Method, apparatus and vehicle for cooling a stalled drive motor of a vehicle

The method and apparatus ensure coolant supply to stalled drive motors in hybrid vehicles by engine-assisted cooling, addressing insufficient coolant in pure electric mode, thereby preventing overheating and extending motor lifespan.

JP7777231B2Active Publication Date: 2025-11-27BYD CO LTD
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Patent Information

Application Number
JP2024539760
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-02-28
Filing Date
2023-02-23
Publication Date
2025-11-27
Estimated Expiration
2043-02-23

AI Technical Summary

Technical Problem

In hybrid vehicles without an electric oil pump, the drive motor stalls in pure electric mode due to insufficient coolant supply when wheel-end oil pumps rotate at low speed, leading to reduced lifespan or burnout.

Method used

A method and apparatus that initiates engine operation to drive the engine-end oil pump, providing coolant to the stalled drive motor through a cooling channel, with controls for temperature management and fan operation to optimize cooling.

Benefits of technology

Prevents drive motor stalling by ensuring adequate coolant supply, maintaining motor within safe temperature ranges and preventing overheating and burnout.

✦ Generated by Eureka AI based on patent content.

Smart Images

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Patent Text Reader

Abstract

A method for cooling a stalled traction motor of a vehicle, the vehicle (500) comprising a traction motor (501), an engine (502), an engine-end oil pump (503), and a cooling channel (504), the engine (502) is used to drive the operation of the engine-end oil pump (503), the cooling channel (504) connecting the engine-end oil pump (503) and the traction motor (501), the method comprising: when a driving mode of the vehicle (500) is in a pure electric mode, the vehicle (500) satisfies a predetermined motor stall operating condition, and a current temperature of the traction motor (501) is greater than an engine assisted cooling start-up temperature, controlling the start-up of the engine (502) of the vehicle (500), and the engine-end oil pump (503) of the vehicle (500) drives a coolant fluid in the cooling channel (504) to cool the traction motor (501).
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Description

[Technical Field]

[0001] The present disclosure relates to the field of vehicle heat dissipation, and more particularly to a method, apparatus, and vehicle for cooling a stalled drive motor of a vehicle. [Background technology]

[0002] In hybrid vehicles equipped with an electric oil pump, the cooling system is driven by the electric oil pump, allowing the drive motor to be cooled under all driving conditions. However, in hybrid vehicles without an electric oil pump, in pure electric mode, the drive motor is cooled primarily by driving the wheel-end oil pumps via the rotation of the wheels. However, when a hybrid vehicle is in pure electric mode, if the drive motor stalls, the vehicle speed slows, the wheel-end oil pumps become low, and the drive motor cannot receive enough coolant, shortening its lifespan or even burning out. Summary of the Invention [Problem to be solved by the invention]

[0003] The present disclosure aims to provide a method, an apparatus and a vehicle for cooling a stalled drive motor of a vehicle, which are applied to the drive motor and solve the technical problem of not being able to provide enough coolant liquid to cool the drive motor due to stalling of the drive motor in pure electric mode. [Means for solving the problem]

[0004] In order to achieve the above object, a first aspect of the present disclosure provides a method for cooling a stalled drive motor of a vehicle, the vehicle including a drive motor, an engine, an engine-end oil pump, and a cooling channel, the engine being used to drive the operation of the engine-end oil pump, the cooling channel connecting the engine-end oil pump and the drive motor, the method comprising: When the driving mode of the vehicle is in a pure electric mode, the vehicle satisfies a predetermined motor stall operating condition, and the current temperature of the driving motor is greater than an engine-assisted cooling start temperature, the engine of the vehicle is controlled to start, so that the engine-end oil pump of the vehicle drives the coolant liquid in the cooling channel to cool the driving motor.

[0005] Optionally, the method further comprises: determining a first time length for the temperature of the driving motor to reach a first predetermined temperature based on the temperature change rate of the driving motor and the current temperature of the driving motor; If the first length of time is less than or equal to a first predetermined length of time, decreasing the engine assist cooled start-up temperature.

[0006] Optionally, decreasing the engine assisted cooled start-up temperature if the first length of time is less than or equal to a first predetermined length of time includes: If the first time length is equal to or shorter than a first predetermined time length, determining a target correction offset amount based on a temperature change rate of the drive motor and a predetermined relationship between the temperature change rate and the correction offset amount; The difference between the first predetermined temperature and the target correction offset amount is set as the engine assist cooling start temperature.

[0007] Optionally, decreasing the engine assisted cooled start-up temperature if the first length of time is less than or equal to a first predetermined length of time includes: If the first length of time is less than or equal to a first predetermined length of time, the engine assist cool start temperature is equal to a second predetermined temperature, the second predetermined temperature being less than the first predetermined temperature.

[0008] Optionally, the method further comprises: The method further includes, if the first length of time is greater than a first predetermined length of time, the engine assist cool start temperature is equal to the first predetermined temperature.

[0009] Optionally, the method further comprises: and controlling the engine to stop operation after a second predetermined length of time if the vehicle satisfies a predetermined motor stall exit condition and the current temperature of the traction motor is determined to be less than an engine assist cooling stop temperature.

[0010] Optionally, the first predetermined temperature is a maximum allowable temperature of the drive motor, the second predetermined temperature is a safe start-up temperature when the drive motor is stalled, and the engine assist cooling start-up temperature is less than or equal to the first predetermined temperature.

[0011] Optionally, the method further comprises: Controlling the rotation speed of the engine based on the current temperature of the traction motor, wherein there is a positive correlation between the rotation speed of the engine and the current temperature of the traction motor; The method further includes controlling a heat dissipation fan of the vehicle to operate at a maximum rotational speed to cool the drive motor when the vehicle satisfies a predetermined motor stall operating condition and the flow rate of the cooling flow path through the drive motor is greater than a first predetermined cooling flow rate.

