Refrigeration and heating system
10718553 ยท 2020-07-21
Assignee
Inventors
Cpc classification
F25B9/008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2400/13
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2600/2501
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2400/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2339/047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B29/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B6/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2400/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02A30/274
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
F25B25/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B29/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A refrigeration and heating system includes a refrigeration circuit which includes in the direction of flow of a circulating refrigerant: at least one compressor; a refrigeration circuit side of a coupling heat exchanger; at least one gas cooler; at least one gas cooler bypass line and at least one gas cooler bypass valve assembly allowing to bypass the at least one gas cooler; at least one expansion device and at least one evaporator. The refrigeration and heating system includes a heating circuit which includes in the direction of flow of a circulating heating fluid: a heating circuit side of the coupling heat exchanger and at least one heating device.
Claims
1. Refrigeration and heating system comprising: a refrigeration circuit which comprises in a direction of flow of a circulating refrigerant: at least one compressor; a refrigeration circuit side (Sa) of a coupling heat exchanger; at least one gas cooler; at least one gas cooler bypass line and at least one gas cooler bypass valve assembly allowing to bypass the at least one gas cooler; at least one expansion device; and at least one evaporator; and a heating circuit which comprises in a direction of flow of a circulating heating fluid: a heating circuit side of the coupling heat exchanger; and at least one heating device; wherein the coupling heat exchanger is configured for transferring heat from the circulating refrigerant to the circulating heating fluid; and wherein the gas cooler bypass valve assembly is configured for allowing to selectively direct a first flow of refrigerant either through the gas cooler or through the gas cooler bypass line bypassing the gas cooler and to gradually regulate a second flow of refrigerant flowing through the other of the gas cooler and the gas cooler bypass line which mixes with the first flow downstream of the gas cooler.
2. Refrigeration and heating system of claim 1, wherein the gas cooler bypass valve assembly is located downstream of the gas cooler.
3. Refrigeration and heating system of claim 1, wherein the gas cooler bypass valve assembly comprises a gradually adjustable three-way gas cooler bypass valve.
4. Refrigeration and heating system of claim 1, wherein the gas cooler bypass valve assembly comprises a digital three-way gas cooler bypass valve and an adjustable bypass valve allowing to by-pass the digital three-way gas cooler bypass valve.
5. Refrigeration and heating system of claim 4, wherein the adjustable bypass valve is connected between an outlet of the gas cooler and an outlet of the digital three-way gas cooler bypass valve.
6. Refrigeration and heating system of claim 4, wherein the adjustable bypass valve is connected between an outlet of the gas cooler bypass line and an outlet of the digital three-way bypass valve.
7. Refrigeration and heating system of claim 1, further comprising a receiver downstream of the gas cooler.
8. Refrigeration and heating system of claim 7, further comprising a high pressure expansion device upstream of the receiver.
9. Refrigeration and heating system of claim 7, further comprising a flash gas line connecting an upper portion of the receiver with an inlet site of the at least one compressor.
10. Refrigeration and heating system of claim 9 further comprising a flash gas valve provided in the flash gas line.
11. Refrigeration and heating system of claim 9, further comprising a flash gas heat exchanger allowing heat exchange between a flash gas and the refrigerant leaving from the bottom of the receiver.
12. Refrigeration and heating system of claim 1, further comprising a control unit, which is configured for controlling the at least one compressor and/or the gas cooler bypass valve assembly.
13. Refrigeration and heating system of claim 12, further comprising at least one of a refrigerant pressure sensor, a refrigerant temperature sensor, a heating fluid temperature sensor and an ambient air temperature sensor in order to allow the control unit to control the compressors and/or the gas cooler bypass valve assembly based on the measured temperatures and/or pressures.
14. Refrigeration and heating system of claim 1, wherein the refrigerant comprises carbon dioxide.
15. Method of operating a refrigeration and heating system comprising: circulating a refrigerant through a refrigeration circuit which comprises in a direction of flow of the circulating refrigerant: at least one compressor; a refrigeration circuit side (Sa) of a coupling heat exchanger; at least one gas cooler; at least one gas cooler bypass-line; at least one expansion device; and at least one evaporator; circulating a heating fluid through a heating circuit which comprises in a direction of flow of the circulating heating fluid: a heating circuit side of the coupling heat exchanger; and at least one heating device; wherein the coupling heat exchanger is configured for transferring heat from the circulating refrigerant to the circulating heating fluid; and the method further includes selectively directing a first flow of refrigerant either through the gas cooler or through the gas cooler bypass line bypassing the gas cooler and of gradually regulating a second flow of refrigerant flowing through the other of the gas cooler and the gas cooler bypass line, wherein said second flow mixes with the first flow downstream of the gas cooler.
