Bi-directional cascade heat pump system

US2016356530A1 · US · A1

Patent metadata
FieldValue
Publication numberUS-2016356530-A1
Application numberUS-201615243095-A
CountryUS
Kind codeA1
Filing dateAug 22, 2016
Priority dateDec 21, 2009
Publication dateDec 8, 2016
Grant date

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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.

A multi-mode, bi-directional cascade heat pump system, according to some examples, includes at least two chillers each being part of a unidirectional refrigerant circuit. The system includes heat exchangers each of which are dedicated to operate as just a condenser or as just an evaporator, regardless of the system's operating mode. In some modes, a secondary fluid transfers heat between the condenser of one chiller and the evaporator of another chiller before the fluid returns to a secondary fluid source such as, for example, a geothermal borefield or a conventional water source. In some embodiments, fluid is withdrawn from a borefield by way of a pump having a speed that varies to maintain a desired fluid temperature and/or a desired heat transfer rate at the borefield. The heat pump system includes means for minimizing flow through the borefield and for minimizing unnecessary mixing of relatively high and low temperature fluid.

First claim

Opening claim text (preview).

1 . A heat pump system operable with a refrigerant and a secondary fluid, the heat pump system comprising: a geothermal fluid source; a first chiller having a first heat exchanger; a second chiller having a second heat exchanger; and a fluid circulation loop coupling the geothermal fluid source in heat transfer relationship with the first chiller and the second chiller such that the secondary fluid flows from the geothermal fluid source, then flows sequentially through the first heat exchanger and the second heat exchanger, but not necessarily in that order, and then flows back to the geothermal fluid source. 2 . The heat pump system of claim 1 , wherein the first chiller and the second chiller are each part of a unidirectional refrigerant circuit, and the heat pump system is selectively operable in a first mode and a second mode, such that: in the first mode, the secondary fluid flows sequentially from the geothermal fluid source, through the first heat exchanger, through the second heat exchanger, and back to the geothermal fluid source, and in the second mode, the secondary fluid flows sequentially from the geothermal fluid source, through the second heat exchanger, through the first heat exchanger, and back to the geothermal fluid source. 3 . The heat pump system of claim 1 , further comprising a first pump and a second pump connected in fluid communication with the fluid circulation loop, the first pump and the second pump are piped to convey the secondary fluid from an outlet of the first pump to an inlet of the second pump. 4 . The heat pump system of claim 3 , further comprising a third pump connected in fluid communication with the fluid circulation loop and being piped to receive the secondary fluid from the second pump, whereby the secondary fluid flows sequentially through the first pump, the second pump, and the third pump. 5 . The heat pump system of claim 1 , wherein the heat pump system is selectively operable in a first priority mode and a second priority mode, and the heat pump system further comprises: a first pump of variable speed connected in fluid communication with the geothermal fluid source and the fluid circulation loop; a first temperature sensor at a first location on the fluid circulation loop; and a second temperature sensor at a second location on the fluid circulation loop, the speed of the first pump varying in response to the first temperature sensor when the heat pump system is operating in the first priority mode, the speed of the first pump varying in response to the second temperature sensor when the heat pump system is operating in the second priority mode. 6 . The heat pump system of claim 5 , further comprising a second pump connected in fluid communication with the fluid circulation loop, the first pump and the second pump are piped to convey the secondary fluid from an outlet of the first pump to an inlet of the second pump. 7 . The heat pump system of claim 5 , wherein the first chiller and the second chiller each have a separate charge of refrigerant. 8 . The heat pump system of claim 7 , wherein the secondary fluid flows sequentially through the first heat exchanger and the second heat exchanger. 9 - 28 . (canceled) 29 . The heat pump system of claim 1 , wherein the first heat exchanger is a condenser and the second heat exchanger is an evaporator. 30 . The heat pump system of claim 1 , wherein the geothermal fluid source includes a substantially closed loop system, wherein the secondary fluid circulates between the geothermal fluid source and the fluid circulation loop. 31 . The heat pump system of claim 1 , wherein the geothermal fluid source includes an open system, wherein at least some of the secondary fluid circulating between the geothermal fluid source and the fluid circulation loop fails to return to the geothermal fluid source. 32 . The heat pump system of claim 3 , wherein the secondary fluid is discharged from the first pump at a first flow rate and the secondary fluid is discharged from the second pump at a second flow rate. 33 . The heat pump system of claim 32 , wherein the second flow rate varies. 34 . The heat pump system of claim 33 , wherein the second flow rate varies as a function of a temperature of the secondary fluid. 35 . The heat pump system of claim 33 , wherein a ratio of the first flow rate to the second flow rate varies. 36 . The heat pump system of claim 35 , wherein the first flow rate is higher than the second flow rate, whereby the ratio is greater than one. 37 . The heat pump system of claim 35 , wherein the ratio is at least as great as one.

Assignees

Inventors

Classifications

  • F25B29/003Primary

    of the compression type system · CPC title

  • F25B30/06Primary

    characterised by the source of low potential heat · CPC title

  • geothermal · CPC title

  • Several compression cycles arranged in parallel · CPC title

  • Pump speed control · CPC title

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Frequently asked questions

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What does patent US2016356530A1 cover?
A multi-mode, bi-directional cascade heat pump system, according to some examples, includes at least two chillers each being part of a unidirectional refrigerant circuit. The system includes heat exchangers each of which are dedicated to operate as just a condenser or as just an evaporator, regardless of the system's operating mode. In some modes, a secondary fluid transfers heat between the co…
Who is the assignee on this patent?
Trane Int Inc
What technology area does this patent fall under?
Primary CPC classification F25B29/003. Mapped technology areas include Mechanical Engineering.
When was this patent published?
Publication date Thu Dec 08 2016 00:00:00 GMT+0000 (Coordinated Universal Time) (A1). 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).