[0012] Optionally, the method further comprises: and further comprising controlling the heat dissipation fan to operate when the vehicle satisfies a predetermined motor stall termination condition and the flow rate of the cooling flow path through the traction motor is less than a second predetermined cooling flow rate; Here, the first predetermined cooling flow rate is greater than the second predetermined cooling flow rate.

[0013] Optionally, controlling engine start of the vehicle includes: controlling the engine to output a predetermined rotational speed; and controlling a heat dissipation fan of the vehicle to operate at a maximum rotation speed to cool the drive motor.

[0014] Optionally, the method further comprises: determining that the vehicle meets a predetermined motor stall exit condition and that the current temperature of the traction motor is less than an engine assist cooling stop temperature; The method further includes controlling the heat dissipation fan to operate and, after a second predetermined time period, controlling the engine to stop operating, or controlling the engine and the heat dissipation fan to stop operating after a second predetermined time period.

[0015] Optionally, the predetermined motor stall operating conditions include the vehicle being in a forward range or a reverse range, the torque of the drive motor being equal to or greater than a first predetermined torque, and the vehicle speed being equal to or less than a first predetermined vehicle speed; the predetermined motor stall termination conditions include: the range of the vehicle is not a forward range or a reverse range; the torque of the drive motor is less than a second predetermined torque; and the vehicle speed is greater than one or more of the second predetermined vehicle speeds; Here, the first predetermined torque is greater than the second predetermined torque, and the first predetermined vehicle speed is less than the second predetermined vehicle speed.

[0016] Optionally, the vehicle includes a relief valve for controlling the flow rate of the cooling flow passage, and the method further comprises: The method further includes requesting a relief valve of the vehicle to be forced closed if, after starting the engine and cooling the drive motor, the flow rate of the cooling passage flowing through the drive motor is greater than a third predetermined cooling flow rate.

[0017] A second aspect of the present disclosure further provides an apparatus for cooling a stalled drive motor of a vehicle, the vehicle including: a drive motor; an engine; an engine-end oil pump; and a cooling passage; the engine is used to drive operation of the engine-end oil pump; the cooling passage connects the engine-end oil pump and the drive motor; and the apparatus includes: A controller adapted to implement the steps of the method for cooling a stalled drive motor of the vehicle according to any one of the first aspects above is provided.

[0018] A third aspect of the present disclosure further provides a non-transitory computer-readable storage medium having stored thereon a computer program that, when executed by a processor, implements the steps of the method for cooling a stalled drive motor of the vehicle as set forth in any of the first aspects above.

[0019] A fourth aspect of the present disclosure further provides a vehicle, the vehicle comprising: a drive motor; an engine; an engine-end oil pump; a cooling passage; and a controller; the engine is used to drive the operation of the engine-end oil pump; the cooling passage connects the engine-end oil pump and the drive motor; The controller is adapted to implement the steps of the method for cooling a stalled drive motor of the vehicle as set forth in any of the first aspects above. [Effects of the Invention]

[0020] The above technical solutions can at least achieve the following technical effects:

[0021] When the vehicle is in pure electric mode, the vehicle meets the predetermined motor stall conditions, and the current temperature of the traction motor is greater than the engine-assisted cooling start temperature, the vehicle engine is started, causing the vehicle's engine-end oil pump to drive the coolant in the cooling channel to cool the traction motor. This method avoids the problem of the traction motor stalling in the pure electric mode, where the wheel-end oil pump's rotation speed is too low to provide enough coolant to cool the traction motor, resulting in reduced service life and burnout of the traction motor.

[0022] Other features and advantages of the present disclosure are described in part in detail in the specific embodiments that follow. [Brief explanation of the drawings]

[0023] The drawings are provided to provide a further understanding of the present disclosure, constitute a part of the specification, and serve to interpret the present disclosure in conjunction with the following specific embodiments, but do not constitute limitations thereon. [Figure 1] FIG. 1 is a schematic diagram illustrating a cooling system architecture. [Figure 2] 1 is a flowchart illustrating a method for cooling a stalled drive motor of a vehicle according to an embodiment of the present disclosure. [Figure 3] 4 is a flowchart illustrating a method for cooling a stalled drive motor of another vehicle according to an embodiment of the present disclosure. [Figure 4] 1 is a block diagram illustrating an apparatus for cooling a stalled drive motor of a vehicle according to an embodiment of the present disclosure. [Figure 5] 1 is a block diagram illustrating a vehicle according to an embodiment of the present disclosure. [Figure 6] FIG. 1 is a block diagram illustrating another vehicle according to an embodiment of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION

[0024] Hereinafter, specific embodiments of the present disclosure will be described in detail with reference to the accompanying drawings. It should be understood that the specific embodiments described herein are for the purpose of explaining and interpreting the present disclosure, and do not limit the present disclosure.

[0025] It should be understood that the steps recited in the method embodiments of the present disclosure may be performed in a different order and / or in parallel. It should be noted that method embodiments may include additional steps and / or omit illustrated steps. The scope of the present disclosure is not limited in this respect. As used herein, the term "comprises" and variations thereof are open-ended inclusions, i.e., "including, but not limited to." The term "based on" refers to "based at least in part on." The term "one embodiment" refers to "at least one embodiment," the term "another embodiment" refers to "at least one other embodiment," and the term "some embodiments" refers to "at least some embodiments." Relevant definitions of other terms are provided in the following description.

[0026] It should be noted that the concepts of "first," "second," etc. referred to in the present disclosure are only used to distinguish different devices, modules, or units, and are not intended to limit the order or interdependence of functions performed by these devices, modules, or units. It should be noted that the modifications of "one" and "multiple" referred to in the present disclosure are exemplary rather than limiting, and should be understood by those skilled in the art as "one or more," unless otherwise clearly indicated in the context.

