HEAT MANAGEMENT SYSTEM AND ELECTRIC VEHICLE
20220348051 · 2022-11-03
Assignee
Inventors
Cpc classification
B60H2001/00307
PERFORMING OPERATIONS; TRANSPORTING
B60H1/32284
PERFORMING OPERATIONS; TRANSPORTING
Y02T10/72
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B60H1/00392
PERFORMING OPERATIONS; TRANSPORTING
B60L1/003
PERFORMING OPERATIONS; TRANSPORTING
B60L2240/36
PERFORMING OPERATIONS; TRANSPORTING
B60H1/00885
PERFORMING OPERATIONS; TRANSPORTING
Y02T10/88
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01M10/66
ELECTRICITY
B60K2001/003
PERFORMING OPERATIONS; TRANSPORTING
H01M10/659
ELECTRICITY
Y02T10/70
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y02E60/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01M2220/20
ELECTRICITY
H01M10/6569
ELECTRICITY
International classification
Abstract
A heat management system and an electric vehicle. The heat management system may be configured in the electric vehicle. A plurality of heat management requirements are generated under different conditions such as different operating conditions (such as driving and a charging request) of the electric vehicle, a current ambient temperature of the electric vehicle, a temperature of a battery pack, or a heat status (that is, a heat value) of a power assembly. Therefore, the heat management system can select different circulation manners of a coolant for different heat management requirements. The heat management system adjusts opening or closing of each valve port in the multi-path direction control valve assembly to select different circulation manners of the coolant, to reduce energy consumption and costs generated when the heat management system performs heat management on the power assembly and the battery pack.
Claims
1. A heat management system, comprising: a vapor compression circulation subsystem; and a coolant subsystem, wherein a compressor, a condenser, a throttling apparatus, and an evaporator are comprised in the vapor compression circulation subsystem and are sequentially connected to form a closed loop, to provide a coolant at a preset temperature for circulation in the coolant subsystem; and a battery pack, a power assembly, a heat exchanger, a first water pump, a second water pump, a third water pump, a first water tank, and a second water tank are comprised in the coolant subsystem and are connected by using a multi-path direction control valve assembly, so that the system adjusts opening or closing of each valve port in the multi-path direction control valve assembly to select different circulation manners of the coolant.
2. The heat management system according to claim 1, further comprising: a control subsystem, configured to control the multi-path direction control valve assembly to implement circulation of the coolant among the condenser, the evaporator, the battery pack, the power assembly, the heat exchanger, the first water pump, the second water pump, the third water pump, the first water tank, and the second water tank.
3. The heat management system according to claim 2, wherein the control subsystem is further configured to: control the multi-path direction control valve assembly to implement three-path circulation of the coolant, wherein the coolant on a first path of the three-path circulation is output from the condenser, sequentially flows through the first water pump, the heat exchanger, and the second water tank, and then is input to the condenser; the coolant on a second path of the three-path circulation is output from the condenser, sequentially flows through the first water pump, the heat exchanger, the second water pump, and the power assembly, and then is input to the condenser; and the coolant on a third path of the three-path circulation is output from the evaporator, sequentially flows through the third water pump, the battery pack, and the first water tank, and then is input to the evaporator.
4. The heat management system according to claim 2, wherein the control subsystem is further configured to: control the multi-path direction control valve assembly to implement the following process in which the coolant is output from the condenser, sequentially flows through the first water pump, the battery pack, the first water tank, the evaporator, the third water pump, the power assembly, the heat exchanger, and the second water tank, and then is input to the condenser.
5. The heat management system according to claim 2, wherein the control subsystem is further configured to: control the multi-path direction control valve assembly to implement two-path circulation of the coolant, wherein the coolant on a first path of the two-path circulation is output from the condenser, sequentially flows through the first water pump, the battery pack, and the second water tank, and then is input to the condenser; and the coolant on a second path of the two-path circulation is output from the evaporator, sequentially flows through the third water pump, the heat exchanger, the second water pump, the power assembly, and the first water tank, and then is input to the evaporator.
6. The heat management system according to claim 2, wherein the control subsystem is further configured to: control the multi-path direction control valve assembly to implement two-path circulation of the coolant, wherein the coolant on a first path of the two-path circulation is output from the condenser, sequentially flows through the first water pump, the battery pack, and the second water tank, and then is input to the condenser; and the coolant on a second path of the two-path circulation is output from the evaporator, sequentially flows through the third water pump, the power assembly, and the first water tank, and then is input to the evaporator.
