Vehicle control method and vehicle
The vehicle control method addresses motoring noise discomfort by implementing friction brake compensation modes based on battery voltage and SOC to manage regenerative power, enhancing vehicle operation and occupant comfort.
Patent Information
- Application Number
- JP2024515759
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-04-18
- Publication Date
- 2025-12-23
- Estimated Expiration
- 2042-04-18
AI Technical Summary
Motoring noise generated by motoring the engine with a generator can cause discomfort to vehicle occupants, particularly during unexpected motoring to prevent battery overcharging.
A vehicle control method that includes a first mode with friction brake compensation during accelerator-off regeneration and a second mode without such compensation, differentiated by battery voltage limits and SOC, to manage regenerative power and reduce motoring noise.
The method effectively alleviates motoring noise discomfort by managing regenerative power and battery charging, ensuring smooth vehicle operation and occupant comfort.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a vehicle control method and a vehicle. [Background technology]
[0002] JP5712999B discloses the following technology related to suppressing overcharging by consuming battery power and forcibly rotating the engine with a motor together with regenerative braking: When the regenerative power of the motor exceeds the maximum charging power during priority motor driving, the technology limits the rotation of the stopped engine more than when the generated power is not exceeded, and regeneratively drives the motor within the range of the maximum charging power. Summary of the Invention
[0003] Motoring the engine with a generator generates noise, and motoring is performed unexpectedly to prevent the battery from overcharging, etc. As a result, motoring noise, i.e., noise generated by motoring, may cause discomfort to the occupants.
[0004] The present invention has been made in view of the above-mentioned problems, and has as its object to alleviate the discomfort that motoring noise can cause to occupants. [Means for solving the problem]
[0005] In one embodiment of the present invention, the vehicle has a first mode in which braking force compensation is performed by the friction brake during accelerator-off regeneration, which is regeneration by the drive motor with no accelerator operation, and a second mode in which braking force compensation is not performed by the friction brake during accelerator-off regeneration. The vehicle control method includes limiting input to the battery, and differentiating the battery voltage at which input power to the battery becomes zero due to the input limit or the physical property value of the battery that affects the voltage between the first mode and the second mode. The physical property value also includes the SOC of the battery, and when the first mode is selected, the input limit is started and the regeneration of the drive motor is stopped at a lower SOC than when the second mode is selected.
[0006] According to another aspect of the present invention, there is provided a vehicle control device corresponding to the above vehicle control method. [Brief explanation of the drawings]
[0007] [Figure 1] FIG. 1 is a diagram showing a schematic configuration of a vehicle. [Figure 2] FIG. 2 is an explanatory diagram of the shift position and the drive mode. [Figure 3] FIG. 3 is a first diagram illustrating friction brake compensation. [Figure 4] FIG. 4 is a second diagram illustrating friction brake compensation. [Figure 5] FIG. 5 is a block diagram showing the processing of the vehicle controller. [Figure 6] FIG. 6 is a diagram showing an example of battery charging characteristics. [Figure 7] FIG. 7 is a flowchart illustrating an example of a process for selecting battery charging characteristics. [Figure 8] FIG. 8 is a diagram showing an example of setting the switching rate according to the vehicle speed. [Figure 9] FIG. 9 is a block diagram showing the discharge request process. [Figure 10] FIG. 10 is a flowchart showing an example of a process for setting the discharge start SOC. [Figure 11] FIG. 11 is a flowchart illustrating an example of a process for setting the discharge permission flag. [Figure 12] FIG. 12 is a diagram illustrating a first example of a timing chart. [Figure 13] FIG. 13 is a diagram illustrating a second example of the timing chart. [Figure 14] FIG. 14 is a diagram illustrating a third example of the timing chart. [Figure 15] FIG. 15 is a diagram illustrating a fourth example of the timing chart. DETAILED DESCRIPTION OF THE INVENTION
[0008] Hereinafter, an embodiment of the present invention will be described with reference to the accompanying drawings.
