Climate Control System for Increased Electric Vehicle Range
A method for heating the air within the passenger cabin of an electric vehicle is provided. The method utilizes a heat pump to permit efficient air recirculation by the vehicle's HVAC system, thereby increasing driving range, especially in cold weather conditions.
1 . A method of operating an electric vehicle (EV) thermal management system, the EV thermal management system comprising (i) a refrigerant-based thermal control loop coupled to a refrigerant-air heat exchanger and (ii) a coolant-based thermal control loop coupled to a liquid-air heat exchanger and (iii) a heat pump integral to the refrigerant-based thermal control loop and (iv) a heat pump condenser coupleable to the coolant-based thermal control loop, wherein the refrigerant-air heat exchanger and the liquid-air heat exchanger are located within a passenger cabin air intake pathway, the method comprising:
determining when passenger cabin heating is required, wherein when passenger cabin heating is required said method further comprises:
coupling said heat pump condenser to said coolant-based thermal control loop, said heat pump condenser heating a coolant within said coolant-based thermal control loop;
pumping said coolant through said liquid-air heat exchanger;
coupling said heat pump to said refrigerant-based thermal control loop;
activating said refrigerant-based thermal control loop; and
recirculating passenger cabin air through said liquid-air heat exchanger and through said refrigerant-air heat exchanger, wherein said liquid-air heat exchanger heats said passenger cabin air and said refrigerant-air heat exchanger removes moisture from said passenger cabin air.
2 . The method of claim 1 , said step of activating said refrigerant-based thermal control loop further comprising pumping thermal energy removed by said refrigerant-air heat exchanger through said heat pump condenser, wherein said heat pump condenser transfers said thermal energy to said coolant within said coolant-based thermal control loop, and wherein said pumping step is performed by a compressor.
3 . The method of claim 1 , further comprising activating a supplemental heater when passenger cabin heating is required, said supplemental heater coupled to said coolant-based thermal control loop and configured to heat said coolant flowing through said liquid-air heat exchanger when activated.
4 . The method of claim 1 , said determining step further comprising:
accepting a passenger request for a passenger cabin temperature;
monitoring a current passenger cabin temperature;
comparing said current passenger cabin temperature to said requested passenger cabin temperature; and
activating passenger cabin heating when said current passenger cabin temperature is less than said requested passenger cabin temperature.
5 . The method of claim 1 , further comprising decoupling an external condenser from said refrigerant-based thermal control loop when passenger cabin heating is required.
6 . The method of claim 5 , said step of decoupling said external condenser from said refrigerant-based thermal control loop further comprising closing a shut-off valve.
7 . The method of claim 1 , wherein when passenger cabin heating is required said method further comprises:
extracting thermal energy from an EV battery pack; and
transferring said thermal energy to said heat pump via said refrigerant-based thermal control loop.
8 . The method of claim 1 , wherein when passenger cabin heating is required said method further comprises:
extracting thermal energy from an EV powertrain; and
transferring said thermal energy to said heat pump via said refrigerant-based thermal control loop.
9 . The method of claim 1 , wherein when passenger cabin heating is required said method further comprises:
extracting thermal energy from an EV power electronics; and
transferring said thermal energy to said heat pump via said refrigerant-based thermal control loop.