[0027] Figure 1 shows the cooling system architecture of a hybrid vehicle that does not currently have an electric oil pump. Both the wheel-end oil pump 101 and the engine-end oil pump 102 are mechanical pumps. The wheel-end oil pump 101 is driven by the rotation of the wheels and is responsible for the low-pressure oil passage (cooling and lubrication), while the engine-end oil pump 102 is driven by the rotation of the engine and is responsible for supplying oil to the high-pressure oil passage (hydraulic pressure for the clutch 108, etc.). A control valve 103 is installed between the low-pressure oil passage and the high-pressure oil passage. The control valve 103 has at least a first state that allows the engine-end oil pump 102 to supply oil to the cooling oil passage of the drive motor 104, and a second state that blocks it. When the hybrid vehicle is in pure electric mode, the wheel-end oil pump 101 is primarily driven by the rotation of the wheels. When the hybrid vehicle is in hybrid mode, the engine-end oil pump 102 is driven by the engine and performs cooling together with the wheel-end oil pump 101. The drive motor 104 may also be cooled when the heat dissipation fan 105 is operating. The relief valve 106 is an electromagnetic valve that controls the cooling flow rate of the cooling oil passage, and when there is no need to cool the drive motor 104, the relief valve 106 opens, allowing only a minimum flow rate of cooling oil (i.e., coolant) to flow to the drive motor 104, with the excess flowing back into the oil tank 107. When there is a need to cool the drive motor 104, the relief valve 106 closes, and all of the cooling oil exchanges heat with the outside via the cooling oil passage.

[0028] However, when a hybrid vehicle is in pure electric mode, if the drive motor stalls, the vehicle speed is low and the wheel end oil pump rotation speed is low, which means that the drive motor cannot provide enough coolant fluid to cool it, thereby reducing the drive motor's lifespan and causing it to burn out.

[0029] In light of this, for hybrid vehicles that do not employ an electric oil pump, the present disclosure provides a method, apparatus, and vehicle for cooling a stalled drive motor of the vehicle to solve the above-mentioned problems.

[0030] The following describes in detail the embodiments of the technical solutions of the present disclosure.

[0031] An embodiment of the present disclosure provides a method for cooling a stalled traction motor of a vehicle, the vehicle comprising: a traction motor, an engine, an engine-end oil pump, and a cooling channel, the engine being used to drive the operation of the engine-end oil pump, and the cooling channel connecting the engine-end oil pump and the traction motor, as shown in FIG. 2 , the method includes: The method includes S201, in which when the driving mode of the vehicle is in a pure electric mode, the vehicle satisfies a predetermined motor stall operating condition, and the current temperature of the driving motor is greater than an engine-assisted cooling start temperature, the engine of the vehicle is controlled to start, so that the engine-end oil pump of the vehicle drives the coolant liquid in the cooling channel to cool the driving motor.

[0032] By adopting the above method, when the vehicle is in pure electric mode, the vehicle meets the predetermined motor stall operating conditions, and the current temperature of the traction motor is greater than the engine-assisted cooling start temperature, the vehicle engine is controlled to start, causing the vehicle's engine-end oil pump to drive the coolant in the cooling channel to cool the traction motor. This method avoids the problem of the traction motor stalling in the pure electric mode, where the wheel-end oil pump's rotation speed is low and insufficient coolant is available to cool the traction motor, resulting in reduced service life and burnout of the traction motor.

[0033] To help those skilled in the art further understand the method for cooling a stalled drive motor of a vehicle according to the present disclosure, the above steps will now be described in detail with examples.

[0034] In one possible embodiment, the method further includes determining a first length of time for the temperature of the drive motor to reach a first predetermined temperature based on the temperature change rate of the drive motor and the current temperature of the drive motor, and decreasing the engine assisted cooling start-up temperature if the first length of time is less than or equal to the first predetermined length of time.

[0035] For example, decreasing the engine assist cooling start-up temperature when the first time length is equal to or less than the first predetermined time length may be: determining a target correction offset amount based on a temperature change rate of the drive motor and a predetermined relationship between the temperature change rate and the correction offset amount when the first time length is equal to or less than the first predetermined time length; and setting the difference between the first predetermined temperature and the target correction offset amount as the engine assist cooling start-up temperature.

[0036] Alternatively, decreasing the engine assist cooling start-up temperature when the first length of time is less than or equal to the first predetermined length of time can be equalizing the engine assist cooling start-up temperature to a second predetermined temperature when the first length of time is less than or equal to the first predetermined length of time, the second predetermined temperature being less than the first predetermined temperature.

[0037] The first predetermined temperature is the maximum allowable temperature of the drive motor, the second predetermined temperature is a safe start-up temperature when the drive motor is stalled, and the engine assist cool start-up temperature is equal to or less than the first predetermined temperature.

[0038] It should be understood that under normal circumstances, the engine-assisted cooling start temperature is usually set as the maximum allowable temperature of the drive motor. However, due to a certain response delay in the temperature sensor, if the temperature sensor detects that the current temperature of the drive motor is higher than the maximum allowable temperature, the actual temperature of the drive motor will be much higher than the maximum allowable temperature, which may result in the drive motor overheating and burning. Therefore, the engine-assisted cooling start temperature can be adjusted based on the current temperature change rate and the maximum allowable temperature of the drive motor. For example, by lowering the engine-assisted cooling start temperature, the engine can be started earlier to cool the drive motor, thereby ensuring that the drive motor always operates within a reasonable temperature range and avoiding overheating and burning of the drive motor due to the response delay of the temperature sensor.

[0039] For example, the predetermined relationship between the temperature change rate and the correction offset amount is determined by experiment and is shown in Table 1 below, where the temperature change rate is the temperature change rate of the driving motor every 3 seconds, and is obtained by rounding up or down.