Description
SHORT DESCRIPTION OF THE FIGURES
(1) In the following, exemplary embodiments of the invention will be described in more detail with reference to the enclosed figures:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
DESCRIPTION OF THE FIGURES
(10)
(11) The refrigeration and heating system 2 comprises a refrigeration circuit 4 and a heating circuit 20 thermally coupled to each other by a coupling heat exchanger 8, which is configured for transferring heat from the refrigeration circuit 4 to the heating circuit 20.
(12) The refrigeration circuit 4 in particular comprises in the direction of flow of a circulating refrigerant: a plurality of compressors 6a, 6b, 6c fluidly connected in parallel for compressing and circulating the refrigerant through the refrigeration circuit 4; a coupling heat exchanger bypass valve 34, which may be an adjustable valve and which allows to selectively direct the flow of refrigerant leaving the compressors 6a, 6b, 6c either to a refrigeration circuit side 8a of a coupling heat exchanger 8, which couples the refrigeration circuit 4 to the heating circuit 20, or to bypass said coupling heat exchanger 8 in order to direct the flow of refrigerant leaving the plurality of compressors 6a, 6b, 6c directly to the inlet side 10a of at least one gas cooler 10, which is fluidly connected to the outlet side of the coupling heat exchanger 8.
(13) The outlet side 10b of the at least one gas cooler 10 is connected via a gas cooler bypass valve assembly 25 comprising a gas cooler bypass valve 24, which will be described in more detail further below, to the inlet side 12a of a high pressure expansion device 12, which acts as a high pressure control device and is configured for expanding the refrigerant from the high pressure generated by the compressors 6a, 6b, 6c to a lower medium pressure, before it enters into a receiver 26, which is configured for separating gas phase refrigerant collecting at the top of the receiver 26 from liquid refrigerant, collecting at the bottom of the receiver 26. The bottom of the receiver is fluidly connected to a medium pressure expansion device 14 and an evaporator 16 fluidly connected downstream of the medium pressure expansion device 14 for evaporating the expanded refrigerant thereby absorbing heat from the environment and providing the desired cooling capacity.
(14) The compressors 6a, 6b, 6c may be individually switched on and off for allowing to vary their combined performance. Optionally, at least one of the compressors 6a, 6b, 6c may be provided as a variable speed compressor 6a which allows to continuously vary its performance in order to adjust the capacity provided by the compressors 6a, 6b, 6c even more precisely.
(15) An optional flash gas line 28 comprising a flash gas valve 30, which acts as a medium pressure control device, and an optional heat exchanger 32, which is configured for allowing heat exchange between the flash gas flowing through the flash gas line 28 and the liquid refrigerant leaving the bottom of the receiver 26, fluidly connects an upper portion of the receiver 26 to inlet lines 7a, 7b, 7c of the compressors 6a, 6b, 6c allowing flash gas to selectively exit from the top of the receiver and to flow to the inlet lines 7a, 7b, 7c of the compressors 6a, 6b, 6c. Selectively delivering flash gas from the receiver 26 to the inlet lines 7a, 7b, 7c of the compressors 6a, 6b, 6c allows to adjust the pressure within the receiver 26.
(16) The heating circuit 20 comprises in the direction of flow of a circulating heating fluid a heating circuit side 8b of the coupling heat exchanger 8, which is in thermal connection with the refrigerant circuit side 8a of the coupling heat exchanger 8 allowing the transfer of heat from the refrigerant circulating with refrigeration circuit 4 to the heating fluid circulating within the heating circuit 20, and at least one heating device 22 for consuming the transferred heat, e.g. for heating water and/or (parts of) a building. At least one heating fluid pump 36 may be provided in the heating circuit 20 for supporting the circulation of the heating fluid.
(17) A gas cooler bypass line 18 connects between the inlet side 10a of the gas cooler 10 and the gas cooler bypass valve assembly 25, which is provided by the gas cooler bypass valve 24 and arranged between the outlet side 10b of the gas cooler 10 and the high pressure expansion device 12. In the embodiment shown in
(18)
(19)
(20) The components of said third embodiment, which are identical with the components of the first embodiment shown in
(21) Contrary to the first and second embodiments, the gas cooler bypass valve 24 of the third embodiment is not provided as a mixing valve but as a digital three-way switching valve, allowing to fluidly connect the inlet side 12a of the high pressure expansion device 12 either to the outlet side 10b of the gas cooler 10 or to the gas-cooler bypass line 18. Thus, depending on the position of the gas cooler bypass valve 24 either refrigerant, which has flown through the gas cooler 10, or refrigerant, which has bypassed the gas cooler 10 via the gas-cooler bypass line 18 is delivered through the gas cooler bypass valve 24 to the high pressure expansion device 12.