[0009] FIG. 1 is a diagram showing a schematic configuration of a vehicle 100. The vehicle 100 includes an engine 1, a generator 2, a drive motor 3, gears 4, drive wheels 5, a battery 6, and a brake system 7. The vehicle 100 is a series hybrid vehicle, and has a series hybrid mode as a driving mode. When the driving mode is the series hybrid mode, the vehicle 100 uses the engine 1 to drive the generator 2 to generate electricity, and the electric power generated by the generator 2 drives the drive motor 3.
[0010] The engine 1 is an internal combustion engine, and is a gasoline engine. The engine 1 is connected to a generator 2 so that power can be transmitted. The generator 2 is a motor generator for generating electricity, and in addition to generating electricity, it also motors the engine 1. Motoring is achieved by driving the engine 1, which is stopped, with the generator 2. The drive motor 3 is a drive motor generator, and generates driving force for the vehicle 100. The driving force generated by the drive motor 3 is transmitted to the drive wheels 5 via gear 4, which is a reduction gear. The drive motor 3 is driven by power from the drive wheels 5, and therefore also regenerates energy. The energy regenerated as electric power by the drive motor 3 can be charged into a battery 6.
[0011] The battery 6 stores the power generated by the generator 2 and the power regenerated by the drive motor 3. A discharge start SOC (State Of Charge) is set for the battery 6. The SOC is an example of a physical property of the battery 6 that affects the voltage of the battery 6, and indicates the state of charge of the battery 6. The discharge start SOC is set in advance as a value for determining whether the battery 6 is fully charged. In other words, whether the battery 6 is fully charged is determined by the discharge start SOC, and for example, a charging rate of 90% SOC is considered to be fully charged.
[0012] The brake system 7 includes a friction brake 71, a brake actuator 72, a brake pedal 73, and a master cylinder 74. The friction brake 71 is provided on the drive wheels 5. The braking force of the friction brake 71 is controlled by the brake actuator 72. The brake actuator 72 controls the braking force based on the brake fluid pressure generated by the master cylinder 74 by converting the depression force of the brake pedal 73.
[0013] The vehicle 100 further includes a motor controller 10, an engine controller 20, a brake controller 30, and a vehicle controller 40. These controllers 10 to 40 are connected to each other so that they can communicate with each other. The motor controller 10 is composed of one or more microcomputers equipped with a central processing unit (CPU), read-only memory (ROM), random access memory (RAM), and an input / output interface (I / O interface). In the motor controller 10, various controls are performed by the CPU executing programs stored in the ROM or RAM. The same is true for the engine controller 20, the brake controller 30, and the vehicle controller 40.
[0014] The motor controller 10 controls the generator 2 and the drive motor 3. The motor controller 10 further includes a first inverter that is an inverter for the generator 2 and a second inverter that is an inverter for the drive motor 3. These inverters may be understood as being separate from the motor controller 10. The motor controller 10 controls the generator 2 and the drive motor 3 by controlling the first inverter and the second inverter.
[0015] The first inverter is connected to the generator 2 and the battery 6. The first inverter converts the AC current supplied from the generator 2 into DC current and supplies it to the battery 6. As a result, the power generated by the generator 2 charges the battery 6. The first inverter further converts the DC current supplied from the battery 6 into AC current and supplies it to the generator 2. As a result, the generator 2 is driven by the power of the battery 6. The same is true for the second inverter, the drive motor 3, and the battery 6. Signals such as current, voltage, and SOC are also input to the motor controller 10 from the generator 2, the drive motor 3, and the battery 6.
