The subject matter disclosed herein relates to heating, ventilation, air conditioning and refrigeration (HVACR) systems. More specifically, the subject disclosure relates to chiller systems utilized for air conditioning and/or refrigeration.
Chillers utilize a cooling source, such as refrigerant, to cool a heat transfer fluid at an evaporator. The heat transfer fluid is then circulated to a space to be cooled or refrigerated, where the air therein is cooled via thermal energy exchange with the heat transfer fluid. Further, the chiller often can operate in more than one mode, one of which is called “free cooling”. In free cooling, cooling is achieved by taking advantage of low external temperatures to cool the heat transfer fluid. In typical systems, free cooling is accomplished through the addition of additional components such as dry liquid coolers or cooling towers.
Utilizing these additional components separately or directly mounted to the chiller, along with the necessary ancillary components such as valves and pumps present numerous problems. Among those include the initial cost of such components, the loss of overall system efficiency and increase in complexity due to the inclusion of the additional components. Further, such additional components, especially cooling towers can take up a large amount of space. Further, present systems are limited in that combined cooling, utilizing both free-cooling and traditional cooling simultaneously, is not feasible.
In one embodiment, a heating, ventilation, air conditioning or refrigeration system includes a refrigerant circuit having a compressor, a first condenser, and a second condenser arranged in parallel or in series with the first condenser. A first expansion valve is in fluid communication with the first condenser to selectably direct a refrigerant flow through the first condenser, and a second expansion valve is in fluid communication with the second condenser to selectably direct the refrigerant flow through the second condenser. An evaporator is configured to remove thermal energy from a fluid flow through the evaporator via the refrigerant flow through the evaporator. A fluid flow circuit includes a liquid cooler in selectable fluid communication with the second condenser and/or the evaporator and the evaporator, through which the fluid flow is directed for thermal energy exchange with the refrigerant flow.
Additionally or alternatively, in this or other embodiments an output pump is configured to urge the fluid flow along the fluid flow circuit.
Additionally or alternatively, in this or other embodiments an input valve is configured to selectably direct the fluid flow toward the liquid cooler and/or toward the evaporator.
Additionally or alternatively, in this or other embodiments a liquid cooler valve selectably directs the fluid flow from the liquid cooler toward the second condenser and/or toward the evaporator.
Additionally or alternatively, in this or other embodiments the fluid flow circuit includes a first fluid circuit portion defined as a closed loop including the second condenser and the liquid cooler and excluding the evaporator, the first fluid circuit portion circulating a first fluid flow therethrough, and a second fluid circuit portion including the evaporator and circulating a second fluid flow therethrough.
Additionally or alternatively, in this or other embodiments the first fluid circuit portion includes a fluid pump to circulate the first fluid flow therethrough.
Additionally or alternatively, in this or other embodiments the evaporator is in fluid communication with a cooling location to provide the fluid flow to the cooling location for conditioning of the cooling location.
In another embodiment, a method of operating a heating, ventilation, air conditioning or refrigeration system includes urging a refrigerant flow through a compressor, flowing the refrigerant flow through a first condenser and a second condenser in a fluidly parallel, serial or independent arrangement with the first condenser. The refrigerant flow is directed through an evaporator, and first fluid flow is directed through the evaporator. A second fluid flow is circulated through a liquid cooler and through the second condenser. The refrigerant flow is cooled at the first condenser, the refrigerant flow is cooled at the second condenser via thermal energy exchange with the second fluid flow, and the first fluid flow is cooled at the evaporator via a thermal energy exchange between the flow of refrigerant and the first fluid flow.
Additionally or alternatively, in this or other embodiments a second fluid flow is circulated through a liquid cooler and through the second condenser via a fluid pump.
Additionally or alternatively, in this or other embodiments the refrigerant flow is cooled at the first condenser via an airflow across the first condenser.