7. The heat management system according to claim 2, wherein the control subsystem is further configured to: control the multi-path direction control valve assembly to implement two-path circulation of the coolant, wherein the coolant on a first path of the two-path circulation is output from the condenser, sequentially flows through the first water pump, the battery pack, and the second water tank, and then is input to the condenser; and the coolant on a second path of the two-path circulation is output from the evaporator, sequentially flows through the third water pump, the power assembly, the heat exchanger, and the first water tank, and then is input to the evaporator.
8. The heat management system according to claim 2, wherein the control subsystem is further configured to: control the multi-path direction control valve assembly to implement two-path circulation of the coolant, wherein the coolant on a first path of the two-path circulation is output from the condenser, sequentially flows through the first water pump, the battery pack, and the second water tank, and then is input to the condenser; and the coolant on a second path of the two-path circulation is output from the evaporator, sequentially flows through the third water pump, the heat exchanger, and the first water tank, and then is input to the evaporator.
9. The heat management system according to claim 1, wherein the first water tank, the second water tank, and the battery pack are respectively connected to a left valve port, a lower valve port, and a right valve port of a first multi-path direction control valve of the multi-path direction control valve assembly; the first water pump, an upper valve port of a fifth multi-path direction control valve of the multi-path direction control valve assembly, and a left valve port of a third multi-path direction control valve of the multi-path direction control valve assembly are respectively connected to a left valve port, a lower valve port, and a right valve port of a second multi-path direction control valve of the multi-path direction control valve assembly; the battery pack and an upper valve port of an eighth multi-path direction control valve of the multi-path direction control valve assembly are respectively connected to a right valve port and a lower valve port of the third multi-path direction control valve; the second water tank, the power assembly, and a right valve port of the fifth multi-path direction control valve are respectively connected to a left valve port, a right valve port, and an upper valve port of a fourth multi-path direction control valve of the multi-path direction control valve assembly; a water inlet of the heat exchanger and an upper valve port of a ninth multi-path direction control valve of the multi-path direction control valve assembly are respectively connected to a left valve port and a lower valve port of the fifth multi-path direction control valve; the first water tank, the second water tank, a water outlet of the heat exchanger, and the second water pump are respectively connected to an upper valve port, a left valve port, a right valve port, and a lower valve port of a sixth multi-path direction control valve of the multi-path direction control valve assembly; the power assembly, the second water pump, and a right valve of the eighth multi-path direction control valve are respectively connected to a right valve port, an upper valve port, and a left valve port of a seventh multi-path direction control valve of the multi-path direction control valve assembly; a right valve port of the ninth multi-path direction control valve is connected to a left valve port of the eighth multi-path direction control valve; and the third water pump is connected to a left valve port of the ninth multi-path direction control valve.
10. The heat management system according to claim 9, further comprising: a sensing subsystem, configured to obtain a heat parameter of a target object, wherein the target object comprises one or more of an environment in which the system is located, the battery pack, or the power assembly, wherein the control subsystem is further configured to receive the heat parameter sent by the sensing subsystem, and control, based on the heat parameter, opening or closing of a valve port of each multi-path direction control valve of the multi-path direction control valve assembly.
11. The heat management system according to claim 10, wherein the sensing subsystem is further configured to: obtain a first temperature of the battery pack and a second temperature of the environment in which the system is located.
12. The heat management system according to claim 11, wherein the control subsystem is further configured to: when the control subsystem determines that the received first temperature is greater than a first preset temperature and the received second temperature is greater than a second preset temperature, control the left valve port, the right valve port, and the lower valve port of the first multi-path direction control valve to respectively be in a closed state, an open state, and the open state; control the left valve port, the right valve port, and the lower valve port of the second multi-path direction control valve to respectively be in the open state, the open state, and the closed state; control the left valve port, the right valve port, and the lower valve port of the third multi-path direction control valve to respectively be in the closed state, the open state, and the open state; control the left valve port, the right valve port, and the lower valve port of the fourth multi-path direction control valve to respectively be in the open state, the open state, and the closed state; control the left valve port, the upper valve port, the right valve port, and the lower valve port of the fifth multi-path direction control valve to respectively be in the open state, the open state, the open state, and the closed state; control the left valve port, the upper valve port, the right valve port, and the lower valve port of the sixth multi-path direction control valve to respectively be in the closed state, the open state, the open state, and the open state; control the left valve port, the upper valve port, and the right valve port of the seventh multi-path direction control valve to respectively be in the closed state, the open state, and the open state; control the left valve port, the upper valve port, and the right valve port of the eighth multi-path direction control valve to respectively be in the open state, the open state, and the closed state; and control the left valve port, the upper valve port, and the right valve port of the ninth multi-path direction control valve to respectively be in the open state, the closed state, and the open state.