[0040] [Table 1]

[0041] The engine assist cooling start temperature can be determined using the following formula: T=T0-A Here, T represents the engine assist cooling start temperature, T0 represents the maximum allowable temperature of the drive motor, and A represents the correction offset amount, which can be found in Table 1 based on the current temperature change rate detected by the temperature sensor.

[0042] Alternatively, based on the safe start-up temperature when the drive motor is stalled, if the first time period is equal to or shorter than the first predetermined time period, the engine-assisted cooling start-up temperature is set as the safe start-up temperature (second predetermined temperature). Thus, the engine is started early to cool the drive motor, ensuring that the drive motor always operates within a reasonable temperature range and preventing the drive motor from overheating due to a delayed response from the temperature sensor. Alternatively, a relationship curve between the current temperature change rate and the engine-assisted cooling start-up temperature can be determined through experimentation. In this relationship curve, when the current temperature change rate is 0, the engine-assisted cooling start-up temperature is equal to the maximum allowable temperature of the drive motor. The higher the current temperature change rate, the lower the engine-assisted cooling start-up temperature. Based on this relationship curve, the engine is started early to cool the drive motor, ensuring that the drive motor always operates within a reasonable temperature range and preventing the drive motor from overheating due to a delayed response from the temperature sensor.

[0043] Possibly, the method further includes the engine assist cold start temperature being equal to the first predetermined temperature if the first length of time is greater than the first predetermined length of time.

[0044] That is, if the time it takes for the temperature of the traction motor to reach the maximum allowable temperature is greater than the first predetermined time, indicating that the traction motor is not currently at risk of overheating and burning, it is not necessary to start the engine early to cool the traction motor, and the engine-assisted cooling start temperature can be set to the maximum allowable temperature. If the time it takes for the temperature of the traction motor to reach the maximum allowable temperature is less than the first predetermined time, indicating that the traction motor is currently at risk of overheating and burning, it is necessary to start the engine early to cool the traction motor. By lowering the engine-assisted cooling start temperature, the traction motor can always operate within a reasonable temperature range and avoid overheating and burning due to a delayed response of the temperature sensor. The safe start temperature can be 80°C, and the maximum allowable temperature can be 110°C, although these are specifically determined according to the physical characteristics of the traction motor and are not specifically limited thereto in the present disclosure. In a possible embodiment, the method further includes controlling the engine to stop operation after a second predetermined time if it is determined that the vehicle meets the predetermined motor stall termination condition and the current temperature of the traction motor is lower than the engine-assisted cooling stop temperature.

[0045] For example, if a vehicle meets a predetermined motor stall operating condition, the vehicle meets a predetermined cooling end condition, and the current temperature of the drive motor is greater than the engine-assisted cooling start temperature, the engine is immediately started to cool the drive motor to prevent overheating and burnout of the drive motor. If the vehicle subsequently meets the predetermined cooling end condition and the current temperature of the drive motor is determined to be less than the engine-assisted cooling stop temperature, i.e., if the drive motor no longer needs to be involved in engine cooling, the engine is turned off after a predetermined period of time to prevent frequent engine start-up and engine damage. This avoids restarting the engine to cool the drive motor when the vehicle state changes within a short period of time. The engine-assisted cooling stop temperature is determined according to the physical characteristics of the drive motor and may be, for example, 105°C. The predetermined period of time can be set empirically and may be, for example, 14 seconds, but this disclosure is not limited thereto.

[0046] In one embodiment, the method further includes controlling the engine rotation speed based on a current temperature of the traction motor, where the engine rotation speed and the current temperature of the traction motor are positively correlated. When the vehicle meets a predetermined motor stall operating condition and the flow rate through the cooling channel of the traction motor is greater than a first predetermined cooling flow rate, the vehicle's heat dissipation fan is controlled to operate at a maximum rotation speed to cool the traction motor.

[0047] Furthermore, the method further includes controlling the heat dissipation fan to stop operating when the vehicle meets a predetermined motor stall termination condition and the flow rate of the cooling passage through the traction motor is less than a second predetermined cooling flow rate, where the first predetermined cooling flow rate is greater than the second predetermined cooling flow rate.

[0048] The drive motor is cooled mainly by circulating coolant in the cooling flow path, which removes the heat generated by the drive motor while it is operating and exchanges it with the outside via the heat dissipation system.

[0049] For example, there is a positive correlation between the engine rotation speed and the current temperature of the traction motor. That is, the higher the current temperature of the traction motor, the faster the heat needs to be dissipated. Therefore, the engine rotation speed is controlled to be high, and the cooling flow rate driven by the engine-end oil pump is increased to absorb more heat. Furthermore, when the vehicle meets a predetermined motor stall operating condition and the flow rate of the cooling flow path through the traction motor is greater than the first predetermined cooling flow rate, the vehicle's heat dissipation fan is controlled to operate at the maximum rotation speed to allow the coolant to dissipate heat as quickly as possible and cool the traction motor.

[0050] However, when the vehicle meets a predetermined motor stall termination condition and the flow rate of the cooling passage through the drive motor is less than the second predetermined cooling flow rate, the heat dissipation fan is controlled to stop operating, thereby preventing the heat dissipation fan from constantly operating at maximum rotation speed, which would result in unnecessary energy consumption.

[0051] Here, the first predetermined cooling flow rate and the second predetermined cooling flow rate can be determined by experiment. For example, the first predetermined cooling flow rate may be 3 L, and the second predetermined cooling flow rate may be 1.5 L. The present disclosure does not specifically limit these, as long as it is ensured that the first predetermined cooling flow rate is greater than the second predetermined cooling flow rate.

[0052] In a possible embodiment, the start of the vehicle engine is controlled by the following method, the engine is controlled to output a predetermined rotation speed, and the vehicle's heat dissipation fan is controlled to operate at maximum rotation speed to cool the drive motor.

