electric vehicles

The electric vehicle stabilizes behavior on low μ roads by adjusting rear wheel torque based on yaw rate and slip ratios, addressing instability from wheel slippage during transitions from deep snow.

JP7724102B2Active Publication Date: 2025-08-15SUBARU CORP
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Patent Information

Application Number
JP2021134502
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-08-20
Publication Date
2025-08-15
Estimated Expiration
2041-08-20

AI Technical Summary

Technical Problem

Electric vehicles experience significant disturbances in behavior when transitioning from deep snowy roads to low μ roads due to wheel slippage, leading to rear wheel sway and instability.

Method used

An electric vehicle equipped with a yaw rate sensor and control unit that adjusts the torque of left and right rear wheels based on yaw rate measurements to stabilize vehicle behavior on low μ roads, using GPS and wheel speed sensors to manage slip ratios.

Benefits of technology

Stabilizes vehicle behavior by suppressing rear wheel sway and maintaining straight-ahead motion on low μ roads, ensuring stable vehicle control during transitions from deep snow to low friction surfaces.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide an electric vehicle that can suppress vehicle behavior from being disturbed when the vehicle enters a low μ road in a state where wheels are slipped.SOLUTION: An electric vehicle 10 comprises a yaw rate sensor 22 that measures a yaw rate γ of a vehicle body, and a control part 20 that controls respective torque Ta and Tb of left and right rear wheels 15A and 15B directly connected to a motor 14. The control part 20, when a mode in which the left and right rear wheels 15A and 15B are permitted to slip is selected as a travelling mode of the vehicle, controls the torque Ta and Tb of the left and right rear wheels 15A and 15B so that either of both torque is suppressed, on the basis of the yaw rate γ measured by the yaw rate sensor 22.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to electric vehicles. [Background technology]

[0002] In recent years, electric vehicles have been developed that have a function that allows the driver to select how to intentionally rotate the wheels at high speed to slip and plow away snow when driving in deep snow, etc., in order to escape from the snow, etc. (see, for example, Non-Patent Document 1, etc.). In the present invention, an electric vehicle refers to a vehicle that can run by driving the wheels with a motor, but may also be equipped with a prime mover such as an engine in addition to the motor. [Prior art documents] [Non-patent literature]

[0003] [Non-Patent Document 1] "MODEL 3 Owner's Manual Software Version: 2021.12.25 Japan", [online], TESLA, published on July 9, 2021, p. 61, [searched on August 19, 2021], Internet<URL:https: / / www.tesla.com / sites / default / files / model_3_owners_manual_asia_jp.pdf> Summary of the Invention [Problem to be solved by the invention]

[0004] However, for example, on such deep snowy road surfaces, there are often packed snow roads or frozen road surfaces (hereinafter referred to as low μ roads (road surfaces with a low friction coefficient μ)) that are continuous with the deep snowy road surface. For example, as shown in Figure 11, when a vehicle 100 escapes deep snow α by rotating its wheels at high speed and then enters a low μ road β, skidding may occur and the rear wheels of the vehicle 100 may sway left and right (to the right in Figure 11).

[0005] Then, when the driver steers to correct the posture of the vehicle body 100 (turning the steering wheel to the right in the case of FIG. 11), the rear wheel side of the vehicle body 100 then swings significantly in the opposite direction (to the left in the case of FIG. 11). Thus, even if the snow plowing function described above successfully allows the vehicle to escape from deep snow, the vehicle's behavior may be significantly disrupted thereafter.

[0006] The present invention has been made in consideration of the above points, and aims to provide an electric vehicle that can suppress disturbances in vehicle behavior when entering a low μ road with wheels slipping. [Means for solving the problem]

[0007] In order to solve the above problem, one embodiment of the present invention is an electric vehicle comprising: a yaw rate sensor that measures the yaw rate of the vehicle body; a control unit that controls torque of each of the left and right rear wheels that are directly connected to the motor; Equipped with When a mode that allows the left and right rear wheels to slip is selected as the vehicle's driving mode, the control unit controls to suppress the torque of either the left or right rear wheel based on the yaw rate measured by the yaw rate sensor.

