IP Library Granted Patent US 12698926
Granted Patent B2
US 12698926 · App. 18/745,661 · Granted Aug 4, 2026

Heat pump system

Inventors: Masanari Numata (Kariya-city, JP); Yu Ofune (Kariya-city, JP); Satoshi Ito (Kariya-city, JP); Naoki Kato (Kariya-city, JP); Nobuharu Kakehashi (Kariya-city, JP); Tatsuhito Matsumoto (Kariya-city, JP); Kaoru Ohtsuka (Mishima, JP); Yasuhiro Oi (Susono, JP); Hidefumi Aikawa (Sunto-gun, JP); Ryo Michikawauchi (Numazu, JP)
Assignees: DENSO CORPORATION; TOYOTA JIDOSHA KABUSHIKI KAISHA
F25B30/02B60H1/22F25B25/005F25B49/02F25B5/02F25B49/022F25B2339/047F25B2600/0253
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Quick Facts
Patent No.
US 12698926
App. No.
18/745,661
Granted
Aug 4, 2026
Kind
B2
Abstract

A heat pump system includes a heat pump cycle, a heating unit, a low-temperature side heat medium circuit, and a control unit. The heat pump cycle includes a compressor, a condenser, and an evaporator. The heating unit heats ventilation air with heat released form refrigerant in the condenser. The low-temperature side heat medium circuit circulates a low-temperature side heat medium such that the refrigerant in the evaporator absorbs heat of the low-temperature side heat medium, and includes a heat source device and a heat amount adjustment unit. The control unit causes an amount of heat transfer in the heating unit for heating the ventilation air to approach a predetermined target value via adjustment in temperature of the low-temperature side heat medium by controlling a rotation speed of the compressor and an operation of at least one of the heat source device and the heat amount adjustment unit.

Claims (48)

1 . A heat pump system comprising:

a heat pump cycle including

a compressor configured to compress and discharge a refrigerant,

a condenser configured to release heat of a high-pressure refrigerant compressed by the compressor and condense the high-pressure refrigerant,

a valve configured to reduce a pressure of the refrigerant that has flowed out of the condenser, and

an evaporator configured to cause the refrigerant whose pressure is reduced by the valve to absorb heat and evaporate;

a heating heat exchanger configured to heat ventilation air to be blown into a space to be air conditioned by using a heat source that is the heat released from the high-pressure refrigerant in the condenser;

a low-temperature side heat medium circuit configured to circulate a low-temperature side heat medium and cause the refrigerant in the evaporator to absorb heat of the low-temperature side heat medium, the low-temperature side heat medium circuit including

a heat source device configured to heat the low-temperature side heat medium, and

a heat amount adjustment unit configured to adjust an amount of heat carried by the low-temperature side heat medium; and

at least one processor and at least one memory storing a program, the program is configured to cause, when executed by the at least one processor, the at least one processor to carry out:

causing an amount of heat transfer in the heating heat exchanger for heating the ventilation air to approach a predetermined target value via adjustment in a temperature of the low-temperature side heat medium by controlling a rotation speed of the compressor and an operation of at least one of the heat source device and the heat amount adjustment unit, wherein

the heating heat exchanger is included in a high-temperature side heat medium circuit configured to circulate a high-temperature side heat medium and cause the high-pressure refrigerant in the condenser to release heat to the high-temperature side heat medium, the heating heat exchanger configured to heat the ventilation air via heat exchange with the high-temperature side heat medium, and

the processor is configured to cause a temperature of the high-temperature side heat medium to approach a target high-temperature side heat medium temperature via the adjustment in the temperature of the low-temperature side heat medium by controlling the rotation speed of the compressor and the operation of at least one of the heat source device and the heat amount adjustment unit, the target high-temperature side heat medium temperature being determined based on a target value of the amount of heat transfer in the heating heat exchanger.