[0053] Furthermore, the method further includes determining that the vehicle meets a predetermined motor stall exit condition and determining that the current temperature of the drive motor is less than an engine-assisted cooling stop temperature, and controlling the heat dissipation fan to stop operating and controlling the engine to stop operating after a second predetermined length of time, or controlling the engine and the heat dissipation fan to stop operating after a second predetermined length of time.

[0054] That is, when the vehicle is in a pure electric mode, the vehicle satisfies a predetermined motor stall condition, and the current temperature of the traction motor is greater than the engine-assisted cooling start temperature, the engine is controlled to operate at a predetermined rotational speed to drive the engine-end oil pump, and the vehicle's heat dissipation fan is controlled to operate at its maximum rotational speed to cool the traction motor. The predetermined rotational speed is determined through experimentation to satisfy both heat dissipation and energy saving requirements so as to better cool the traction motor while satisfying both heat dissipation and energy saving requirements.

[0055] Furthermore, when the vehicle meets a predetermined motor stall termination condition and the current temperature of the drive motor is lower than the engine-assisted cooling stop temperature, the heat dissipation fan is controlled to stop operating, and the engine is controlled to stop operating after a second predetermined time period. Alternatively, when the vehicle meets a predetermined motor stall termination condition and the current temperature of the drive motor is lower than the engine-assisted cooling stop temperature, the engine and the heat dissipation fan can be controlled to stop operating after a second predetermined time period, thereby avoiding unnecessary energy consumption. The second predetermined time period can be set as needed, and the present disclosure is not limited thereto.

[0056] In a possible embodiment, the vehicle includes a relief valve for controlling the flow rate of the cooling flow path, and the method further includes, after starting the engine to cool the drive motor, requesting the vehicle's relief valve to be forced closed if the flow rate of the cooling flow path through the drive motor is greater than a third predetermined cooling flow rate.

[0057] For example, after starting the engine and cooling the drive motor, if the flow rate of the cooling passage through the drive motor is greater than a third predetermined cooling flow rate, the vehicle's relief valve is forced to close, allowing all the coolant to cool the drive motor through the vehicle's cooling passage and improving the cooling effect of the drive motor. Then, if the vehicle meets the predetermined motor stall termination condition or the flow rate of the cooling passage is less than the predetermined flow rate for opening the relief valve, the relief valve is forced to close, reducing unnecessary power energy.

[0058] Note that closing the relief valve requires power supply control, and the electrical resistance within the relief valve continues to generate heat. Therefore, if the relief valve is controlled to close immediately after the engine is started, i.e., when the flow rate of the cooling channel is low, the relief valve will rapidly heat up and burn out. Therefore, in an embodiment of the present disclosure, after the engine is started and the drive motor is cooled, the vehicle's relief valve is required to be forced to close, thereby avoiding burnout of the relief valve. Therefore, after the engine is started and the drive motor is cooled, the vehicle's relief valve can be controlled based on whether the flow rate of the cooling channel meets a predetermined requirement. For example, if the flow rate of the cooling channel is greater than 1.5 L, the relief valve is controlled to close. If the flow rate of the cooling channel is less than 3 L after the relief valve is closed, the relief valve is controlled to open. Specific settings can be made as needed, and the present disclosure is not limited thereto.

[0059] In a possible aspect, the predetermined motor stall activation condition includes the vehicle range being in a forward range or a reverse range, the torque of the drive motor being greater than or equal to a first predetermined torque, and the vehicle speed being less than or equal to the first predetermined vehicle speed, and the predetermined motor stall termination condition includes the vehicle range not being in a forward range or a reverse range, the torque of the drive motor being less than a second predetermined torque, and the vehicle speed being greater than one or more of the second predetermined vehicle speeds, wherein the first predetermined torque is greater than the second predetermined torque and the first predetermined vehicle speed is less than the second predetermined vehicle speed.

[0060] For example, the first predetermined torque, the first predetermined vehicle speed, and the first predetermined temperature are determined based on experiments and the physical characteristics of the vehicle. For example, the first predetermined torque may be 150 N·m, and the first predetermined vehicle speed may be 3 KM / h, but the present disclosure does not specifically limit these values. The second predetermined torque, the second predetermined vehicle speed, and the second predetermined temperature are determined based on experiments and the physical characteristics of the vehicle. For example, the second predetermined torque may be 10 N·m, and the second predetermined vehicle speed may be 5 KM / h, but the present disclosure does not specifically limit these values.

[0061] For example, when the vehicle is in a pure electric mode, if the vehicle is in a forward or reverse range, the torque of the drive motor is equal to or greater than a first predetermined torque, the current vehicle speed is equal to or less than the first predetermined vehicle speed, and the current temperature of the drive motor is greater than an engine-assisted cooling start temperature, the vehicle may determine that the vehicle's drive motor needs to be cooled in a stalled state and start the engine, causing the vehicle's engine-end oil pump to drive coolant in the cooling passage to cool the drive motor and prevent the drive motor from being shortened in lifespan or burnout. If the vehicle subsequently meets a predetermined motor stall termination condition, i.e., if the drive motor does not need to be involved in engine cooling, the engine may be turned off after a predetermined period of time to prevent frequent engine start-up and engine damage.

[0062] Furthermore, when the current vehicle speed is greater than the first predetermined vehicle speed and less than the second predetermined vehicle speed, or when the torque of the drive motor is less than the first predetermined torque and greater than the second predetermined torque, the engine is maintained in its current operating state, reducing the effect of vehicle speed fluctuations or torque fluctuations on the engine operating state and preventing the engine from being started frequently and causing losses to the engine.

[0063] In order to make it easier for those skilled in the art to understand the method according to the embodiment of the present disclosure, the steps of the method for cooling a stalled drive motor of a vehicle according to the embodiment of the present disclosure will be described in detail below. As shown in Figure 3, the method includes the following steps: In S301, it is determined that the driving mode of the vehicle is in a pure electric mode, and that the vehicle is in a predetermined motor stall operating condition and the current temperature of the driving motor is greater than the engine assist cooling start temperature. In S302, the vehicle engine is started. In S303, it is determined whether the flow rate in the cooling channel is greater than a first predetermined cooling flow rate.

