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US-12623511-B2 - Heat pump system for vehicle

US12623511B2US 12623511 B2US12623511 B2US 12623511B2US-12623511-B2

Abstract

An embodiment heat pump system for a vehicle includes a compressor that compresses a refrigerant, a condenser connected to the compressor through a refrigerant line that condenses the refrigerant by heat-exchanging the refrigerant with a coolant, an evaporator connected to the condenser through the refrigerant line that evaporates the refrigerant, a gas injection device that selectively expands and flows the refrigerant and selectively supplies a portion of the supplied refrigerant to the compressor, a first refrigerant connection line having a first end connected to the refrigerant line and a second end connected to the gas injection device, a chiller that adjusts a temperature of the coolant by heat-exchanging the refrigerant introduced through the first refrigerant connection line with the coolant, and a second refrigerant connection line having a first end connected to the refrigerant line and a second end connected to the gas injection device.

Inventors

  • Jeawan Kim
  • Hochan An
  • Yeonho Kim
  • Man Hee Park
  • Yeong Jun KIM
  • Jae Yeon Kim
  • HoYoung Jeong

Assignees

  • HYUNDAI MOTOR COMPANY
  • KIA CORPORATION

Dates

Publication Date
20260512
Application Date
20231025
Priority Date
20230503

Claims (20)