[0008] Furthermore, it is preferable that the vehicle further includes a steering angle sensor that measures a steering angle, and when the yaw rate measured by the yaw rate sensor and the yaw rate calculated based on the steering angle measured by the steering angle sensor differ by more than a threshold value, the control unit controls to suppress the torque of either the left or right rear wheel so that the difference between the yaw rate measured by the yaw rate sensor and the calculated yaw rate becomes less than the threshold value. It is also preferable that the vehicle further comprises a GPS receiver that receives GPS signals including vehicle body position information from GPS satellites, and wheel speed sensors that measure the wheel speed of each wheel, and the control unit controls to suppress the torque of either the left or right rear wheel so that the slip ratio calculated based on the wheel speeds of the left and right rear wheels measured by the wheel speed sensors and the vehicle body speed calculated from the vehicle body position information received by the GPS receiver becomes 10%. [Effects of the Invention]

[0009] According to the present invention, it is possible to suppress the disturbance of vehicle behavior when an electric vehicle enters a low μ road with a slipping wheel. [Brief explanation of the drawings]

[0010] [Figure 1] 1 is a diagram illustrating an example of the configuration of an electric vehicle according to an embodiment of the present invention. [Figure 2] 10A and 10B are diagrams illustrating examples of how torque of the left and right rear wheels is controlled. [Figure 3] 10A and 10B are diagrams illustrating an example of changes over time in the wheel speeds of the left and right rear wheels and the vehicle speed. [Figure 4] FIG. 10 is a diagram illustrating an example of a change in the yaw rate of a vehicle body over time. [Figure 5] 10A and 10B are diagrams showing examples of how to control the torque of the left and right rear wheels, and are diagrams showing examples of control to suppress the torque of the left rear wheel. [Figure 6] 6 is a diagram showing an example of changes over time in the wheel speeds of the left and right rear wheels and the vehicle speed when the torque of the left and right rear wheels is controlled as shown in FIG. 5. [Figure 7] 6 is a diagram showing an example of the change over time in the yaw rate of the vehicle body when the torque of the left and right rear wheels is controlled as shown in FIG. 5. [Figure 8] FIG. 10 is an image diagram illustrating a state in which the rear wheel side of the vehicle body swings to the right and then the vehicle body returns to a state in which it moves straight. [Figure 9] FIG. 10 is a diagram illustrating the relationship between the slip ratio and the grip force (vertical grip and lateral grip) of the wheels. [Figure 10] 4 is a flowchart showing an example of the control configuration in a control unit of the electric vehicle according to the present embodiment. [Figure 11] FIG. 10 is an image diagram illustrating a state in which the rear wheel side of the vehicle body swings left and right. DETAILED DESCRIPTION OF THE INVENTION

[0011] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS An electric vehicle according to an embodiment of the present invention will now be described with reference to the drawings. In the following, the electric vehicle will be described as a narrowly defined electric vehicle that uses a battery as its power source and does not have any other prime mover such as an engine, but it may also have a prime mover other than a motor. In addition, in the following, the electric vehicle will be described as a vehicle in which a motor is provided for each wheel, but it may also be a vehicle in which a motor is provided for only the left and right rear wheels.

[0012] 1 is a diagram showing an example of the configuration of an electric vehicle according to this embodiment. In this embodiment, an electric vehicle 10 is configured to include a battery 12, an inverter 13, a motor 14, wheels 15, and a control unit 20. Hereinafter, the right rear wheel will be referred to as rear wheel 15A, and the left rear wheel will be referred to as rear wheel 15B. In this embodiment, the battery 12 supplies DC power of a predetermined power value to the inverter 13 via the power line 16 under the control of the control unit 20 .