[0064] Furthermore, if the flow rate of the cooling channel is greater than the first predetermined cooling flow rate, then step S304 is performed; otherwise, step S308 is performed. In S304, a request is made to operate the vehicle's heat dissipation fan at its maximum rotation speed. In S305, it is determined whether the flow rate in the cooling channel is greater than a third predetermined cooling flow rate.

[0065] Furthermore, if the flow rate of the cooling channel is greater than the third predetermined cooling flow rate, then execute step S306; otherwise, execute step S310.

[0066] In S306, a request is made to force the vehicle's relief valve to a closed state. In S307, it is determined whether the vehicle meets any predetermined motor stall termination condition and whether the flow rate in the cooling channel is less than a second predetermined cooling flow rate.

[0067] Furthermore, if the vehicle meets any predetermined motor stall termination condition and the cooling channel flow rate is less than the second predetermined cooling flow rate, then step S308 is executed; otherwise, step S304 is executed.

[0068] S308 requests that the vehicle's heat dissipation fan be stopped. In S309, it is determined whether the vehicle meets any predetermined motor stall exit conditions and whether the cooling channel flow rate is less than the start flow rate.

[0069] Furthermore, if the vehicle meets any predetermined motor stall exit condition or the cooling channel flow rate is less than the start flow rate, step S310 is executed; otherwise, step S306 is executed.

[0070] S310 requests that the vehicle's relief valves open. In S311, it is determined whether the vehicle meets any predetermined motor stall exit conditions and whether the current temperature of the traction motor is less than the engine assist cooling stop temperature.

[0071] Furthermore, if it is determined that the vehicle meets any predetermined motor stall termination condition and the current temperature of the traction motor is less than the engine assist cooling stop temperature, then step S312 is executed; otherwise, the engine is kept running. S312 shuts down the engine after a predetermined length of time.

[0072] By adopting the above method, when the vehicle is in pure electric mode and the traction motor stalls, the vehicle engine is started and the engine-end oil pump of the vehicle drives the coolant in the cooling channel to cool the traction motor, thereby avoiding the problem that the wheel-end oil pump's rotation speed is low due to the traction motor stall and the drive motor cannot provide enough coolant to cool the drive motor, which shortens the drive motor's lifespan and causes it to burn out.By controlling the heat dissipation fan and relief valve, heat exchange with the outside is accelerated, thereby improving the cooling effect of the drive motor.

[0073] Based on the same inventive concept, the present disclosure further provides an apparatus for cooling a stalled traction motor of a vehicle, the vehicle comprising a traction motor, an engine, an engine-end oil pump, and a cooling channel, the engine being used to drive the operation of the engine-end oil pump, and the cooling channel connecting the engine-end oil pump and the traction motor. As shown in FIG. 4, the apparatus 400 comprises: A controller 401 is provided for implementing the steps of the method for cooling a stalled drive motor of the vehicle.

[0074] Optionally, the controller 401 When the driving mode of the vehicle is in a pure electric mode, the vehicle satisfies a predetermined motor stall operating condition, and the current temperature of the driving motor is greater than an engine-assisted cooling start temperature, the engine of the vehicle is controlled to start, and the engine-end oil pump of the vehicle drives the coolant liquid in the cooling channel to cool the driving motor.

[0075] Optionally, the controller 401 further comprises: determining a first time length for the temperature of the driving motor to reach a first predetermined temperature based on the temperature change rate of the driving motor and the current temperature of the driving motor; and If the first length of time is less than or equal to a first predetermined length of time, the engine assist cooling start temperature is decreased.

[0076] Optionally, the controller 401 further comprises: If the first length of time is equal to or less than a first predetermined length of time, determining a target correction offset amount based on a temperature change rate of the drive motor and a predetermined relationship between the temperature change rate and the correction offset amount; and The difference between the first predetermined temperature and the target correction offset amount is used to set the engine assist cooling start temperature.

[0077] Optionally, the controller 401 further comprises: If the first length of time is less than or equal to a first predetermined length of time, the engine assist cooling start temperature is used to be equal to a second predetermined temperature, and the second predetermined temperature is less than the first predetermined temperature.

[0078] Optionally, the controller 401 further comprises: If the first length of time is greater than a first predetermined length of time, the engine assist cooling start temperature is used to equal the first predetermined temperature.

[0079] Optionally, the controller 401 further comprises: If the vehicle determines that a predetermined motor stall termination condition is met and the current temperature of the traction motor is less than an engine assist cooling stop temperature, the engine is controlled to stop operation after a second predetermined length of time.

[0080] Optionally, the first predetermined temperature is a maximum allowable temperature of the drive motor, the second predetermined temperature is a safe start-up temperature when the drive motor is stalled, and the engine assist cool start-up temperature is less than or equal to the first predetermined temperature.

[0081] Optionally, the controller 401 further comprises: Controlling the rotation speed of the engine based on the current temperature of the traction motor, wherein there is a positive correlation between the rotation speed of the engine and the current temperature of the traction motor; When the vehicle satisfies a predetermined motor stall operating condition and the flow rate of the cooling passage flowing through the drive motor is greater than a first predetermined cooling flow rate, the vehicle's heat dissipation fan is controlled to operate at its maximum rotational speed to cool the drive motor.

[0082] Optionally, the controller 401 further comprises: When the vehicle satisfies a predetermined motor stall termination condition and the flow rate of the cooling flow path through the traction motor is less than a second predetermined cooling flow rate, the cooling fan is controlled to stop operating; Here, the first predetermined cooling flow rate is greater than the second predetermined cooling flow rate.

[0083] Optionally, the controller 401 further comprises: Controlling the engine to output a predetermined rotational speed; and The cooling fan of the vehicle is controlled to operate at a maximum rotation speed, thereby cooling the drive motor.