13. The heat management system according to claim 11, wherein the control subsystem is further configured to: when the control subsystem determines that the received first temperature is less than a first preset temperature and the received second temperature is greater than a second preset temperature, control the left valve port, the right valve port, and the lower valve port of the first multi-path direction control valve to respectively be in a closed state, an open state, and the open state; control the left valve port, the right valve port, and the lower valve port of the second multi-path direction control valve to respectively be in the open state, the open state, and the closed state; control the left valve port, the right valve port, and the lower valve port of the third multi-path direction control valve to respectively be in the open state, the open state, and the closed state; control the left valve port, the right valve port, and the lower valve port of the fourth multi-path direction control valve to respectively be in the open state, the open state, and the closed state; control the left valve port, the upper valve port, the right valve port, and the lower valve port of the fifth multi-path direction control valve to respectively be in the open state, the closed state, the open state, and the closed state; control the left valve port, the upper valve port, the right valve port, and the lower valve port of the sixth multi-path direction control valve to respectively be in the closed state, the open state, the open state, and the closed state; control the left valve port, the upper valve port, and the right valve port of the seventh multi-path direction control valve to respectively be in the open state, the closed state, and the open state; control the left valve port, the upper valve port, and the right valve port of the eighth multi-path direction control valve to respectively be in the open state, the closed state, and the open state; and control the left valve port, the upper valve port, and the right valve port of the ninth multi-path direction control valve to respectively be in the open state, the closed state, and the open state.
14. The heat management system according to claim 11, wherein the sensing subsystem is further configured to: obtain a heat value of the power assembly.
15. The heat management system according to claim 14, wherein the control subsystem is further configured to: when the control subsystem determines that the received first temperature is less than a third preset temperature, the received second temperature is greater than the second preset temperature, and the heat value is less than a first preset value, control the left valve port, the right valve port, and the lower valve port of the first multi-path direction control valve to respectively be in the open state, the open state, and the closed state; control the left valve port, the right valve port, and the lower valve port of the second multi-path direction control valve to respectively be in the open state, the open state, and the closed state; control the left valve port, the right valve port, and the lower valve port of the third multi-path direction control valve to respectively be in the open state, the open state, and the closed state; control the left valve port, the right valve port, and the lower valve port of the fourth multi-path direction control valve to respectively be in the open state, the closed state, and the open state; control the left valve port, the upper valve port, the right valve port, and the lower valve port of the fifth multi-path direction control valve to respectively be in the open state, the closed state, the closed state, and the open state; control the left valve port, the upper valve port, the right valve port, and the lower valve port of the sixth multi-path direction control valve to respectively be in the closed state, the closed state, the open state, and the open state; control the left valve port, the upper valve port, and the right valve port of the seventh multi-path direction control valve to respectively be in the closed state, the open state, and the open state; and control the left valve port, the upper valve port, and the right valve port of the ninth multi-path direction control valve to respectively be in the open state, the open state, and the closed state.
16. The heat management system according to claim 14, wherein the control subsystem is further configured to: when the control subsystem determines that the received first temperature is less than a third preset temperature, the received second temperature is less than the second preset temperature, and the heat value is greater than a first preset value and less than a second preset value, control the left valve port, the right valve port, and the lower valve port of the first multi-path direction control valve to respectively be in the open state, the open state, and the closed state; control the left valve port, the right valve port, and the lower valve port of the second multi-path direction control valve to respectively be in the open state, the open state, and the closed state; control the left valve port, the right valve port, and the lower valve port of the third multi-path direction control valve to respectively be in the open state, the open state, and the closed state; control the left valve port, the right valve port, and the lower valve port of the fourth multi-path direction control valve to respectively be in the closed state, the open state, and the open state; control the left valve port, the upper valve port, and the right valve port of the seventh multi-path direction control valve to respectively be in the open state, the closed state, and the open state; control the left valve port, the upper valve port, and the right valve port of the eighth multi-path direction control valve to respectively be in the open state, the closed state, and the open state; and control the left valve port, the upper valve port, and the right valve port of the ninth multi-path direction control valve to respectively be in the open state, the closed state, and the open state.