[0013] The inverter 13 converts DC power supplied from the battery 12 into AC power under the control of the control unit 20. The inverter 13 and the motor 14 are connected by wiring 17 such as a three-phase line, and the inverter 13 supplies AC power to the motor 14 via the wiring 17. Wheels 15 are directly connected to motor 14 via gears (not shown). In this embodiment, one drive system 11 is formed by connecting inverter 13 and motor 14 with wiring 17 and directly connecting wheels 15 to motor 14.

[0014] 1, in this embodiment, one battery 12 (power source) is provided for each of the four drive systems 11 (front, rear, left, and right), and the battery 12 and inverter 13 for each drive system 11 are connected by a power line 16. However, it is also possible to configure the battery 12 (power source) to supply power to multiple inverters 13. Furthermore, FIG. 1 shows a case where the battery 12 and the inverter 13 are connected by two power lines 16, and the inverter 13 and the motor 14 are connected by three wires 17, but the number of power lines 16 and wires 17 is not limited to these.

[0015] The control unit 20 is composed of one ECU (Electronic Control Unit) or a plurality of ECUs that operate in cooperation with each other. The control unit 20 controls the battery 12 and controls the power value of the DC power supplied to the inverter 13 by causing a CPU (Central Processing Unit) of the ECU to execute a control program.

[0016] Furthermore, the control unit 20 controls the torque generated by the motor 14 by controlling the inverter 13, for example, by transmitting a PWM (pulse width modulation) signal to the inverter 13. In this embodiment, the control unit 20 controls the torque T of each of the wheels 15 including the left and right rear wheels 15A, 15B in this manner.

[0017] The control unit 20 is also connected to a steering angle sensor 21 that measures the steering angle θ of a steering wheel (not shown) and a yaw rate sensor 22 that measures the yaw rate γ of the vehicle body. The control unit 20 is also connected to wheel speed sensors 24 that measure the wheel speed v of each wheel 15. The control unit 20 is also connected to necessary sensors such as an accelerator position sensor, a brake sensor, and an acceleration sensor.

[0018] The control unit 20 is also connected to a GPS (Global Positioning System) receiver 23 that receives GPS signals containing vehicle body position information from GPS satellites (not shown). The control unit 20 controls the battery 12 and the inverter 13 in accordance with signals and information input from the steering angle sensor 21, the yaw rate sensor 22, the GPS receiver 22, etc., thereby controlling each drive system 11 including the motor 14.

[0019] Furthermore, the control unit 20 calculates the vehicle speed V based on the vehicle position information received by the GPS receiver 23. Specifically, for example, the control unit 20 calculates the difference in the position information to calculate the amount of movement of the vehicle each time the GPS receiver 23 receives position information from a GPS satellite, and divides this by the sampling period of the GPS receiver 23 to calculate the vehicle speed V. Although the position information in the GPS signal may contain a relatively large error, by calculating the difference in the position information as described above, the error in the position information is offset, making it possible to eliminate the influence of the error in the position information from the calculated vehicle speed V.

[0020] On the other hand, in this embodiment, the electric vehicle 10 has vehicle driving modes such as a first driving mode which is a normal driving mode, and a second driving mode which allows the left and right rear wheels 15A, 15B to slip in order to escape from deep snow, etc. The driver can then select an appropriate driving mode from among the various driving modes.

[0021] When the second driving mode is selected as the driving mode of the vehicle, the control unit 20 controls and changes the torques Ta and Tb of the left and right rear wheels 15A and 15B, respectively, as illustrated in Figure 2, depending on the amount of depression of the accelerator pedal by the driver. 3, the wheel speeds va, vb of the left and right rear wheels 15A, 15B measured by the wheel speed sensors 24 are both greater than the vehicle speed V calculated from the vehicle position information received by the GPS receiver 23, as described above. In other words, the left and right rear wheels 15A, 15B are in a slipping state.

