Method for controlling a thermal conditioning system
Disclosed is a method for controlling a thermal conditioning system includes a heat-transfer liquid circuit, a refrigerant circuit having a compressor, a first heat exchanger supplying a first thermal power to a heat-transfer fluid, a first expansion valve, a second heat exchanger supplying a second thermal power to the heat-transfer liquid, a second expansion valve, and a third heat exchanger. The control method includes receiving a total thermal power setpoint for the total thermal power that is to be supplied, controlling a pressure of the refrigerant in the first exchanger so that the total thermal power supplied is equal to the total thermal power setpoint, and controlling a flow area of the first expansion valve so that the second thermal power supplied is equal to the second thermal power setpoint.
1 . A method for controlling a thermal conditioning system, the thermal conditioning system comprising:
a heat-transfer liquid circuit which is configured to circulate a heat-transfer liquid; and
a coolant fluid circuit comprising in succession in a direction of flow of the coolant fluid:
a compressor,
a first heat exchanger which is configured to supply a first thermal power to a heat-transfer liquid,
a first expansion valve,
a second heat exchanger arranged jointly on the coolant fluid circuit and on the heat-transfer liquid circuit, so as to supply a second thermal power to the heat-transfer liquid,
a second expansion valve, and
a third heat exchanger;
the control method comprising:
receiving a total thermal power set point to be supplied, the total thermal power set point to be supplied being a sum of a first thermal power set point to be supplied to the heat-transfer liquid in the first exchanger, and a second thermal power set point to be supplied to the heat-transfer liquid in the second exchanger;
controlling a pressure of the coolant fluid in the first exchanger, wherein the sum of the first thermal power supplied and the second thermal power supplied is equal to the total thermal power set point to be supplied; and
controlling a cross-section of passage of the first expansion valve wherein the second thermal power supplied by the second exchanger is equal to the second thermal power set point to be supplied.
2 . The control method as claimed in claim 1 , further comprising:
receiving a temperature set point of the coolant fluid in the first exchanger, which is based on the first thermal power set point and a flow set point of the heat-transfer liquid; and
determining a pressure set point of the coolant fluid in the first exchanger from the temperature set point.
3 . The control method as claimed in claim 2 , further comprising controlling a speed of rotation of the compressor, wherein the pressure of the coolant fluid in the first exchanger is equal to the pressure set point determined.
4 . The control method as claimed in claim 2 , wherein the compressor is configured to make the coolant fluid go from an aspiration pressure to a delivery pressure, the control method further comprising determining a delivery pressure set point of the compressor from the determined pressure set point of the coolant fluid in the first exchanger.
5 . The control method as claimed in claim 4 , further comprising:
controlling a speed of rotation of the compressor, wherein the delivery pressure of the compressor is equal to the delivery pressure set point determined.
6 . The control method as claimed in claim 1 , wherein the heat-transfer liquid is a flow of air inside a passenger space of a motor vehicle.
7 . The control method as claimed in claim 1 , wherein the heat-transfer liquid is a heat-transfer liquid which is configured to circulate in a fifth heat exchanger configured to exchange heat with a flow of air inside a passenger space of a vehicle.
8 . The control method as claimed in claim 1 , wherein the second heat exchanger is coupled thermally with an element of a traction chain of a vehicle, by the heat-transfer liquid of the heat-transfer liquid circuit.
9 . The control method as claimed in claim 1 , wherein the third heat exchanger is coupled thermally with an element of a traction chain of a vehicle, by the heat-transfer liquid of the heat-transfer liquid circuit.
10 . A thermal conditioning system comprising:
a heat-transfer liquid circuit which is configured to circulate a heat-transfer liquid;
a coolant fluid circuit comprising:
a main loop, comprising in succession in a direction of flow of the coolant fluid:
a compressor;
a first heat exchanger which is configured to supply a first thermal power to a heat-transfer liquid;
a first expansion valve;
a second heat exchanger which is arranged jointly on the coolant fluid circuit and on the heat-transfer liquid circuit, so as to supply a second thermal power to the heat-transfer liquid;
a second expansion valve; and
a third heat exchanger; and
an electronic control unit which is configured to implement the control method as claimed in claim 1 .
11 . The thermal conditioning system as claimed in claim 10 ,
wherein the coolant fluid circuit comprises a first branch positioned in parallel with the second expansion valve and the third heat exchanger,
wherein the first branch comprising a third expansion valve and a fourth heat exchanger, and
wherein the fourth heat exchanger is configured to exchange heat with a flow of air inside a passenger space of a vehicle.
12 . The thermal conditioning system as claimed in claim 10 ,
wherein the coolant fluid circuit comprises a second branch which allows coolant fluid at an output from the compressor to reach the third exchanger by bypassing the first exchanger,
the second exchanger and the second expansion valve, with the second branch comprising a fourth expansion valve.