  1. 1 . A heat pump system for a vehicle, the heat pump system comprising: a compressor configured to compress a refrigerant; a condenser connected to the compressor through a refrigerant line and configured to condense the refrigerant by heat-exchanging the refrigerant supplied from the compressor with a first coolant; an evaporator connected to the condenser through the refrigerant line and configured to evaporate the refrigerant by heat-exchanging the refrigerant supplied from the condenser with the first coolant; a gas injection device connected to the refrigerant line between the condenser and the evaporator and configured to selectively expand and flow the refrigerant supplied from the condenser and to selectively supply a portion of the supplied refrigerant to the compressor to increase a flow rate of the refrigerant circulating in the refrigerant line; a first refrigerant connection line disposed between the compressor and the evaporator, the first refrigerant connection line having a first end connected to the refrigerant line and a second end connected to the gas injection device; a chiller provided on the first refrigerant connection line and configured to adjust a temperature of the first coolant by heat-exchanging the refrigerant introduced through the first refrigerant connection line with a second coolant; and a second refrigerant connection line disposed between the compressor and the condenser, the second refrigerant connection line having a first end connected to the refrigerant line and a second end connected to the gas injection device; wherein the gas injection device comprises: a gas-liquid separator configured to separate and selectively discharge a gaseous refrigerant and a liquid refrigerant from the refrigerant, wherein the refrigerant is internally introduced; a supply portion connected to the condenser through the refrigerant line and configured to receive the refrigerant supplied from the condenser; a first expansion valve connected to the second refrigerant connection line, provided between the gas-liquid separator and the supply portion, and configured to selectively expand the refrigerant supplied to the second refrigerant connection line or the refrigerant supplied to the supply portion and to supply the expanded refrigerant to the gas-liquid separator; a second expansion valve provided between the gas-liquid separator and the supply portion and configured to either selectively expand the refrigerant supplied to the supply portion and supply the expanded refrigerant to the chiller or to supply the refrigerant supplied from the gas-liquid separator to the chiller; a third expansion valve provided between the gas-liquid separator and the supply portion and configured to either selectively expand the refrigerant supplied to the supply portion and supply the expanded refrigerant to the evaporator or to supply the refrigerant supplied from the gas-liquid separator to the evaporator; a discharge portion connecting the gas-liquid separator to the second expansion valve and the third expansion valve and configured to discharge the refrigerant from the gas-liquid separator to the second expansion valve or the third expansion valve; and a supply line connecting the gas-liquid separator to the compressor and configured to selectively supply the gaseous refrigerant from the gas-liquid separator to the compressor.
  2. 2 . The heat pump system of claim 1 , wherein the second expansion valve and the third expansion valve are disposed in parallel with the first expansion valve through the supply portion and the discharge portion.
  3. 3 . The heat pump system of claim 1 , wherein the first, the second, and the third expansion valves are selectively operated in an air conditioning mode of the vehicle comprising a cooling mode, a heating mode, or a dehumidification mode and are configured to selectively expand the refrigerant while controlling flowing of the refrigerant supplied to the gas injection device.
  4. 4 . The heat pump system of claim 1 , wherein the gas-liquid separator is operated when the first expansion valve expands the refrigerant in an air conditioning mode of the vehicle, and wherein the gas-liquid separator is configured to supply the gaseous refrigerant to the compressor through the supply line to increase the flow rate of the refrigerant circulating in the refrigerant line.
  5. 5 . The heat pump system of claim 1 , wherein each of the first expansion valve, the second expansion valve, and the third expansion valve comprises a 3-way electronic expansion valve having two inlets and one outlet, and wherein each of the first expansion valve, the second expansion valve, and the third expansion valve is configured to selectively expand the refrigerant while controlling the flow of the refrigerant.
  6. 6 . A heat pump system for a vehicle, the heat pump system comprising: a compressor configured to compress a refrigerant; a condenser connected to the compressor through a refrigerant line and configured to condense the refrigerant by heat-exchanging the refrigerant supplied from the compressor with a first coolant; an evaporator connected to the condenser through the refrigerant line and configured to evaporate the refrigerant by heat-exchanging the refrigerant supplied from the condenser with the first coolant; an accumulator provided on the refrigerant line between the evaporator and the compressor; a gas injection device connected to the refrigerant line between the condenser and the evaporator and configured to selectively expand and flow the refrigerant supplied from the condenser and to selectively supply a portion of the supplied refrigerant to the compressor to increase a flow rate of the refrigerant circulating in the refrigerant line; a first refrigerant connection line disposed between the compressor and the evaporator, the first refrigerant connection line having a first end connected to the refrigerant line and a second end connected to the gas injection device; a chiller provided on the first refrigerant connection line and configured to adjust a temperature of the first coolant by heat-exchanging the refrigerant introduced through the first refrigerant connection line with a second coolant; and a second refrigerant connection line disposed between the compressor and the condenser, the second refrigerant connection line having a first end connected to the refrigerant line and a second end connected to the gas injection device; wherein the gas injection device comprises: a gas-liquid separator configured to separate and selectively discharge a gaseous refrigerant and a liquid refrigerant from the refrigerant, wherein the refrigerant is internally introduced; a supply portion connected to the condenser through the refrigerant line and configured to receive the refrigerant supplied from the condenser; a first expansion valve connected to the second refrigerant connection