[0022] In this embodiment, when the second driving mode is selected by the driver, the control unit 20 intentionally rotates the left and right rear wheels 15A, 15B at high speed, causing them to slip and plow through snow, etc., in order to escape from deep snow, etc. However, if the system is simply configured in this way, as mentioned above, for example, if there is a continuous low μ road on a deep snowy road surface, when the vehicle escapes the deep snow and enters the low μ road, the rear wheels of the vehicle body may sway from side to side, as shown in Figure 11, causing significant disruption to the vehicle's behavior.

[0023] Therefore, in this embodiment, the control unit 20 is configured as follows to prevent the vehicle behavior from becoming unstable when the wheels 15 (especially the rear wheels 15A, 15B) are slipping and the vehicle enters a low μ road. The following describes the control configuration and the like for suppressing disturbances in the vehicle behavior in the control unit 20 of the electric vehicle 10 according to this embodiment. The operation of the electric vehicle 10 according to this embodiment will also be described.

[0024] As described above, when the second driving mode, i.e., the mode that allows the left and right rear wheels 15A, 15B to slip, is selected as the driving mode of the vehicle, and the vehicle enters a low μ road after escaping from deep snow, the rear wheels of the vehicle body may sway from side to side. This phenomenon may occur due to steering by the driver, or may occur even without the driver operating the steering wheel due to a difference in the friction coefficient μ between the left and right rear wheels 15A, 15B.

[0025] When the rear wheels of the vehicle body are swaying left or right, the yaw rate γ of the vehicle body changes over time in the positive or negative direction, as shown in Fig. 4. Information on the yaw rate γ of the vehicle body can be used to determine whether the rear wheels 15A, 15B of the vehicle body are swaying left or right. Therefore, in this embodiment, when the second driving mode is selected as the vehicle driving mode, the control unit 20 performs control to suppress left and right sway of the rear wheels of the vehicle body based on the yaw rate γ of the vehicle body measured by the yaw rate sensor 22.

[0026] In this case, the control unit 20 controls the torques Ta and Tb of the left and right rear wheels 15A and 15B to be suppressed based on the yaw rate γ, as shown in FIG. In the example of Figure 5, the torque Tb of the left rear wheel 15B is suppressed, which represents the control when the rear wheel side of the vehicle first swings to the right after leaving deep snow α and entering a low μ road β, as illustrated in Figure 11.

[0027] To explain this in more detail using the example of Figure 5, as described above, when the rear wheel side of the vehicle body swings to the right, by suppressing the torque Tb of the left rear wheel 15B of the vehicle body, the wheel speed vb of the left rear wheel 15B decreases and approaches the vehicle speed V, as illustrated in Figure 6. As a result, the degree of slippage of the left rear wheel 15B decreases, and the grip force (particularly the lateral grip, which will be described later) recovers and increases, thereby suppressing the rear wheel side of the vehicle body from swinging to the right.

[0028] Therefore, by performing such control, when the rear wheels of the vehicle sway to the right after escaping deep snow α and entering a low μ road β as described above, the torque Tb of the rear wheel 15B on the left side of the vehicle is suppressed, thereby suppressing the sway of the rear wheels of the vehicle to the right. Therefore, as shown in FIG. 7, the yaw rate γ occurring in the vehicle body 10 changes over time in a direction returning to 0, and the vehicle body 10 returns to a state in which it moves straight ahead.

[0029] Then, when this state occurs, i.e., when the yaw rate γ returns to 0, if the suppression of the torque Tb of the left rear wheel 15B is released as illustrated in Figure 5, the wheel speed vb of the left rear wheel 15B increases as illustrated in Figure 6, and the vehicle returns to its original high rotation state (i.e., slipping state). Therefore, as illustrated in Figure 8, the vehicle body 10 returns to a state in which it moves straight (i.e., a state in which the rear wheels of the vehicle body 10 do not sway left or right), and the vehicle can return to a state in which it attempts to escape from the low μ road β by rotating the left and right rear wheels 15A, 15B at high speed and causing them to slip.