17. The heat management system according to claim 14, wherein the control subsystem is further configured to: when the control subsystem determines that the received first temperature is less than a third preset temperature and the heat value is greater than a second preset value, control the left valve port, the right valve port, and the lower valve port of the first multi-path direction control valve to respectively be in the open state, the open state, and the closed state; control the left valve port, the right valve port, and the lower valve port of the second multi-path direction control valve to respectively be in the open state, the open state, and the closed state; control the left valve port, the right valve port, and the lower valve port of the third multi-path direction control valve to respectively be in the open state, the open state, and the closed state; control the left valve port, the right valve port, and the lower valve port of the fourth multi-path direction control valve to respectively be in the open state, the open state, and the closed state; control the left valve port, the upper valve port, the right valve port, and the lower valve port of the fifth multi-path direction control valve to respectively be in the open state, the closed state, the open state, and the closed state; control the left valve port, the upper valve port, the right valve port, and the lower valve port of the sixth multi-path direction control valve to respectively be in the open state, the closed state, the open state, and the closed state; control the left valve port, the upper valve port, and the right valve port of the seventh multi-path direction control valve to respectively be in the open state, the closed state, and the open state; control the left valve port, the upper valve port, and the right valve port of the eighth multi-path direction control valve to respectively be in the open state, the closed state, and the open state; and control the left valve port, the upper valve port, and the right valve port of the ninth multi-path direction control valve to respectively be in the open state, the closed state, and the open state.
18. An electric vehicle, configured with a heat management system, wherein the heat management system comprises: a vapor compression circulation subsystem; and a coolant subsystem, wherein a compressor, a condenser, a throttling apparatus, and an evaporator are comprised in the vapor compression circulation subsystem and are sequentially connected to form a closed loop, to provide a coolant at a preset temperature for circulation in the coolant subsystem; and a battery pack, a power assembly, a heat exchanger, a first water pump, a second water pump, a third water pump, a first water tank, and a second water tank are comprised in the coolant subsystem and are connected by using a multi-path direction control valve assembly, so that the system adjusts opening or closing of each valve port in the multi-path direction control valve assembly to select different circulation manners of the coolant.
19. The electric vehicle according to claim 18, wherein the heat management system further comprises: a control subsystem, configured to control the multi-path direction control valve assembly to implement circulation of the coolant among the condenser, the evaporator, the battery pack, the power assembly, the heat exchanger, the first water pump, the second water pump, the third water pump, the first water tank, and the second water tank.
20. The system according to claim 19, wherein the control subsystem is further configured to: control the multi-path direction control valve assembly to implement three-path circulation of the coolant, wherein the coolant on a first path of the three-path circulation is output from the condenser, sequentially flows through the first water pump, the heat exchanger, and the second water tank, and then is input to the condenser; the coolant on a second path of the three-path circulation is output from the condenser, sequentially flows through the first water pump, the heat exchanger, the second water pump, and the power assembly, and then is input to the condenser; and the coolant on a third path of the three-path circulation is output from the evaporator, sequentially flows through the third water pump, the battery pack, and the first water tank, and then is input to the evaporator.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0039]
[0040]
[0041]
[0042]
[0043]
[0044]
[0045]
[0046]
[0047]
[0048]
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0049] The embodiments provide a heat management system and an electric vehicle, to provide coolant circulation manners (that is, heat management manners) for different heat management requirements, thereby reducing energy consumption and costs generated when a system performs heat management on a power assembly and a battery pack.
[0050] The following describes the embodiments with reference to accompanying drawings. A person of ordinary skill in this field may know that, with development of technologies and emergence of a new scenario, the solutions provided in the embodiments are also applicable to a similar problem.
[0051] In the embodiments and accompanying drawings, the terms “first”, “second”, and so on are intended to distinguish between similar objects but do not necessarily indicate an order or sequence. It should be understood that the terms used in such a way are interchangeable in proper circumstances, which is merely a discrimination manner that is used when objects having a same attribute are described in the embodiments. In addition, the terms “include”, “contain” and any other variants mean to cover the non-exclusive inclusion, so that a process, method, system, product, or device that includes a series of units is not necessarily limited to those units but may include other units not expressly listed or inherent to such a process, method, product, or device.