(22) In said third embodiment the gas cooler bypass valve assembly 25 additionally comprises an adjustable two-way valve 23 connecting between the bypass line 18 and the inlet side 12a of the high-pressure expansion device 12 in order to allow mixing refrigerant from the gas cooler bypass line 18 with the refrigerant which has been delivered from the gas cooler bypass valve 24. Thus, by (a) switching the gas cooler bypass valve 24 into a position, in which it allows refrigerant to flow from the gas cooler 10 to the high-pressure expansion device 12 and blocks any flow of refrigerant from the gas cooler bypass line 18 to the high-pressure expansion device 12, and (b) selectively opening the adjustable valve 23 for mixing refrigerant from the gas cooler bypass line 18 to the refrigerant being delivered from the gas cooler 10 via the gas cooler bypass valve 24, a mixture of refrigerant, which has flown through the gas cooler 10, with refrigerant, which has bypassed the gas cooler 10 via the gas-cooler bypass line 18 may be delivered to the high-pressure expansion device 12.
(23) Thus, the combination of the adjustable valve 23 and the gas cooler bypass valve 24 provides the same functionality as the three-way mixing valve, which is used as the gas cooler bypass valve 24 according to the first and second embodiments shown in
(24)
(25)
(26) Similar to the third embodiment the gas cooler bypass valve 24 of the fifth embodiment is provided as a digital switching valve allowing to fluidly connect the inlet side 12a of the high pressure expansion device 12 either to the 10b of the gas cooler 10 or to the gas-cooler bypass line 18, but not providing any mixing functionality.
(27) According to the fifth embodiment, the gas cooler bypass valve assembly 25 comprises an adjustable two-way valve 23 connecting between the outlet side 10b of the gas cooler 10 and the outlet of the gas cooler bypass valve 24, which is fluidly connected to the inlet side 12a of the high-pressure expansion device 12.
(28) Thus, by (a) switching the gas cooler bypass valve 24 into a position, in which it allows refrigerant to flow from the gas cooler bypass line 18 to the high-pressure expansion device 12 and blocks any flow of refrigerant from the gas cooler 10 to the high-pressure expansion device 12, and (b) selectively opening the adjustable valve 23 for mixing refrigerant from the gas cooler 10 to the refrigerant being delivered from the gas cooler bypass line 18 via the gas cooler bypass valve 24, a mixture of refrigerant, which has flown through the gas cooler 10, and refrigerant, which has bypassed the gas cooler 10 via the gas-cooler bypass line 18 may be delivered to the high-pressure expansion device similar to the third embodiment shown in
(29) Thus, similar to the third embodiment, the combination of the adjustable valve 23 and the gas cooler bypass valve 24 provides the same functionality as the three-way mixing valve, which is used as the gas cooler bypass valve 24 in the first and second embodiments shown in
(30)
(31) In all embodiments the refrigeration and heating system 2 further comprises a control unit 38 which is configured for controlling the operation of the compressors 6a, 6b, 6c, the gas cooler bypass valve 24, the coupling heat exchanger bypass valve 34, the high pressure control valve 12 and the adjustable two-way valve 23, if present, in order to provide the desired cooling and heating capacities. The control unit 38 may be configured for controlling the compressors 6a, 6b, 6c and valves 12, 23, 24, 34 by means of electrical wires, which are not shown in the figures for reasons of clarity, or by means of a wireless connection including WLAN, Bluetooth or the like.
(32) In order to enable the control unit 38 to control the compressors 6a, 6b, 6c and valves 12, 23, 24, 34 appropriately, at least one of a refrigerant pressure sensor 40, refrigerant temperature sensors 41, 42, a heating fluid temperature sensor 44 and an ambient air temperature sensor 46 are provided, allowing the control unit 38 to control the compressors 6a, 6b, 6c and valves 12, 24, 34 based on the temperatures and/or pressures measured by said sensor(s) 40, 42, 44, 46. The refrigerant pressure sensor 40 and a refrigerant temperature sensor 41 are in particular located between the gas cooler 10 and the high pressure expansion device 12.
(33)
(34) In
(35) The solid line drawn in these diagrams separates the operation mode in which the gas cooler 10 is used for additionally cooling the refrigerant (upper left portion of the respective diagram) from the operation mode in which the gas cooler 10 is bypassed and all the heat from the refrigerant is transferred to the heating circuit 20 (lower right portion of the respective diagram).
(36)
(37) At a higher heating fluid return temperature of e.g. 35 C., according to
(38)
FURTHER EMBODIMENTS
(39) In an embodiment the gas cooler bypass valve assembly is located downstream or upstream of the gas cooler.
(40) In an embodiment the gas cooler bypass valve assembly comprises an adjustable three-way-valve providing a compact configuration allowing to mix refrigerant from the gas cooler with refrigerant from the gas cooler bypass line using only a single valve.