[0030] As described above, with the electric vehicle 10 according to this embodiment, when the left and right rear wheels 15A, 15B are slipping when the vehicle enters a low μ road β, even if the rear wheels of the vehicle body 10 sway to the right or left, the vehicle body can be returned to a straight-ahead state. Therefore, it is possible to suppress the vehicle behavior from becoming unstable when the vehicle enters the low μ road β with the wheels slipping.

[0031] As mentioned above, the phenomenon of the rear wheels of the vehicle body swaying left and right on a low μ road or the like may occur due to steering by the driver. However, if the yaw rate γ of the vehicle body is generated according to the steering direction and the rear wheels of the vehicle body are swinging to the right or left, it is better to allow the yaw rate γ to be generated according to the steering direction, and it is better not to perform control to suppress the swinging of the rear wheels of the vehicle body to the left or right as described above.

[0032] Therefore, in this embodiment, the control unit 20 of the electric vehicle 10 has in advance a calculation formula (which may be a table or the like) for estimating the yaw rate γ generated in the vehicle body when the steering angle is θ. Hereinafter, the yaw rate γ calculated based on the steering angle θ in this way will be referred to as yaw rate γ0. Then, the control unit 20 calculates the difference between the yaw rate γ measured by the yaw rate sensor 22 and the yaw rate γ0 calculated based on the steering angle θ of the steering wheel measured by the steering angle sensor.

[0033] The control unit 20 is configured to perform the control according to this embodiment, i.e., the control of suppressing the torque of either the left or right rear wheel 15A, 15B (see FIG. 5), when the absolute value of the calculated difference is greater than or equal to the threshold value γth. In this case, if the absolute value of the difference between the yaw rate γ measured by the yaw rate sensor 22 and the calculated yaw rate γ0 is less than the threshold value γth, it is considered that a yaw rate is occurring in response to the driver's steering, and therefore the above control is not performed.

[0034] Furthermore, when performing the above control, the control unit 20 is configured to control the torque of either the left or right rear wheel 15A, 15B to be suppressed so that the difference between the yaw rate γ measured by the yaw rate sensor 22 and the calculated yaw rate γ0 is less than the threshold value γth. With this configuration, it is possible to restore the behavior of the vehicle, which has begun to sway left and right on the rear wheels of the vehicle body on a low μ road or the like, to a behavior that follows the steering of the driver. Therefore, although Figure 7 illustrates an example in which the yaw rate γ occurring in the vehicle body 10 returns to 0, when the driver turns the steering wheel to the right or left, the value of the yaw rate γ of the vehicle body approaches the yaw rate γ0 in accordance with the steering of the driver.

[0035] On the other hand, for example, as shown in Figure 5, by reducing the wheel speed vb of the left rear wheel 15B of the vehicle body and bringing it closer to the vehicle body speed V, the grip force of the left rear wheel 15B is restored and increased. This will be considered in more detail below. Here, the slip ratio s of the rear wheels (wheels) is Slip ratio s = (wheel speed v - vehicle speed V) / vehicle speed V × 100% ... (1) It is defined as:

[0036] That is, the slip ratio s is calculated based on the wheel speeds v (i.e., va, vb) of the left and right rear wheels 15A, 15B measured by the wheel speed sensor 24 (see Figure 1) and the vehicle speed V calculated from the vehicle position information received by the GPS receiver 23. When the wheel speed v is equal to the vehicle speed V, the slip ratio s is 0%. When the wheel is slipping and the wheel speed v is very large compared to the vehicle speed V, the slip ratio s may exceed 100%.

[0037] The relationship between the slip ratio s and the gripping force g of the wheels is as shown in FIG. In the figure, g1 represents the grip force acting on the wheel in the direction of travel of the vehicle, hereafter referred to as vertical grip g1. Also, g2 represents the grip force acting on the wheel in the left-right direction of the vehicle, hereafter referred to as horizontal grip g2.

[0038] As can be seen from FIG. 9, the vertical grip g1 is 0 when the slip ratio s is 0%, and increases as the slip ratio s increases. When the slip ratio s exceeds a certain value, the vertical grip g1 becomes almost constant (or gradually decreases as the slip ratio s increases).