[0052] First, the embodiments may provide a heat management system (hereinafter referred to as a system for short). For a framework of the system, refer to
[0053] SUBSTITUTE SPECIFICATION-CLEAN 13210440US multi-path direction control valve assembly are respectively connected to a right valve port and a lower valve port of the multi-path direction control valve 303. The second water tank 208, the power assembly 203, and a right valve port of the multi-path direction control valve 305 are respectively connected to a left valve port, a right valve port, and an upper valve port of a multi-path direction control valve 304 of the multi-path direction control valve assembly. A water inlet of the heat exchanger 205 and an upper valve port of a multi-path direction control valve 309 of the multi-path direction control valve assembly are respectively connected to a left valve port and a lower valve port of the multi-path direction control valve 305. The first water tank 207, the second water tank 208, a water outlet of the heat exchanger 205, and the second water pump 204 are respectively connected to an upper valve port, a left valve port, a right valve port, and a lower valve port of a multi-path direction control valve 306 of the multi-path direction control valve assembly. The power assembly 203, the second water pump 204, and a right valve of a multi-path direction control valve 308 are respectively connected to a right valve port, an upper valve port, and a left valve port of a multi-path direction control valve 307 of the multi-path direction control valve assembly. A right valve port of the multi-path direction control valve 309 is connected to a left valve port of the multi-path direction control valve 308. The third water pump 206 is connected to a left valve port of the multi-path direction control valve 309.
[0054] It should be noted that in some implementations, the multi-path direction control valve assembly in the system may include fewer or more multi-path direction control valves. Alternatively, functions of several multi-path direction control valves (or other types of adjustment valves) may be used to replace a function of one of the multi-path direction control valves. Alternatively, a function of one multi-path direction control valve may be used to be replaced with functions of several multi-path direction control valves (or other types of adjustment valves). This embodiment does not limit a type of a multi-path direction control valve and a quantity of multi-path direction control valves included in the multi-path direction control valve assembly. All other components or modules that can implement functions similar to those of the multi-path direction control valve assembly in this embodiment belong to the multi-path direction control valve described in this embodiment. The multi-path direction control valves 301 to 309 in
[0055] In the foregoing implementation, the coolant subsystem connects the battery pack 202, the power assembly 203, the heat exchanger 205, the first water pump 201, the second water pump 204, the third water pump 206, the first water tank 207, and the second water tank 208 by using the multi-path direction control valve assembly, so that the system can adjust opening or closing of each valve port in the multi-path direction control valve assembly to select different circulation manners of the coolant. Heat management manners are provided for different heat management requirements, to reduce energy consumption and costs generated when the system performs heat management on the power assembly and the battery pack.
[0056] It should be noted that, in some implementations, the system may further include a control subsystem. With reference to
[0057] a. The multi-path direction control valve assembly is controlled to implement three-path circulation of the coolant. The coolant on a first path of the three-path circulation is output from the condenser; sequentially flows through the first water pump, the heat exchanger, and the second water tank; and then is input to the condenser. The coolant on a second path of the three-path circulation is output from the condenser; sequentially flows through the first water pump, the heat exchanger, the second water pump, and the power assembly; and then is input to the condenser. The coolant on a third path of the three-path circulation is output from the evaporator; sequentially flows through the third water pump, the battery pack, and the first water tank; and then is input to the evaporator.
[0058] b. The multi-path direction control valve assembly is controlled to implement the following process in which the coolant is output from the condenser; sequentially flows through the first water pump, the battery pack, the first water tank, the evaporator, the third water pump, the power assembly, the heat exchanger, and the second water tank; and then is input to the condenser.
[0059] c. The multi-path direction control valve assembly is controlled to implement two-path circulation of the coolant. The coolant on a first path of the two-path circulation is output from the condenser; sequentially flows through the first water pump, the battery pack, and the second water tank; and then is input to the condenser. The coolant on a second path of the two-path circulation is output from the evaporator; sequentially flows through the third water pump, the heat exchanger, the second water pump, the power assembly, and the first water tank; and then is input to the evaporator.
[0060] d. The multi-path direction control valve assembly is controlled to implement two-path circulation of the coolant. The coolant on a first path of the two-path circulation is output from the condenser; sequentially flows through the first water pump, the battery pack, and the second water tank; and then is input to the condenser. The coolant on a second path of the two-path circulation is output from the evaporator; sequentially flows through the third water pump, the power assembly, and the first water tank; and then is input to the evaporator.
[0061] e. The multi-path direction control valve assembly is controlled to implement two-path circulation of the coolant. The coolant on a first path of the two-path circulation is output from the condenser; sequentially flows through the first water pump, the battery pack, and the second water tank; and then is input to the condenser. The coolant on a second path of the two-path circulation is output from the evaporator; sequentially flows through the third water pump, the power assembly, the heat exchanger, and the first water tank; and then is input to the evaporator.