[0084] Optionally, the controller 401 further comprises: determining that the vehicle meets a predetermined motor stall exit condition and that the current temperature of the traction motor is less than an engine assist cooling stop temperature; and The cooling fan is controlled to stop operation, and after a second predetermined time, the engine is controlled to stop operation, or after a second predetermined time, the engine and the cooling fan are controlled to stop operation.

[0085] Optionally, the predetermined motor stall operating conditions include the vehicle being in a forward range or a reverse range, the torque of the drive motor being equal to or greater than a first predetermined torque, and the vehicle speed being equal to or less than a first predetermined vehicle speed; the predetermined motor stall termination conditions include: the range of the vehicle is not a forward range or a reverse range; the torque of the drive motor is less than a second predetermined torque; and the vehicle speed is greater than one or more of the second predetermined vehicle speeds; Here, the first predetermined torque is greater than the second predetermined torque, and the first predetermined vehicle speed is less than the second predetermined vehicle speed.

[0086] Optionally, the vehicle includes a relief valve for controlling the flow rate of the cooling channel, and the controller 401 further includes: After starting the engine and cooling the drive motor, if the flow rate of the cooling passage flowing through the drive motor is greater than a third predetermined cooling flow rate, the relief valve of the vehicle is requested to be forced to close.

[0087] By adopting the above device, when the vehicle is in pure electric mode and the drive motor stalls, the vehicle engine is started to cool the drive motor, and the stalled drive motor causes the wheel end oil pump to rotate at a low speed, preventing it from providing enough coolant to cool the drive motor, which reduces the drive motor's lifespan and causes it to burn out.

[0088] Regarding the apparatus in the above embodiment, the specific manner in which each module performs the operation has been described in detail in the embodiment related to the method, and will not be described in detail here.

[0089] An embodiment of the present disclosure further provides a non-transitory computer-readable storage medium having a computer program stored thereon, the computer program, when executed by a processor, implementing steps of a method for cooling a stalled drive motor of a vehicle according to the above embodiment.

[0090] An embodiment of the present disclosure further provides a vehicle 500, which, referring to FIG. 5, includes a drive motor 501, an engine 502, an engine-end oil pump 503, a cooling channel 504, and a controller 505; The engine 502 is used to drive the engine end oil pump 503; The cooling passage 504 connects the engine end oil pump 503 and the drive motor 501; The controller 505 is used to implement the steps of the method for cooling a stalled drive motor of a vehicle according to the above embodiment.

[0091] An embodiment of the present disclosure further provides a vehicle, a memory in which a computer program is stored; a processor for executing the computer program in the memory so as to implement the steps of the method for cooling a drive motor according to the above embodiment.

[0092] Figure 6 is a block diagram illustrating another vehicle 600 according to an exemplary embodiment. Referring to Figure 6, the vehicle 600 comprises one or more processors 622 and a memory 632 for storing computer programs executable by the processor 622. The computer programs stored in the memory 632 may comprise one or more modules, each corresponding to a set of instructions. Note that the processor 622 may be configured to execute the computer programs to perform the method for cooling a drive motor described above.

[0093] The vehicle 600 may further include a power supply assembly 626 and a communication assembly 660. The power supply assembly 626 may be arranged to perform power management for the vehicle 600, and the communication assembly 660 may be arranged to realize communication, for example, wired or wireless communication, for the vehicle 600. The vehicle 600 may further include an input / output (I / O) interface 668. The vehicle 600 may operate an operating system, such as Windows Server™, Mac OS X™, Unix™, Linux™, etc., stored in the memory 632.

[0094] In another exemplary embodiment, a computer-readable storage medium including program instructions is further provided, which, when executed by a processor, implements the steps of the method for cooling a drive motor. For example, the non-transitory computer-readable storage medium may be memory 632 including the program instructions, which can be executed by processor 622 of vehicle 600 to complete the method for cooling a drive motor.

[0095] In another exemplary embodiment, a computer program product is further provided, the computer program product including a computer program executable by a programmable device, the computer program being used to execute code portions of a method for cooling a stalled drive motor of the vehicle when executed by the programmable device.

[0096] Although the preferred embodiments of the present disclosure have been described in detail above with reference to the drawings, the present disclosure is not limited to the specific details of the above embodiments, and within the technical concept of the present disclosure, the technical solutions of the present disclosure may be modified in a number of simple ways, and all of these simple modifications fall within the scope of protection of the present disclosure.

[0097] It should be noted that the specific technical features described in the above specific embodiments may be combined in any suitable manner if not contradictory, and in order to avoid unnecessary duplication, the present disclosure will not separately describe various possible combination methods.

[0098] It should be noted that various different embodiments of the present disclosure should be considered to be the same as the contents disclosed in the present disclosure, as long as they do not violate the spirit of the present disclosure. (CROSS-REFERENCE TO RELATED APPLICATIONS)

[0099] This application claims priority to a Chinese patent application bearing application number 202210188260.0 and entitled "Method, Apparatus and Vehicle for Cooling a Stalled Drive Motor of a Vehicle," filed with the China Patent Office on February 28, 2022, the entire contents of which are incorporated herein by reference.

Claims

1. A method for cooling a stalled drive motor of a vehicle (500), the vehicle (500) comprising a drive motor (501), an engine (502), an engine-end oil pump (503), and a cooling channel (504), the engine (502) being used to drive the operation of the engine-end oil pump (503), the cooling channel (504) connecting the engine-end oil pump (503) and the drive motor (501), the method comprising: A method for cooling a stalled drive motor of a vehicle, comprising: when the drive mode of the vehicle (500) is in a pure electric mode, the vehicle (500) satisfies a predetermined motor stall operating condition, and the current temperature of the drive motor is greater than an engine-assisted cooling start-up temperature, controlling the start-up of an engine (502) of the vehicle (500), and causing an engine-end oil pump (503) of the vehicle (500) to drive coolant liquid in the cooling flow path (504) to cool the drive motor (501).