[0039] In contrast, lateral grip g2 is at its maximum when slip ratio s is 0%, and decreases as slip ratio s increases. Once slip ratio s exceeds a certain value, lateral grip g2 gradually decreases as slip ratio s increases, approaching 0. Therefore, when rear wheels 15A, 15B are slipping (slip ratio s>>0) as described above, lateral grip g2 becomes very small, causing the rear wheel side of the vehicle body to sway from side to side.

[0040] For example, when the slip ratio s is equal to or close to the slip ratio S corresponding to the intersection of the vertical grip g1 and the lateral grip g2 on the graph in FIG. 9, both the vertical grip g1 and the lateral grip g2 become relatively large. In this case, the lateral grip g2 is relatively large, so the rear wheel side of the vehicle is prevented from swinging left and right. Also, the vertical grip g1 is relatively large, so the vehicle is maintained in a forward motion state.

[0041] Therefore, when the control unit 20 controls to suppress either the torque Ta or Tb of the left or right rear wheels 15A, 15B as described above, it is desirable to configure the control unit 20 to control so that the slip ratio s calculated according to (1) above becomes a value close to the slip ratio S. The slip ratio S, i.e., the slip ratio s at which both the longitudinal grip g1 and the lateral grip g2 become large, can vary depending on the material and width of the tire that constitutes the wheel, the shape of the grooves on the surface, and so on.

[0042] However, the inventor's research has shown that in either case, the slip ratio S is approximately 10%, that is, if the slip ratio s is 10%, both the longitudinal grip g1 and the lateral grip g2 of the wheels will be satisfactorily large values. Therefore, when controlling as described above, the control unit 20 is preferably configured to control so as to suppress the torque of either the left or right rear wheel so that the slip ratio s calculated according to (1) above becomes 10%.

[0043] To summarize the above, the control in the control unit 20 of the electric vehicle 10 according to this embodiment can be configured, for example, as follows. The following description will be given with reference to the flowchart shown in FIG.

[0044] Regardless of which driving mode is selected for the vehicle, the control unit 20 always performs processing to calculate the yaw rate γ0 generated in the vehicle body based on the steering angle θ of the steering wheel transmitted from the steering angle sensor 21. The torque T of each wheel 15 is then controlled as necessary by comparing this with the yaw rate γ of the vehicle body transmitted from the yaw rate sensor 22 so that the yaw rate γ of the vehicle body becomes the yaw rate γ0 corresponding to the steering angle θ of the steering wheel.

[0045] In addition, the control unit 20 is configured to constantly collect information on the wheel speed v of each wheel 15 from the wheel speed sensor 24 of each wheel 15, obtain vehicle body position information from the GPS receiver 23, and otherwise acquire necessary information from various sensors, etc. The control unit 20 is configured to perform necessary control in accordance with the acquired information.

[0046] When the driver selects the second driving mode described above, i.e., a driving mode that allows the left and right rear wheels 15A, 15B to slip in order to escape from deep snow, etc. (step S1; YES), the control unit 20 starts the control according to this embodiment (step S2). That is, the control unit 20 first changes the torques Ta and Tb of the left and right rear wheels 15A and 15B, respectively, in accordance with the amount of depression of the accelerator pedal by the driver, causing the left and right rear wheels 15A and 15B to rotate at high speeds, which causes the left and right rear wheels 15A and 15B to slip.

[0047] Subsequently, the control unit 20 estimates the yaw rate γ0 occurring in the vehicle body based on the steering angle θ of the steering wheel transmitted from the steering angle sensor 21 as described above.

[0048] Then, the control unit 20 determines whether the yaw rate γ measured by the yaw rate sensor 22 and the calculated yaw rate γ0 are equal to or greater than the threshold value γth, that is, whether the absolute value of the difference between the yaw rates γ and γ0 is equal to or greater than the threshold value γth (step S3). If the measured yaw rate γ and the calculated yaw rate γ0 are less than the threshold value γth (step S3; NO), the current control is continued, i.e., the control of rotating the left and right rear wheels 15A, 15B at high speed according to the depression amount of the accelerator pedal is continued (step S4).