[0062] f. The multi-path direction control valve assembly is controlled to implement two-path circulation of the coolant. The coolant on a first path of the two-path circulation is output from the condenser; sequentially flows through the first water pump, the battery pack, and the second water tank; and then is input to the condenser. The coolant on a second path of the two-path circulation is output from the evaporator; sequentially flows through the third water pump, the heat exchanger, and the first water tank; and then is input to the evaporator.
[0063] In some implementations, the system further includes a sensing subsystem configured to obtain a heat parameter of a target object. The target object includes one or more of an environment in which the system is located, the battery pack, and the power assembly. In this case, the control subsystem is further configured to: receive the heat parameter sent by the sensing subsystem, and control, based on the heat parameter, opening or closing of a valve port of each multi-path direction control valve of the multi-path direction control valve assembly.
[0064] It should be noted that, in some implementations, the sensing subsystem includes, but is not limited to, the following components (with reference to
[0065] For ease of understanding, based on a system structure framework corresponding to
[0066] 1. A current operating condition is driving. The sensing subsystem is configured to obtain the heat parameter of the target object, which includes obtaining the first temperature of the battery pack 202 and the second temperature of the environment in which the electric vehicle is located.
[0067] With reference to
[0068] A. If T.sub.401>T.sub.a and T.sub.403>T.sub.0, the system controls the multi-path direction control valve assembly to implement a coolant circulation manner of air condition cooling of the battery pack 202 and natural heat dissipation of the power assembly.
[0069] If a comparison result of the system is T.sub.401>T.sub.a and T.sub.403>T.sub.0, it indicates that the system determines that the battery pack 202 needs to be cooled, and the temperature of the environment in which the electric vehicle is located in a current phase is excessively high (for example, an ambient temperature is relatively high in summer). This cannot meet a requirement for natural heat dissipation of the battery pack 202. Therefore, the battery pack 202 uses an air condition cooling manner. Because a current operating condition of the electric vehicle is the normally driving state, a heat value generated when the power assembly 203 operates is not very high. Therefore, the power assembly 203 uses the natural heat dissipation manner. In conclusion, when T.sub.401>T.sub.a and T.sub.403>T.sub.0, the system controls the multi-path direction control valve assembly to implement a coolant circulation manner of the air conditioning of the battery pack 202 and the natural heat dissipation of the power assembly.
[0070] The system adjusts opening and closing of each valve port in the multi-path direction control valve assembly according to a logical manner in Table 1, to form a coolant circulation manner indicated by using an arrow in
TABLE-US-00001 TABLE 1 Left Upper Right Lower valve valve valve valve port port port port Multi-path direction control valve 301 Closed — Open Open Multi-path direction control valve 302 Open — Open Closed Multi-path direction control valve 303 Closed — Open Open Multi-path direction control valve 304 Open — Open Closed Multi-path direction control valve 305 Open Open Open Closed Multi-path direction control valve 306 Closed Open Open Open Multi-path direction control valve 307 Closed Open Open — Multi-path direction control valve 308 Open Open Closed — Multi-path direction control valve 309 Open Closed Open —
[0071] The following describes the coolant circulation manner indicated by using the arrow in
[0072] In conclusion, in the coolant circulation manner, actively cooling (that is, air condition cooling) of the evaporator 104 in the vapor compression circulation subsystem is implemented by using the battery pack 202. Heat management with low power consumption is implemented for the heat generated by the power assembly 203 and the heat of the condenser 102 in the natural heat dissipation manner of the heat exchanger 205.
[0073] B. If T.sub.401>T.sub.a and T.sub.403<T.sub.0, the system controls the multi-path direction control valve assembly to implement a coolant circulation manner of natural heat dissipation after the battery pack 202 is connected to the power assembly in series.
[0074] Similarly, when the current ambient temperature is relatively low, if a comparison result of the system is T.sub.401>T.sub.a and T.sub.403<T.sub.0, it indicates that the system determines that the battery pack 202 needs to be cooled, and the temperature of the conventional environment in a current phase is relatively low (for example, an ambient temperature is relatively low in winter). This can meet a requirement for natural heat dissipation of the battery pack 202. In addition, because a current operating condition of the electric vehicle is the normally driving state, a heat value generated when the power assembly 203 operates is not very high. Therefore, the power assembly 203 uses the natural heat dissipation manner. In conclusion, when T.sub.401>T.sub.a and T.sub.403<T.sub.0, the system controls the multi-path direction control valve assembly to implement a coolant circulation manner of the natural heat dissipation when the battery pack 202 is connected to the power assembly in series.