[0016] The engine controller 20 controls the engine 1, and the brake controller 30 controls the brake system 7. The vehicle controller 40 comprehensively controls the engine 1, the generator 2, the drive motor 3, the brake system 7, etc. Signals are input to the vehicle controller 40 from an accelerator opening sensor 61 for detecting an accelerator opening APO, a mode switch 62 for selecting a drive mode operated by the driver, a switch switch 63 for switching on and off friction brake compensation (described later), and a shift position sensor 64 for detecting a shift position (range) selected by the driver. Signals from a brake sensor 65 for detecting brake fluid pressure are also input to the vehicle controller 40 via the brake controller 30. The vehicle controller 40, together with the motor controller 10, the engine controller 20, and the brake controller 30, constitute a controller 50.
[0017] FIG. 2 is an explanatory diagram of shift positions and drive modes. The vehicle 100 further includes a shifter 9. The shifter 9 is a device for selecting a shift position by driver operation, and the driver operates the shift lever or switch to a gate corresponding to each shift position. The shifter 9 is a momentary shifter. In the momentary shifter 9, the shift lever autonomously returns to the home position, which is the neutral position, when released from driver operation.
[0018] The shift positions selectable by the shifter 9 include P range (parking range), R range (reverse range), N range (neutral range), as well as D range, which is the first forward range, and B range, which is the second forward range. D range and B range are selected by operating the shift lever to the D / B gate, which is common to both. When D range is selected by operating the shift lever to the D / B gate, B range is selected, and when B range is selected, D range is selected. When a range other than D range or B range is selected, D range is selected by operating the shift lever to the D / B gate.
[0019] The drive modes selectable by the mode switch 62 include N mode, S mode, and ECO mode. N mode is a mode in which acceleration is performed by operating the accelerator pedal (normal mode). Therefore, in N mode, strong regenerative deceleration is not performed by operating the accelerator pedal. S mode and ECO mode are modes in which acceleration and regenerative deceleration are performed by operating the accelerator pedal (one-pedal mode), and ECO mode is a mode more suitable for fuel-efficient driving than S mode. Each time the mode switch 62 is pressed, the drive mode changes in the order N mode, S mode, and ECO mode, and returns to N mode after ECO mode.
[0020] In S mode and ECO mode, deceleration is generated by regenerating power using the drive motor 3. In other words, deceleration is negative acceleration and is indicated by a negative value. In S mode, the regeneration limit (magnitude of the regeneration limit) is set higher than in ECO mode. In other words, regeneration is not suppressed as much in S mode as in ECO mode. Therefore, in S mode, more power can be obtained through regeneration than in ECO mode, and the magnitude of the deceleration generated is also greater.
[0021] The switch SW63 is used to select between a first mode in which friction brake compensation is performed and a second mode in which friction brake compensation is not performed, and constitutes a selector that allows the driver to select the operation mode of the friction brake 71, whether or not friction brake compensation is performed. The friction brake compensation will be explained as follows.
[0022] Figures 3 and 4 are timing charts that explain friction brake compensation. Figure 3 shows the case without friction brake compensation, while Figure 4 shows the case with friction brake compensation. Both Figures 3 and 4 show the changes in various parameters during regeneration with the drive motor 3 when the accelerator is off, that is, when there is no accelerator operation.
[0023] In these examples, the vehicle speed VSP is constant due to accelerator-off regeneration, and the accelerator opening APO and brake pedal force are zero. Also, because the brake pedal force is zero, the friction brake torque is zero. The vehicle speed VSP is constant because acceleration and deceleration are balanced on a downhill slope. In these examples, the target power generation is zero at the beginning of the timing chart, and engine 1 is in a stopped state.
[0024] In order to compare and explain the difference between the presence and absence of friction brake compensation, the discharge start SOC and discharge end SOC are the same in Figure 3 and Figure 4, and the changes up to timing T3 are the same in Figure 3 and Figure 4. For this reason, the following explanation will first use the timing chart shown in Figure 3, including the changes up to timing T3.