[0049] On the other hand, if the measured yaw rate γ and the calculated yaw rate γ0 are equal to or greater than the threshold value γth (step S3; YES), the control unit 20 determines which of the torques Ta, Tb of the left and right rear wheels 15A, 15B should be controlled to be suppressed (step S5). That is, it is determined that the torque Ta of the right rear wheel 15A is controlled to be reduced when the rear wheel side of the vehicle body is turned to the left, and the torque Tb of the left rear wheel 15B is controlled to be reduced when the rear wheel side of the vehicle body is turned to the right.

[0050] Next, the control unit 20 suppresses the torque T of the rear wheel 15 on the determined side so that the slip ratio s of the rear wheel 15 on the determined side becomes 10% (step S6). Then, the control unit 20 continues the above control as long as the difference between the yaw rate γ measured by the yaw rate sensor 22 and the yaw rate γ0 calculated based on the steering angle θ measured by the steering angle sensor 21 is greater than or equal to the threshold value γth (step S3; YES).

[0051] When the difference between the yaw rate γ measured by the yaw rate sensor 22 and the calculated yaw rate γ0 becomes less than the threshold value γth (step S3; NO), the control unit 20 stops the control to suppress the torque Ta, Tb of either the left or right rear wheel 15A, 15B. Then, the control method is returned to a control in which the torques Ta and Tb of the left and right rear wheels 15A and 15B are changed respectively in accordance with the amount of depression of the accelerator pedal by the driver, thereby causing the left and right rear wheels 15A and 15B to rotate at high speeds, and the left and right rear wheels 15A and 15B return to a slip state.

[0052] The control unit 20 continues to perform the above control while the driver selects the second driving mode (step S1; YES). If the driver selects a driving mode other than the second driving mode (step S1; NO), the control of the second driving mode is terminated, and the control method is changed to control corresponding to the selected driving mode (step S7).

[0053] It goes without saying that the present invention is not limited to the above-described embodiments, and can be modified as appropriate without departing from the spirit of the present invention. [Explanation of symbols]

[0054] 10. Electric vehicles 14 Motor 15, 15A, 15B rear wheel 20 Control Unit 21 Steering angle sensor 22 Yaw rate sensor 23 GPS receiver 24 Wheel speed sensor s slip ratio T, Ta, Tb torque V Vehicle speed v, va, vb wheel speed γ Yaw rate: The yaw rate measured by the yaw rate sensor γ0 Yaw rate calculated based on steering angle γth threshold θ Steering angle

Claims

1. a yaw rate sensor that measures the yaw rate of the vehicle body; a control unit that controls the torque of each of the left and right rear wheels that are directly connected to the motor; Equipped with The control unit controls the torque of one of the left and right rear wheels to be suppressed based on the yaw rate measured by the yaw rate sensor when a mode that allows the left and right rear wheels to slip is selected as the vehicle's driving mode.

2. Furthermore, it is equipped with a steering angle sensor that measures the steering angle, 2. The electric vehicle according to claim 1, wherein, when the yaw rate measured by the yaw rate sensor and the yaw rate calculated based on the steering angle measured by the steering angle sensor differ by an amount equal to or greater than a threshold value, the control unit controls to suppress torque of one of the left and right rear wheels so that the difference between the yaw rate measured by the yaw rate sensor and the calculated yaw rate becomes less than the threshold value.

3. moreover, a GPS receiver that receives GPS signals including vehicle position information from GPS satellites; a wheel speed sensor for measuring the wheel speed of each wheel; Equipped with 3. The electric vehicle according to claim 1, wherein the control unit controls the torque of either the left or right rear wheel to be suppressed so that a slip ratio calculated based on the wheel speeds of the left and right rear wheels measured by the wheel speed sensors and the vehicle speed calculated from vehicle position information received by the GPS receiver becomes 10%.

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