line, provided between the gas-liquid separator and the supply portion, and configured to selectively expand the refrigerant supplied to the second refrigerant connection line or the refrigerant supplied to the supply portion and to supply the expanded refrigerant to the gas-liquid separator; a second expansion valve provided between the gas-liquid separator and the supply portion and configured to either selectively expand the refrigerant supplied to the supply portion and supply the expanded refrigerant to the chiller or to supply the refrigerant supplied from the gas-liquid separator to the chiller; a third expansion valve provided between the gas-liquid separator and the supply portion and configured to either selectively expand the refrigerant supplied to the supply portion and supply the expanded refrigerant to the evaporator or to supply the refrigerant supplied from the gas-liquid separator to the evaporator; a discharge portion connecting the gas-liquid separator to the second expansion valve and the third expansion valve and configured to discharge the refrigerant from the gas-liquid separator to the second expansion valve or the third expansion valve; a first supply line connecting the gas-liquid separator to the compressor and configured to selectively supply the gaseous refrigerant from the gas-liquid separator to the compressor; a control valve provided on the first supply line; and a second supply line having a first end connected to the control valve and a second end connected to the accumulator.
  7. 7 . The heat pump system of claim 6 , wherein, in a case in which the gas-liquid separator is operated in a cooling mode of the vehicle and cooling of a battery module is required: the second refrigerant connection line is configured to be closed by an operation of the first expansion valve; the first expansion valve is configured to expand the refrigerant supplied through the supply portion and supply the expanded refrigerant to the gas-liquid separator; the second expansion valve is configured to expand the refrigerant supplied from the gas-liquid separator through the discharge portion and flow the expanded refrigerant to the first refrigerant connection line connected to the chiller; the third expansion valve is configured to expand the refrigerant supplied from the gas-liquid separator through the discharge portion and flow the expanded refrigerant to the refrigerant line; the first supply line is configured to be opened by an operation of the control valve; the second supply line is configured to be closed by the operation of the control valve; and the gas-liquid separator is configured to supply the gaseous refrigerant to the compressor through the opened first supply line.
  8. 8 . The heat pump system of claim 6 , wherein, in a case in which an operation of the gas-liquid separator is not required in a cooling mode of the vehicle: the second refrigerant connection line is configured to be closed by the first expansion valve; the first and second expansion valves are configured to stop operating; a flow of the refrigerant to the gas-liquid separator is blocked; the third expansion valve is configured to expand the refrigerant supplied through the supply portion and supply the expanded refrigerant to the evaporator through the refrigerant line; and the first and second supply lines are configured to be closed by an operation of the control valve.
  9. 9 . The heat pump system of claim 6 , wherein, in a case in which the gas-liquid separator is operated in a heating mode of the vehicle and an ambient air heat, waste heat of an electrical component, and waste heat of a battery module are to be recollected: the second refrigerant connection line is configured to be closed by an operation of the first expansion valve; the first expansion valve is configured to expand the refrigerant supplied through the supply portion and supply the expanded refrigerant to the gas-liquid separator; the second expansion valve is configured to expand the refrigerant supplied from the gas-liquid separator through the discharge portion and flow the expanded refrigerant to the first refrigerant connection line connected to the chiller; the third expansion valve is configured to expand the refrigerant supplied from the gas-liquid separator through the discharge portion and supply the expanded refrigerant to the evaporator through the refrigerant line; the first supply line is configured to be opened by an operation of the control valve; the second supply line is configured to be closed by the operation of the control valve; and the gas-liquid separator is configured to supply the gaseous refrigerant to the compressor through the opened first supply line.
  10. 10 . The heat pump system of claim 6 , wherein, in a case in which an operation of the gas-liquid separator is not required in a heating mode of the vehicle and an ambient air heat and waste heat of an electrical component are to be recollected: the second refrigerant connection line is configured to be closed by an operation of the first expansion valve, the first expansion valve is configured to stop operating; the second expansion valve is configured to expand the refrigerant supplied through the supply portion and flow the expanded refrigerant to the first refrigerant connection line connected to the chiller; the third expansion valve is configured to expand the refrigerant supplied through the supply portion and supply the expanded refrigerant to the evaporator through the refrigerant line; a flow of the refrigerant to the gas-liquid separator is blocked; and the first supply line and the second supply line are configured to be closed by an operation of the control valve.
  11. 11 . The heat pump system of claim 6 , wherein, in a state in which the gas-liquid separator is operated in a heating mode of the vehicle and an ambient air heat, waste heat of an electrical component, and waste heat of a battery module are not to be recollected: the second refrigerant connection line is configured to be opened by an operation of the first expansion valve; the first expansion valve is configured to expand the refrigerant supplied through the second refrigerant connection line and supply the expanded refrigerant to the gas-liquid separator; the second expansion valve is configured to expand the refrigerant supplied through the supply portion and flow the expanded refrigerant to the first refrigerant connection line connected to the chiller; the third expansion valve is configured to stop operating; the first supply line is configured to be closed by an operation of the control valve; the second supply line is configured to be opened by the operation of the control valve; and the gas-liquid separator is configured to supply the gaseous refrigerant to the accumulator through the opened second supply line.