Additionally or alternatively, in this or other embodiments the second fluid flow through the liquid cooler and through the second condenser is stopped, the refrigerant flow through the second condenser is stopped, and the first fluid flow is directed through the liquid cooler and through the evaporator in series.
Additionally or alternatively, in this or other embodiments the flow of refrigerant through the second condenser is stopped by closing a second condenser expansion valve.
Additionally or alternatively, in this or other embodiments the second fluid flow through the liquid cooler and through the second condenser is stopped, the refrigerant flow through the first condenser is stopped, the refrigerant flow through the second condenser is stopped, and the first fluid flow is directed through the liquid cooler and through the evaporator in series.
Additionally or alternatively, in this or other embodiments the flow of refrigerant through the first condenser and through the second condenser is stopped by stopping operation of the compressor.
Additionally or alternatively, in this or other embodiments the fluid flow from the evaporator is directed to a cooling location, and the cooling location is conditioned by flowing the fluid flow through a heat exchanger at the cooling location.
These and other advantages and features will become more apparent from the following description taken in conjunction with the drawings.
The subject matter is particularly pointed out and distinctly claimed at the conclusion of the specification. The foregoing and other features, and advantages of the present disclosure are apparent from the following detailed description taken in conjunction with the accompanying drawings in which:
Further, the refrigerant circuit 24 includes a refrigerant circuit branch 32 extending through the second condenser 28 to connect the first condenser 18 and the second condenser 28 in a fluidly parallel or series arrangement or each one on different circuit. The refrigerant circuit branch 32 includes a second expansion device 34 to control flow of refrigerant through the second condenser 28. Valving, for example, an input valve is utilized to selectably direct the flow of fluid from the cooling location 40 to the liquid cooler 26 and/or the evaporator 22. Similarly, a liquid cooler valve 44 is utilized to selectably direct the flow of fluid from the liquid cooler 26 to the second condenser 28 and/or the evaporator 22. The input valve 42 and the liquid cooler valve 44 shown in
Three modes of operation of the HVACR system 10 will now be described with reference to
Compressor 16 is operated and expansion valves 20 and 34 are opened, such that refrigerant flows through both first condenser 18 and second condenser 28 arranged in parallel and through evaporator 22. The second flow of fluid 50 (shown in
Referring now to
Compressor 16 is operated, and expansion valve 20 is opened, but expansion valve 34 is closed, thus refrigerant flows through first condenser 18 for cooling, but refrigerant does not flow through second condenser 28 in this mode. The first flow of fluid 46 is cooled at the first condenser 18 by thermal energy exchange between the refrigerant and the first flow of fluid 46.
The HVACR system 10 disclosed herein combines a water cooled chiller 14 with a dry liquid cooler 26 and an air cooled chiller 12 enabling mechanical cooling operation, free cooling operation and combined cooling operation in the same footprint as separate water cooled chiller 14 and air cooled chiller 12, by arranging the first condenser 18 and the second condenser 28 in a fluidly parallel or series relationship on the same or on separated circuits. Efficiency and capacity of the HVACR system 10 maybe higher than traditional free cooling solutions for same footprint. For the same overall cooling capacity, the size of refrigerant coils can be reduced. While reducing refrigerant coils, cost and footprint of the system are also reduced; and system efficiency may be improved.
While the present disclosure has been described in detail in connection with only a limited number of embodiments, it should be readily understood that the present disclosure is not limited to such disclosed embodiments. Rather, the present disclosure can be modified to incorporate any number of variations, alterations, substitutions or equivalent arrangements not heretofore described, but which are commensurate in spirit and/or scope. Additionally, while various embodiments have been described, it is to be understood that aspects of the present disclosure may include only some of the described embodiments. Accordingly, the present disclosure is not to be seen as limited by the foregoing description, but is only limited by the scope of the appended claims.
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PCT/IB2016/000847 | 5/25/2016 | WO |
Publishing Document | Publishing Date | Country | Kind |
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WO2017/203317 | 11/30/2017 | WO | A |
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