2 . The heat pump system according to claim 1 , wherein

the processor is configured to at least maintain the amount of heat carried by the low-temperature side heat medium until the temperature of the low-temperature side heat medium reaches a predetermined reference value when the ventilation air is heated by the heating heat exchanger.

3 . The heat pump system according to claim 1 , wherein

the processor is configured to

determine the target value of the amount of heat transfer according to a target blowing temperature of the ventilation air to be blown into a vehicle cabin, and

determine a target low-temperature side heat medium temperature that is a target value of the temperature of the low-temperature side heat medium at which the amount of heat transfer in the heating heat exchanger approaches the target value of the amount of heat transfer.

4 . The heat pump system according to claim 1 , wherein

the low-temperature side heat medium circuit includes a low-temperature side outside air heat exchanger configured to perform heat exchange between the low-temperature side heat medium and outside air, and

the processor is configured to control an operation of the heat amount adjustment unit to adjust an amount of heat release from the low-temperature side heat medium to the outside air.

5 . The heat pump system according to claim 1 , wherein

the processor is configured to

determine at least two or more upper limit values of the rotation speed of the compressor,

determine a target low-temperature side heat medium temperature for each of the two or more the rotation speed upper limit values of the compressor, the target low-temperature side heat medium temperature being a target value of the temperature of the low-temperature side heat medium required for the amount of heat transfer in the heating heat exchanger to achieve the target value of the amount of heat transfer, and

cause the temperature of the low-temperature side heat medium to approach the target low-temperature side heat medium temperature by controlling the operation of the heat amount adjustment unit.

6 . The heat pump system according to claim 1 , wherein

the heat pump system is mounted on a vehicle, and

the processor is configured to determine a rotation speed upper limit value of the compressor according to a traveling speed of the vehicle.

7 . A heat pump system comprising:

a heat pump cycle including

a compressor configured to compress and discharge a refrigerant,

a condenser configured to release heat of a high-pressure refrigerant compressed by the compressor and condense the high-pressure refrigerant,

a valve configured to reduce a pressure of the refrigerant that has flowed out of the condenser, and

an evaporator configured to cause the refrigerant whose pressure is reduced by the valve to absorb heat and evaporate;

a heating heat exchanger configured to heat ventilation air to be blown into a space to be air conditioned by using a heat source that is the heat released from the high-pressure refrigerant in the condenser;

a low-temperature side heat medium circuit configured to circulate a low-temperature side heat medium and cause the refrigerant in the evaporator to absorb heat of the low-temperature side heat medium, the low-temperature side heat medium circuit including

a heat source device configured to heat the low-temperature side heat medium, and

a heat amount adjustment unit configured to adjust an amount of heat carried by the low-temperature side heat medium; and

at least one processor and at least one memory storing a program, the program is configured to cause, when executed by the at least one processor, the at least one processor to carry out:

causing an amount of heat transfer in the heating heat exchanger for heating the ventilation air to approach a predetermined target value via adjustment in a temperature of the low-temperature side heat medium by controlling a rotation speed of the compressor and an operation of at least one of the heat source device and the heat amount adjustment unit, wherein

the heat pump system is mounted on a vehicle,

the processor is configured to estimate a future traveling situation of the vehicle, and

the processor is configured to change a target low-temperature side heat medium temperature, which is a target value of the temperature of the low-temperature side heat medium, based on the estimated future traveling situation of the vehicle.

8 . The heat pump system according to claim 7 , wherein

the processor is configured to determine an advance preparation time based on a temperature change rate of the low-temperature side heat medium and the temperature of the low-temperature side heat medium at a current time point before changing the target low-temperature side heat medium temperature based on the future traveling situation of the vehicle estimated by the traveling situation estimation unit, the advance preparation time being a time at which the heat source is operated prior to a time of the changing in the target low-temperature side heat medium temperature, the temperature change rate of the low-temperature side heat medium being calculated based on a maximum heat generation capacity of the heat source device.