[0025] At timing T1, the SOC becomes the discharge end SOC. In these examples, the SOC at which input restriction to the battery 6 begins is set to the same value as the discharge end SOC. The input restriction to the battery 6, i.e., the restriction on the input power to the battery 6, is performed by gradually reducing the absolute value of the regenerative power of the drive motor 3 as the SOC increases. The regenerative power is set to a value for limiting the regenerative power to an absolute value equal to or less than the regenerative power. The input restriction is activated when the regenerative power and the regenerative power become equal, and is not activated if the regenerative power is smaller in absolute value than the regenerative power. As such input restriction begins from timing T1, the regenerative power gradually becomes smaller in absolute value.
[0026] At timing T1, the regeneration restriction of the drive motor 3 also begins. The regeneration restriction is performed by gradually reducing the regenerative torque of the drive motor 3 in absolute value in accordance with the rise in SOC. The regeneration restriction is initiated when the regenerative torque and the regenerative torque become equal, and when the regenerative torque becomes equal in absolute value, Regenerative torque If the regenerative torque is smaller than the maximum regenerative torque, it will not be activated. The maximum regenerative torque is a value used to limit the regenerative torque in absolute value to the maximum regenerative torque or less. From time T1, this regenerative restriction begins, and the maximum regenerative torque also gradually decreases in absolute value.
[0027] At timing T1, the absolute value of the regenerative torque is smaller than the regenerative torque. Therefore, regenerative restriction is not activated, and the regenerative torque is controlled to the target torque. The target torque is calculated based on the vehicle speed VSP and accelerator opening APO. The regenerative power obtained according to the regenerative torque is also controlled to the target power, just like the regenerative torque.
[0028] At timing T2, the SOC reaches the discharge start SOC, and the target power generation changes from zero to negative. As a result, motoring of the engine 1 begins, and the battery 6 is discharged due to power consumption by the generator 2. As a result, the absolute values of the regenerative power and regenerative torque increase. Compared to before timing T2, the SOC increases more gradually due to the amount of discharge. The absolute values of the regenerative power and regenerative torque increase to a magnitude corresponding to the target power generation, and then begin to decrease again.
[0029] At timing T3, the regenerative power reaches the regenerative power, and as a result, input restriction is activated. When input restriction is activated, the regenerative power is limited to the regenerative power. Similarly, at timing T3, the regenerative torque reaches the regenerative torque, and as a result, regeneration restriction of the drive motor 3 is activated, and the regenerative torque is limited to the regenerative torque. When the regenerative torque is limited to the regenerative torque, the regenerative braking force is reduced by an amount corresponding to the magnitude of the difference between the regenerative torque and the target torque.
[0030] Without friction brake compensation, braking is required to compensate for the loss of braking force due to regeneration restriction. For this reason, in this example, braking begins at time T3, increasing the brake pedal force, and the friction brake torque increases accordingly. In other words, without friction brake compensation, when regeneration restriction is implemented, the driver must apply the brakes as needed to accommodate the change in deceleration due to regeneration restriction.
[0031] In the case of friction brake compensation shown in Figure 4, friction brake compensation is performed from timing T3. Friction brake compensation is braking force compensation by friction brake 71, and is controlled to compensate for the braking force reduction due to regeneration restriction with the braking force of friction brake 71. Therefore, in this case, friction brake compensation increases friction brake torque, and the braking force reduction due to regeneration restriction is compensated for. As a result, in this case, deceleration is maintained even when regeneration restriction is performed, and the driver is relieved of the hassle of operating the brakes.
[0032] Noise is generated when the generator 2 motors the engine 1, and motoring is performed unexpectedly for the occupants, for example, to prevent overcharging of the battery 6. As a result, there is a concern that the motoring noise may cause discomfort to the occupants.
[0033] In view of the above circumstances, the vehicle controller 40 in this embodiment is configured as follows.
[0034] 5 is a block diagram showing the processing of vehicle controller 40. Vehicle controller 40 includes a friction brake compensation determination unit 41, a regenerative power limit calculation unit 42, a target regenerative driving torque calculation unit 43, a deceleration torque distribution unit 44, and a power generation / discharge control calculation unit 45.