[0075] The system adjusts opening and closing of each valve port in the multi-path direction control valve assembly according to a logical manner in Table 2, to form a coolant circulation manner indicated by using an arrow in
TABLE-US-00002 TABLE 2 Left Upper Right Lower valve valve valve valve port port port port Multi-path direction control valve 301 Closed — Open Open Multi-path direction control valve 302 Open — Open Closed Multi-path direction control valve 303 Open — Open Closed Multi-path direction control valve 304 Open — Open Closed Multi-path direction control valve 305 Open Closed Open Closed Multi-path direction control valve 306 Closed Open Open Closed Multi-path direction control valve 307 Open Closed Open — Multi-path direction control valve 308 Open Closed Open — Multi-path direction control valve 309 Open Closed Open —
[0076] The following describes the coolant circulation manner indicated by using the arrow in
[0077] In conclusion, in this coolant circulation manner, because the ambient temperature can meet the requirement for the natural heat dissipation of the battery pack 202, the compressor 101 in the vapor compression circulation subsystem does not need to operate, and the evaporator 104 and the condenser 102 do not heat or cool the coolant flowing through the evaporator 104 and the condenser 102. Because the compressor 101 is in a non-operating state, the system does not need to generate extra power consumption for the compressor 101, to implement the heat management with low power consumption for the battery pack 202 and the power assembly 203.
[0078] In addition, if the system determines that T.sub.401<a third preset temperature (which may be denoted as T.sub.c), the system further needs to obtain a heat value (which may be denoted as Q) of the power assembly. Different Q and different T.sub.403 correspond to different coolant circulation manners. This is shown as follows.
[0079] A. If Q<a first preset value (may be denoted as Q1) and T.sub.403>T.sub.0, the system controls the multi-path direction control valve assembly to implement a coolant circulation manner of heating of the battery pack, heat absorption of the heat exchanger from the environment, and natural heat dissipation of the power assembly.
[0080] When a current operating condition of the electric vehicle is driving, Q (for example, the control subsystem obtains information such as a rotation speed, input power, and a torque of the power assembly in real time and determines Q of the power assembly based on the information) of the power assembly is obtained in real time by using the control subsystem. Because T.sub.401<T.sub.c, the system determines that the battery pack needs to be heated for driving. In this case, if the system determines that Q<Q1 and T.sub.403>T.sub.0, the system further determines that the heat generated by the power assembly is excessively low in the current phase and needs to absorb extra heat from the environment. In this case, the system controls the multi-path direction control valve assembly to implement a coolant circulation manner of heating of the battery pack, heat absorption of the heat exchanger from the environment, and natural heat dissipation of the power assembly.
[0081] The system adjusts opening and closing of each valve port in the multi-path direction control valve assembly according to a logical manner in Table 3, to form a coolant circulation manner indicated by using an arrow in
TABLE-US-00003 TABLE 3 Left Upper Right Lower valve valve valve valve port port port port Multi-path direction control valve 301 Open — Open Closed Multi-path direction control valve 302 Open — Open Closed Multi-path direction control valve 303 Open — Open Closed Multi-path direction control valve 304 Open — Closed Open Multi-path direction control valve 305 Open Closed Closed Open Multi-path direction control valve 306 Closed Closed Open Open Multi-path direction control valve 307 Closed Open Open — Multi-path direction control valve 308 Any Any Any — Multi-path direction control valve 309 Open Open Closed —
[0082] The following describes the coolant circulation manner indicated by using the arrow in
[0083] B. If Q1<Q<a second preset value (may be denoted as Q2) and T.sub.403<T.sub.0, the system controls the multi-path direction control valve assembly to implement a coolant circulation manner of heating of the battery pack and natural heat dissipation of the power assembly.
[0084] Similarly, when a current operating condition of the electric vehicle is driving, Q (for example, the control subsystem obtains information such as a rotation speed, input power, and a torque of the power assembly in real time and determines Q of the power assembly based on the information) of the power assembly is obtained in real time by using the control subsystem. Because T.sub.401<T.sub.c, the system determines that the battery pack needs to be heated for driving. In this case, if the system determines that Q1<Q<Q2 and T.sub.403<T.sub.0, the system further determines that the heat generated by the power assembly in the current phase is sufficient for heating of the heat pump of the battery pack 202. In this case, the low-temperature coolant flowing from the evaporator 104 does not need to absorb extra heat from the environment. In this case, the system controls the multi-path direction control valve assembly to implement a coolant circulation manner of heating of the battery pack and natural heat dissipation of the power assembly.
