Thermal management system
In a thermal management system, a low-temperature side heat medium circuit includes a first circuit, a second circuit, a coupling part, and a flow rate adjustment part. The first circuit includes a first heat exchange unit, and is configured such that a heat medium can circulate via a chiller and the first heat exchange unit. The second circuit includes a second heat exchange unit, and is configured such that the heat medium can circulate via the second heat exchange unit and a heat medium pump. A controller controls an operation of the flow rate adjustment part and adjusts the flow rate of the heat medium in the coupling part, so as to make a temperature zone of the heat medium flowing through the first circuit and a temperature zone of the heat medium flowing through the second circuit have respective determined values.
1 . A thermal management system comprising:
a heat pump cycle including a compressor configured to compress and discharge a refrigerant, a condenser configured to condense the refrigerant discharged from the compressor, a decompression unit configured to decompress the refrigerant flowing out of the condenser, and a chiller configured to exchange heat between the refrigerant decompressed by the decompression unit and a heat medium to evaporate the refrigerant;
a low-temperature side heat medium circuit through which the heat medium cooled by the chiller circulates; and
a controller, wherein
the low-temperature side heat medium circuit includes:
a first circuit having a first heat exchanger configured to cool a first temperature adjustment target by heat exchange between the heat medium cooled by the chiller and the first temperature adjustment target associated with a predetermined first temperature zone, the first circuit being configured to circulate the heat medium via the chiller and the first heat exchanger;
a second circuit having a second heat exchanger configured to exchange heat between a second temperature adjustment target associated with a second temperature zone higher than the first temperature zone and the heat medium cooled by the chiller, the second circuit being configured to circulate the heat medium via the second heat exchanger;
a coupling part configured to connect the first circuit and the second circuit and to flow in and out of the heat medium; and
a flow rate adjustment valve configured to adjust a flow rate of the heat medium flowing in and out between the first circuit and the second circuit,
the controller is configured to control an operation of the flow rate adjustment valve and to adjust the flow rate of the heat medium in the coupling part, to make a temperature of the heat medium flowing through the first circuit at the first temperature zone and a temperature of the heat medium flowing through the second circuit at the second temperature zone have respective values,
the first temperature adjustment target is air to be supplied to a space to be air conditioned,
the first heat exchanger is a cooler core that exchanges heat between the heat medium cooled by the chiller and the air to cool the air,
the second temperature adjustment target is a heat generating equipment that generates heat when being operated, and
the second heat exchanger is an equipment heat exchanger in which heat is exchanged between the heat medium cooled by the chiller and the heat generating equipment to adjust a temperature of the heat generating equipment.
2 . The thermal management system according to claim 1 , wherein
the controller is configured to control the operation of the flow rate adjustment valve and to cause a part of the heat medium flowing through the first circuit to flow into the second circuit via the coupling part, so as to bring the temperature of the heat medium flowing through the first circuit close to the first temperature zone and bring the temperature of the heat medium flowing through the second circuit close to the second temperature zone, respectively.
3 . The thermal management system according to claim 1 , wherein
the decompression unit includes a first decompression unit that decompresses the refrigerant flowing out of the condenser, and a second decompression unit connected in parallel to the first decompression unit to decompress the refrigerant flowing out of the condenser,
the chiller includes a first chiller that exchanges heat between the refrigerant decompressed by the first decompression unit and the heat medium to evaporate the refrigerant, and a second chiller that exchanges heat between the refrigerant decompressed by the second decompression unit and the heat medium to evaporate the refrigerant,
the low-temperature side heat medium circuit includes a first low-temperature side heat medium circuit in which the heat medium cooled by the first chiller circulates, and a second low-temperature side heat medium circuit in which the heat medium cooled by the second chiller circulates,
at least one of the first low-temperature side heat medium circuit and the second low-temperature side heat medium circuit includes the first circuit, the second circuit, the coupling part, and the flow rate adjustment valve, and
the controller controls the operation of the flow rate adjustment valve and adjusts a flow rate of the heat medium in the coupling part, to make the temperature of the heat medium flowing through the first circuit at the first temperature zone different from the temperature of the heat medium flowing through the second circuit at the second temperature zone.
4 . The thermal management system according to claim 1 , wherein
the decompression unit is an expansion valve.
5 . The thermal management system according to claim 1 , wherein
the coupling part is a connection line.
6 . A thermal management system comprising:
a heat pump cycle including a compressor configured to compress and discharge a refrigerant, a condenser configured to condense the refrigerant discharged from the compressor, a decompression unit configured to decompress the refrigerant flowing out of the condenser, and a chiller configured to exchange heat between the refrigerant decompressed by the decompression unit and a heat medium to evaporate the refrigerant;
a low-temperature side heat medium circuit through which the heat medium cooled by the chiller circulates; and
a controller, wherein
the low-temperature side heat medium circuit includes:
a first circuit having a first heat exchanger configured to cool a first temperature adjustment target by heat exchange between the heat medium cooled by the chiller and the first temperature adjustment target associated with a predetermined first temperature zone, the first circuit being configured to circulate the heat medium via the chiller and the first heat exchanger;
a second circuit having a second heat exchanger configured to exchange heat between a second temperature adjustment target associated with a second temperature zone higher than the first temperature zone and the heat medium cooled by the chiller, the second circuit being configured to circulate the heat medium via the second heat exchanger;
a coupling part configured to connect the first circuit and the second circuit and to flow in and out of the heat medium; and
a flow rate adjustment valve configured to adjust a flow rate of the heat medium flowing in and out between the first circuit and the second circuit,
the controller is configured to control an operation of the flow rate adjustment valve and to adjust the flow rate of the heat medium in the coupling part, to make a temperature of the heat medium flowing through the first circuit at the first temperature zone and a temperature of the heat medium flowing through the second circuit at the second temperature zone have respective values,
the first temperature adjustment target is outside air,
the first heat exchanger is an outside air heat exchanger that exchanges heat between the heat medium cooled by the chiller and the outside air,
the second temperature adjustment target is a heat generating equipment that generates heat when being operated, and
the second heat exchanger is an equipment heat exchanger that exchanges heat between the heat medium cooled by the chiller and the heat generating equipment to adjust a temperature of the heat generating equipment.
