat pump system having a low pressure portion and a high pressure portion, said method comprising the sequential steps at start up of:
- a. providing a substantially unrestricted path for the flow of refrigerant from the low pressure portion of the systems to the high pressure portion of the systems;
- b. flooding refrigerant from said low pressure portion of the system to said high pressure portion of the system; and
- c. providing a restricted path for metering refrigerant flow from the high pressure portion of the system to the low pressure portion of the system.
Parent Case Info
This application is a continuation of application Ser. No. 06/437,903, filed on Nov. 1, 1982, now abandoned.
US Referenced Citations (2)
Continuations (1)
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Number |
Date |
Country |
Parent |
437903 |
Nov 1982 |
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