2. The method comprises: determining a first time length for the temperature of the driving motor (501) to reach a first predetermined temperature based on the temperature change rate of the driving motor (501) and the current temperature of the driving motor (501); and 2. The method of claim 1, further comprising: decreasing the engine assisted cooled start-up temperature if the first length of time is less than or equal to a first predetermined length of time.

3. Decreasing the engine assist cooling start temperature when the first length of time is less than or equal to a first predetermined length of time includes: If the first time length is equal to or less than a first predetermined time length, determining a target correction offset amount based on a temperature change rate of the drive motor (501) and a predetermined relationship between the temperature change rate and the correction offset amount; and 3. The method of claim 2, further comprising: determining the engine assist cool start temperature as the difference between the first predetermined temperature and the target corrective offset amount.

4. Decreasing the engine assist cooling start temperature when the first length of time is less than or equal to a first predetermined length of time includes:

3. The method of claim 2, further comprising: if the first length of time is less than or equal to a first predetermined length of time, the engine assist cool start temperature is equal to a second predetermined temperature, the second predetermined temperature being less than the first predetermined temperature.

5. The method comprises:

5. The method of claim 2, further comprising: if the first length of time is greater than a first predetermined length of time, then the engine assisted cold start temperature is equal to the first predetermined temperature.

6. The method comprises:

5. The method of claim 2, further comprising controlling the engine to stop operation after a second predetermined length of time upon determining that the vehicle meets a predetermined motor stall exit condition and that the current temperature of the drive motor is less than an engine assist cooling stop temperature.

7. 5. The method of claim 4, wherein the first predetermined temperature is a maximum allowable temperature of the drive motor (501), the second predetermined temperature is a safe start-up temperature when the drive motor (501) is in a stalled condition, and the engine-assisted cooling start-up temperature is less than or equal to the first predetermined temperature.

8. The method comprises: Controlling the rotation speed of the engine (502) based on the current temperature of the drive motor (501), wherein there is a positive correlation between the rotation speed of the engine (502) and the current temperature of the drive motor (501); 2. The method of claim 1, further comprising: when the vehicle (500) satisfies a predetermined motor stall operating condition and the flow rate of the cooling flow path (504) flowing through the drive motor (501) is greater than a first predetermined cooling flow rate, controlling a heat dissipation fan of the vehicle (500) to operate at a maximum rotational speed to cool the drive motor (501).

9. The method comprises: The method further includes controlling the heat dissipation fan to stop operation when the vehicle (500) satisfies a predetermined motor stall termination condition and the flow rate of the cooling flow path (504) flowing through the drive motor (501) is less than a second predetermined cooling flow rate; 9. The method of claim 8, wherein the first predetermined cooling flow rate is greater than the second predetermined cooling flow rate.

10. Controlling the start of the engine (502) of the vehicle (500) comprises: controlling the engine (502) to output a predetermined rotational speed; and 2. The method of claim 1, further comprising controlling a heat dissipation fan of the vehicle (500) to operate at maximum rotational speed to cool the drive motor (501).

11. The method comprises: determining that the vehicle (500) meets a predetermined motor stall exit condition and that the current temperature of the drive motor (501) is less than an engine assist cooling shutdown temperature; and 11. The method of claim 10, further comprising: controlling the heat dissipation fan to stop operating and controlling the engine (502) to stop operating after a second predetermined amount of time; or controlling the engine (502) and the heat dissipation fan to stop operating after a second predetermined amount of time.

12. The predetermined motor stall operating conditions include that the range of the vehicle (500) is in a forward range or a reverse range, that the torque of the drive motor (501) is equal to or greater than a first predetermined torque, and that the vehicle speed of the vehicle (500) is equal to or less than a first predetermined vehicle speed. The predetermined motor stall termination conditions include the vehicle being in a range other than a forward range or a reverse range, the torque of the drive motor being less than a second predetermined torque, and the vehicle speed being greater than one or more of the second predetermined vehicle speeds; 7. The method of claim 6, wherein the first predetermined torque is greater than the second predetermined torque and the first predetermined vehicle speed is less than the second predetermined vehicle speed.

13. The vehicle (500) includes a relief valve, the relief valve being used to control the flow rate of the cooling channel (504), and the method includes:

2. The method of claim 1, further comprising: after starting the engine to cool the drive motor, if the flow rate of the cooling flow path through the drive motor is greater than a third predetermined cooling flow rate, requesting a relief valve of the vehicle to be forced closed.

14. An apparatus for cooling a stalled drive motor of a vehicle, the vehicle (500) comprising a drive motor (501), an engine (502), an engine-end oil pump (503), and a cooling channel (504), the engine (502) being used to drive the operation of the engine-end oil pump (503), the cooling channel (504) connecting the engine-end oil pump (503) and the drive motor (501), the apparatus comprising:

5. An apparatus for cooling a stalled drive motor of a vehicle, comprising a controller (505) for implementing the steps of the method for cooling a stalled drive motor of a vehicle according to any one of claims 1 to 4.

15. 5. A non-transitory computer-readable storage medium having a computer program stored thereon, the computer program implementing the steps of the method for cooling a stalled drive motor of a vehicle according to any one of claims 1 to 4 when the program is executed by a processor.

16. A vehicle (500) comprising a drive motor (501), an engine (502), an engine-end oil pump (503), a cooling channel (504), and a controller (505); The engine (502) is used to drive the operation of the engine-end oil pump (503); The cooling passage (504) connects the engine-end oil pump (503) and the drive motor (501); A vehicle (500) characterized in that the controller (505) is used to implement the steps of the method for cooling a stalled drive motor of a vehicle according to any one of claims 1 to 4.

Citation Information

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