7 . A thermal management system comprising:
a heat pump cycle including a compressor configured to compress and discharge a refrigerant, a condenser configured to condense the refrigerant discharged from the compressor, a decompression unit configured to decompress the refrigerant flowing out of the condenser, and a chiller configured to exchange heat between the refrigerant decompressed by the decompression unit and a heat medium to evaporate the refrigerant;
a low-temperature side heat medium circuit through which the heat medium cooled by the chiller circulates; and
a controller, wherein
the low-temperature side heat medium circuit includes:
a first circuit having a first heat exchanger configured to cool a first temperature adjustment target by heat exchange between the heat medium cooled by the chiller and the first temperature adjustment target associated with a predetermined first temperature zone, the first circuit being configured to circulate the heat medium via the chiller and the first heat exchanger;
a second circuit having a second heat exchanger configured to exchange heat between a second temperature adjustment target associated with a second temperature zone higher than the first temperature zone and the heat medium cooled by the chiller, the second circuit being configured to circulate the heat medium via the second heat exchanger;
a coupling part configured to connect the first circuit and the second circuit and to flow in and out of the heat medium; and
a flow rate adjustment valve configured to adjust a flow rate of the heat medium flowing in and out between the first circuit and the second circuit,
the controller is configured to control an operation of the flow rate adjustment valve and to adjust the flow rate of the heat medium in the coupling part, to make a temperature of the heat medium flowing through the first circuit at the first temperature zone and a temperature of the heat medium flowing through the second circuit at the second temperature zone have respective values,
the low-temperature side heat medium circuit includes:
a third circuit having a third heat exchanger configured to exchange heat between a third temperature adjustment target associated with a third temperature zone higher than the first temperature zone and the heat medium cooled by the chiller, and a low-temperature side pump configured to pump the heat medium and to flow through the third heat exchanger, the third circuit being configured to allow the heat medium to circulate via the third heat exchanger and the low-temperature side pump;
a low-temperature side coupling part configured to connect the first circuit and the third circuit and to flow in and out the heat medium; and
a low-temperature side flow rate adjustment valve configured to adjust, in the low-temperature side coupling part, a flow rate of the heat medium flowing in and out between the first circuit and the third circuit, and
the controller is configured to control an operation of the low-temperature side flow rate adjustment valve and to cause a part of the heat medium flowing through the first circuit to flow into the third circuit via the low-temperature side coupling part, so as to bring a temperature of the heat medium flowing through the first circuit close to the first temperature zone and bring a temperature of the heat medium flowing through the third circuit close to the third temperature zone, respectively.
8 . A thermal management system comprising:
a heat pump cycle including a compressor configured to compress and discharge a refrigerant, a condenser configured to condense the refrigerant discharged from the compressor, a decompression unit configured to decompress the refrigerant flowing out of the condenser, and a chiller configured to exchange heat between the refrigerant decompressed by the decompression unit and a heat medium to evaporate the refrigerant;
a low-temperature side heat medium circuit through which the heat medium cooled by the chiller circulates;
a high-temperature side heat medium circuit in which the heat medium, heated by the heat of the refrigerant dissipated in the condenser, circulates, and
a controller, wherein
the low-temperature side heat medium circuit includes:
a first circuit having a first heat exchanger configured to cool a first temperature adjustment target by heat exchange between the heat medium cooled by the chiller and the first temperature adjustment target associated with a predetermined first temperature zone, the first circuit being configured to circulate the heat medium via the chiller and the first heat exchanger;
a second circuit having a second heat exchanger configured to exchange heat between a second temperature adjustment target associated with a second temperature zone higher than the first temperature zone and the heat medium cooled by the chiller, the second circuit being configured to circulate the heat medium via the second heat exchanger;
a coupling part configured to connect the first circuit and the second circuit and to flow in and out of the heat medium; and
a flow rate adjustment valve configured to adjust a flow rate of the heat medium flowing in and out between the first circuit and the second circuit,
the controller is configured to control an operation of the flow rate adjustment valve and to adjust the flow rate of the heat medium in the coupling part, to make a temperature of the heat medium flowing through the first circuit at the first temperature zone and a temperature of the heat medium flowing through the second circuit at the second temperature zone have respective values,
the high-temperature side heat medium circuit includes:
a heater core configured to heat air to be supplied to the space to be air conditioned by exchanging heat between the heat medium heated by the heat of the refrigerant and air; and a high-temperature side pump that pumps the heat medium to the heater core, the high-temperature side heat medium circuit being configured to allow the heat medium to circulate via the heater core and the high-temperature side pump;
a high-temperature side coupling part that connects the high-temperature side heat medium circuit and the second circuit of the low-temperature side heat medium circuit, to allow the heat medium to flow in and out; and
a high-temperature side flow rate adjustment valve configured to adjust, in the high-temperature side coupling part, a flow rate of the heat medium flowing in and out between the high-temperature side heat medium circuit and the second circuit, and
the controller is configured to control an operation of the high-temperature side flow rate adjustment valve and to cause a part of the heat medium flowing through the high-temperature side heat medium circuit to flow into the second circuit via the high-temperature side coupling part, so as to bring a temperature of the heat medium flowing through the second circuit close to the second temperature zone.