[0085] The system adjusts opening and closing of each valve port in the multi-path direction control valve assembly according to a logical manner in Table 4, to form a coolant circulation manner indicated by using an arrow in
TABLE-US-00004 TABLE 4 Left Upper Right Lower valve valve valve valve port port port port Multi-path direction control valve 301 Open — Open Closed Multi-path direction control valve 302 Open — Open Closed Multi-path direction control valve 303 Open — Open Closed Multi-path direction control valve 304 Closed — Open Open Multi-path direction control valve 305 Any Any Any Any Multi-path direction control valve 306 Any Any Any Any Multi-path direction control valve 307 Open Closed Open — Multi-path direction control valve 308 Open Closed Open — Multi-path direction control valve 309 Open Closed Open —
[0086] The following describes the coolant circulation manner indicated by using the arrow in
[0087] In the coolant circulation manner corresponding to
[0088] C. If Q>Q2, the system controls the multi-path direction control valve assembly to implement a coolant circulation manner of heating of the battery pack and heat absorption of the heat exchanger from the power assembly.
[0089] Similarly, when a current operating condition of the electric vehicle is driving, Q (for example, the control subsystem obtains information such as a rotation speed, input power, and a torque of the power assembly in real time and determines Q of the power assembly based on the information) of the power assembly is obtained in real time by using the control subsystem. Because T.sub.401<T.sub.c, the system determines that the battery pack needs to be heated for driving. If the electric vehicle is currently in an operating condition such as long-time slope climbing or high-speed driving, in this case, Q generated by the power assembly is greater than Q2 and T.sub.403<T.sub.0. The system further determines that the heat generated by the power assembly is excessively high in the current phase. The generated heat is sufficient for heating of the heat pump of the battery pack 202. In addition, a part of the heat needs to be released to the environment by using the heat exchanger. In this case, the system controls the multi-path direction control valve assembly to implement a coolant circulation manner of heating the battery pack and heat absorption of the heat exchanger from the power assembly.
[0090] The system adjusts opening and closing of each valve port in the multi-path direction control valve assembly according to a logical manner in Table 5, to form a coolant circulation manner indicated by using an arrow in
TABLE-US-00005 TABLE 5 Left Upper Right Lower valve valve valve valve port port port port Multi-path direction control valve 301 Open — Open Closed Multi-path direction control valve 302 Open — Open Closed Multi-path direction control valve 303 Open — Open Closed Multi-path direction control valve 304 Open — Open Closed Multi-path direction control valve 305 Open Closed Open Closed Multi-path direction control valve 306 Open Closed Open Closed Multi-path direction control valve 307 Open Closed Open — Multi-path direction control valve 308 Open Closed Open — Multi-path direction control valve 309 Open Closed Open —
[0091] The following describes the coolant circulation manner indicated by using the arrow in
[0092] In a heat management circulation branch corresponding to
[0093] 2. A current operating condition is a charge request or a start request. The sensing subsystem is further configured to obtain a heat parameter of a target object, including a first temperature of the battery pack.
[0094] With reference to
[0095] The system adjusts opening and closing of each valve port in the multi-path direction control valve assembly according to a logical manner in Table 6, to form a coolant circulation manner indicated by using an arrow in
TABLE-US-00006 TABLE 6 Left Upper Right Lower valve valve valve valve port port port port Multi-path direction control valve 301 Open — Open Closed Multi-path direction control valve 302 Open — Open Closed Multi-path direction control valve 303 Open — Open Closed Multi-path direction control valve 304 Any — Any Any Multi-path direction control valve 305 Open Closed Closed Open Multi-path direction control valve 306 Open Closed Open Closed Multi-path direction control valve 307 Any Any Any — Multi-path direction control valve 308 Any Any Any — Multi-path direction control valve 309 Open Open Closed —
[0096] The following describes the coolant circulation manner indicated by using the arrow in
[0097] In the coolant circulation manner corresponding to
[0098] In the foregoing implementation, the first preset temperature T.sub.a, the second preset temperature To, the third preset temperature T.sub.c, the fourth preset temperature T.sub.b, the first preset value Q1, and the second preset value Q2 may be all set according to a requirement of a user (for example, a driving habit, an overall vehicle condition of an electric vehicle, and a season condition of a current region). This is not limited herein.
[0099] In the foregoing implementation, the electric vehicle may determine a proper coolant circulation manner for the current operating condition in real time based on the current operating condition and the obtained heat parameter of the target object, to provide different coolant circulation manners for different heat management requirements of the electric vehicle, thereby reducing power consumption generated when the system performs heat management on the power assembly and the battery pack.