(41) In an alternative embodiment the gas cooler bypass valve assembly comprises a digital three-way-valve and an adjustable two-way valve which is connected in a configuration allowing to by-pass the three-way-valve. In this configuration, the need for a complicated and expansive adjustable three-way-valve, which is capable of providing a mixing functionality, can be avoided.
(42) The adjustable two-way valve may be connected either between the outlet of the gas cooler bypass line and the outlet of the digital three-way-valve or between the outlet of the gas cooler and the outlet of the digital three-way-valve allowing to either regulate the flow of refrigerant from the gas cooler bypass line or the flow of refrigerant from the gas cooler, respectively.
(43) The adjustable two-way valve may also be connected either between the inlet of the digital three-way-valve and the inlet of the gas cooler bypass line or between the inlet of the digital three-way-valve and the inlet of the gas cooler.
(44) In an embodiment a refrigerant receiver, which is configured for separating gas phase refrigerant from liquid phase refrigerant and storing said refrigerant, is provided downstream of the gas cooler. The separation of gas phase refrigerant from liquid phase refrigerant allows to deliver only liquid refrigerant to the expansion device provided upstream of the evaporator enhancing the efficiency of the refrigeration circuit.
(45) In an embodiment a high pressure expansion device is provided upstream of the refrigerant receiver.
(46) In an embodiment a flash gas line fluidly connects an upper portion of the refrigerant receiver with an inlet line of the at least one compressor allowing flash gas, which collects at the top of the receiver, to flow from the receiver directly to the inlet of the compressor(s) bypassing the medium expansion device(s) and the evaporator(s). This will help to improve the efficiency of the refrigeration circuit, as the flash gas does not contribute to the cooling capacity of the evaporator(s).
(47) A flash gas valve provided in the flash gas line allows to control and regulate the flow of flash gas through the flash gas line and to adjust the pressure within the receiver.
(48) In an embodiment an additional flash gas heat exchanger allowing heat exchange between the flash gas flowing through the flash gas line and refrigerant leaving from the bottom of the receiver is provided. Such heat exchange between the flash gas and the liquid refrigerant contributes to improving the efficiency of the refrigeration circuit as well.
(49) In an embodiment the refrigeration and heating system further comprises a control unit which is configured for controlling the at least one compressor and/or the gas cooler bypass valve. The control unit in particular may comprise a microcomputer running an appropriate program for controlling the operation of the refrigeration and heating system.
(50) In an embodiment the refrigeration and heating system further comprises at least one of a refrigerant pressure sensor, a refrigerant temperature sensor, a heating fluid temperature sensor and an ambient air temperature sensor functionally connected to the control unit for allowing the control unit to control the compressors and/or the gas cooler bypass valve assembly based on the measured temperatures and/or pressures in order to optimally adjust the operation of the refrigeration and heating system.
(51) In an embodiment the refrigerant comprises carbon dioxide, which provides an efficient, inflammable, non-toxic and environmentally acceptable refrigerant. The heating fluid in particular may include water, which may in particular comprise an anti-corrosive additive.
(52) While the invention has been described with reference to exemplary embodiments, it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted for elements thereof without departing from the scope of the invention. In addition many modifications may be made to adopt a particular situation or material to the teachings of the invention without departing from the essential scope thereof. Therefore, it is intended that the invention not be limited to the particular embodiment disclosed, but that the invention include all embodiments falling within the scope of the dependent claims.
REFERENCES
(53) 2 refrigeration and heating system
(54) 4 refrigeration circuit
(55) 6a, 6b, 6c at least one compressor
(56) 7a, 7b, 7c compressor inlet lines
(57) 8 coupling heat exchanger
(58) 8a refrigeration circuit side of the heat exchanger
(59) 8b heating circuit side of the heat exchanger
(60) 10 gas cooler
(61) 10a inlet side of the gas cooler
(62) 10b outlet side of the gas cooler
(63) 12 high pressure expansion device/high pressure control device
(64) 12a inlet side of the high pressure expansion device
(65) 14 medium pressure expansion device
(66) 16 evaporator
(67) 18 gas cooler bypass line
(68) 20 heating circuit
(69) 22 heating device
(70) 23 adjustable (two-way) bypass valve
(71) 24 gas cooler bypass valve
(72) 25 gas cooler bypass valve assembly
(73) 26 refrigerant receiver
(74) 28 flash gas line
(75) 30 flash gas valve/medium pressure control device
(76) 32 flash gas heat exchanger
(77) 34 heat exchanger bypass valve
(78) 36 heating fluid pump
(79) 38 control unit
(80) 40 refrigerant pressure sensor
(81) 41, 42 refrigerant temperature sensor
(82) 44 heating fluid temperature sensor
(83) 46 ambient air temperature sensor