  12. 12 . The heat pump system of claim 6 , wherein, in a case in which warming-up of the compressor is required: the second refrigerant connection line is configured to be opened by an operation of the first expansion valve; the first expansion valve is configured to expand the refrigerant supplied through the second refrigerant connection line and supply the expanded refrigerant to the gas-liquid separator; the second expansion valve is configured to stop operating; the third expansion valve is configured to expand the refrigerant supplied through the supply portion and supply the expanded refrigerant to the evaporator through the refrigerant line; the first supply line is configured to be opened by an operation of the control valve; the second supply line is configured to be closed by the operation of the control valve; and the gas-liquid separator is configured to supply the gaseous refrigerant to the compressor through the opened first supply line.
  13. 13 . The heat pump system of claim 6 , wherein the control valve comprises a 3-way valve configured to distribute flow rates while controlling flowing of the refrigerant.
  14. 14 . A heat pump system for a vehicle, the heat pump system comprising: a compressor configured to compress a refrigerant; a condenser connected to the compressor through a refrigerant line and configured to condense the refrigerant by heat-exchanging the refrigerant supplied from the compressor with a first coolant; an evaporator connected to the condenser through the refrigerant line and configured to evaporate the refrigerant by heat-exchanging the refrigerant supplied from the condenser with the first coolant; a gas injection device connected to the refrigerant line between the condenser and the evaporator and configured to selectively expand and flow the refrigerant supplied from the condenser and to selectively supply a portion of the supplied refrigerant to the compressor to increase a flow rate of the refrigerant circulating in the refrigerant line; a first refrigerant connection line disposed between the compressor and the evaporator, the first refrigerant connection line having a first end connected to the refrigerant line and a second end connected to the gas injection device; a chiller provided on the first refrigerant connection line and configured to adjust a temperature of the first coolant by heat-exchanging the refrigerant introduced through the first refrigerant connection line with a second coolant; a second refrigerant connection line disposed between the compressor and the condenser, the second refrigerant connection line having a first end connected to the refrigerant line and a second end connected to the gas injection device; and a cooling apparatus comprising a radiator, an electrical component, and a battery module through which the first coolant circulates; wherein the condenser is connected to the radiator through a first line for flowing the first coolant and is connected to a heater core through a second line for flowing the first coolant; wherein the evaporator is connected to the radiator through a third line for flowing the first coolant and is connected to a cabin cooler through a fourth line for flowing the first coolant; and wherein the chiller is connected to the electrical component through a fifth line for flowing the first coolant and is connected to the battery module through a sixth line for flowing the first coolant; and wherein the gas injection device comprises: a gas-liquid separator configured to separate and selectively discharge a gaseous refrigerant and a liquid refrigerant from the refrigerant, wherein the refrigerant is internally introduced; a supply portion connected to the condenser through the refrigerant line and configured to receive the refrigerant supplied from the condenser; a first expansion valve connected to the second refrigerant connection line, provided between the gas-liquid separator and the supply portion, and configured to selectively expand the refrigerant supplied to the second refrigerant connection line or the refrigerant supplied to the supply portion and to supply the expanded refrigerant to the gas-liquid separator; a second expansion valve provided between the gas-liquid separator and the supply portion and configured to either selectively expand the refrigerant supplied to the supply portion and supply the expanded refrigerant to the chiller or to supply the refrigerant supplied from the gas-liquid separator to the chiller; a third expansion valve provided between the gas-liquid separator and the supply portion and configured to either selectively expand the refrigerant supplied to the supply portion and supply the expanded refrigerant to the evaporator or to supply the refrigerant supplied from the gas-liquid separator to the evaporator; a discharge portion connecting the gas-liquid separator to the second expansion valve and the third expansion valve and configured to discharge the refrigerant from the gas-liquid separator to the second expansion valve or the third expansion valve; and a supply line connecting the gas-liquid separator to the compressor and configured to selectively supply the gaseous refrigerant from the gas-liquid separator to the compressor.
  15. 15 . The heat pump system of claim 14 , wherein: the first line is configured to be selectively opened to supply the first coolant to the condenser in a cooling mode and a heating mode of the vehicle; and the second line is configured to be opened to connect the condenser to the heater core in the heating mode of the vehicle.
  16. 16 . The heat pump system of claim 14 , wherein, in a case in which an ambient air heat is to be recollected in a heating mode of the vehicle, the third line is configured to be opened to connect the radiator to the evaporator.
  17. 17 . The heat pump system of claim 14 , wherein the fourth line is configured to be opened to connect the evaporator to the cabin cooler in a cooling mode of the vehicle.
  18. 18 . The heat pump system of claim 14 , wherein, in a case in which waste heat of the electrical component is to be recollected in a heating mode of the vehicle, the fifth line is configured to be opened to connect the chiller to the electrical component.
  19. 19 . The heat pump system of claim 14 , wherein, in a case in which the battery module is to be cooled in a cooling mode of the vehicle or in a case in which waste heat of the battery module is to be recollected in a heating mode of the vehicle, the sixth line is configured to be opened to connect the chiller to the battery module.
  20. 20 . The heat pump system of claim 14 , wherein the first expansion valve, the second expansion valve, and the third expansion valve are selectively operated in an air conditioning mode of the vehicle including a cooling mode, a heating mode, and a dehumidification mode, and are configured to selectively expand the refrigerant while controlling flowing of the refrigerant supplied to the gas injection device.

Description

CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of Korean Patent Application No. 10-2023-0057516, filed on May 3, 2023, which application is hereby incorporated herein by reference. TECHNICAL FIELD The present disclosure relates to a heat pump system for a vehicle. BACKGROUND Generally, an air conditioning system for a vehicle includes an air conditioner unit circulating a refrigerant in order to heat or cool an interior of the vehicle. The air conditioner unit, which is to maintain the interior of the vehicle at an appropriate temperature regardless of a change in an external temperature to maintain a comfortable interior environment, is configured to heat or cool the interior of the vehicle by heat-exchange by a condenser and an evaporator in a process in which a refrigerant discharged by driving of a compressor is circulated back to the compressor through the condenser, a receiver drier, an expansion valve, and the evaporator. That is, the air conditioner unit lowers a temperature and a humidity of the interior by condensing a high-temperature high-pressure gas-phase refrigerant compressed from the compressor by the condenser, passing the refrigerant through the receiver drier and the expansion valve, and then evaporating the refrigerant in the evaporator in a cooling mode. Meanwhile, recently, in accordance with a continuous increase in interest in energy efficiency and an environmental pollution problem, the development of an environmentally friendly vehicle capable of substantially substituting for an internal combustion engine vehicle is required, and the environmentally friendly vehicle is classified into an electric vehicle driven using a fuel cell or electricity as a power source and a hybrid vehicle driven using an engine and a battery. In the electric vehicle or the hybrid vehicle among these environmentally friendly vehicles, a separate heater is not used unlike an air conditioner of a general vehicle, and an air conditioner used in the environmentally friendly vehicle is generally called a heat pump system. Meanwhile, the electric vehicle driven by a power source of a fuel cell generates driving force by converting chemical reaction energy between oxygen and hydrogen into electrical energy. In this process, heat energy is generated by a chemical reaction in a fuel cell. Therefore, it is necessary in securing performance of the fuel cell to effectively remove generated heat. In addition, the hybrid vehicle generates driving force by driving a motor using electricity supplied from the fuel cell described above or an electrical battery, together with an engine operated by a general fuel. Therefore, heat generated from the fuel cell or the battery and the motor should be effectively removed in order to secure performance of the motor. Therefore, in the hybrid vehicle or the electric vehicle according to the related art, cooling means, a heat pump system, and a battery cooling system, respectively, should be configured as separate closed circuits so as to prevent heat generation of the motor, an electric component, and the battery including a fuel cell. Therefore, a size and a weight of a cooling module disposed at the front of the vehicle are increased, and a layout of connection pipes supplying a refrigerant and a coolant to each of the heat pump system, the cooling means, and the battery cooling system in an engine compartment becomes complicated. In addition, since a battery cooling system for heating or cooling the battery according to a state of the vehicle is separately provided to obtain an optimal performance of the battery, a plurality of valves for selectively interconnecting connections pipes are employed, and thus noise and vibration due to frequent opening and closing operations of the valves may be introduced into the vehicle interior, thereby deteriorating the ride comfort. In addition, when heating the vehicle interior, the heating performance may be deteriorated due to the lack of a heat source, the electricity consumption may be increased due to the usage of the electric heater, and the power consumption of the compressor may be increased. The above information disclosed in this background section is only for enhancement of understanding of the background of embodiments of the invention, and therefore it may contain information that does not form the prior art that is already known to a person of ordinary skill in the art. SUMMARY The present disclosure relates to a heat pump system for a vehicle. Particular embodiments relate to a heat pump system for a vehicle capable of improving cooling and heating performance by applying a gas injection device selectively operating in an air conditioning mode of a vehicle interior. Embodiments of the present disclosure provide a heat pump system for a vehicle capable of improving cooling and heating performance by applying a gas injection device selectively operating in an air conditioning mode of a vehicle interi