[0035] The friction brake compensation determination unit 41 determines whether friction brake compensation is set or not based on the input signal. An operation mode signal of the friction brake 71 and a drive range signal are input to the friction brake compensation determination unit 41. The operation mode signal is used to determine whether the first mode or the second mode is selected. The drive range signal is used to determine whether the selected range is a non-driving range (P range or N range), and if it is a non-driving range, friction brake compensation is not required and therefore it can be considered that no setting is made.
[0036] Therefore, when the second mode is selected or the non-driving range is selected, it is determined that there is no friction brake compensation (friction brake compensation is not set). On the other hand, when the first mode is selected and a range other than the non-driving range is selected, it is determined that there is friction brake compensation (friction brake compensation is set). When it is determined that there is friction brake compensation, the compensation flag is turned ON, and when it is determined that there is no friction brake compensation, the compensation flag is turned OFF. The compensation flag is input from the friction brake compensation determination unit 41 to the regenerative power limit calculation unit 42 and the deceleration torque distribution unit 44.
[0037] The regenerative power limit calculation unit 42 includes a first chargeable power calculation unit 421, a second chargeable power calculation unit 422, a chargeable power selection unit 423, a switching rate processing unit 424, and a regenerative torque calculation unit 425, and calculates the regenerative torque. In other words, the regenerative torque is the absolute value and upper limit of the regenerative torque that can be regenerated by the drive motor 3 to the maximum.
[0038] The first chargeable power calculation unit 421 calculates the regenerative power in the first mode, and the second chargeable power calculation unit 422 calculates the regenerative power in the second mode. The SOC of the battery 6 is input to the first chargeable power calculation unit 421 and the second chargeable power calculation unit 422, and each of these calculation units 421, 422 calculates the regenerative power based on the input SOC. A compensation flag signal is also input to the second chargeable power calculation unit 422. Each of these calculation units 421, 422 calculates the chargeable power based on the battery charging characteristics described next.
[0039] FIG. 6 is a diagram showing an example of battery charging characteristics. The solid line indicates the first charging characteristic C1, and the dashed line indicates the second charging characteristic C2. For ease of explanation, FIG. 6 shows the first charging characteristic C1 and the second charging characteristic C2 on the same graph, but these characteristics C1 and C2 can be defined by different map data. The first charging characteristic C1 is applied to the first mode, and the second charging characteristic C2 is applied to the second mode. For each of the first charging characteristic C1 and the second charging characteristic C2, the chargeable power of the battery 6 is preset according to the SOC, and charging to the battery 6 cannot exceed the chargeable power. Therefore, the chargeable power is, in other words, the input power that can be input, and the input limit to the battery 6 can be expressed by the chargeable power. The chargeable power is set with respect to the regenerative power of the drive motor 3 and corresponds to the magnitude of the regenerative power.
[0040] In the first charging characteristic C1, when the SOC is less than the first input limit start value α1, no input limit is imposed and the chargeable power is kept constant. On the other hand, when the SOC is equal to or greater than the first input limit start value α1, input limit is imposed, and the higher the SOC, the smaller the chargeable power is set. Furthermore, when the SOC is equal to or greater than a first zero limit value β1 that is higher than the first input limit start value α1, the chargeable power is set to zero. The first zero limit value β1 indicates the zero limit value β of the input power to the battery 6 when friction brake compensation is present.
[0041] In the second charging characteristic C2, when the SOC is less than the second input limit start value α2, no input limit is imposed and the chargeable power is kept constant. On the other hand, when the SOC is equal to or greater than the second input limit start value α2, input limit is imposed, and the higher the SOC, the smaller the chargeable power is set. Furthermore, when the SOC is equal to or greater than a second zero limit value β2, which is higher than the second input limit start value α2, the chargeable power is set to zero. The second zero limit value β2 is the zero limit value β when there is no friction brake compensation and is set to the discharge start SOC. Therefore, when the SOC is equal to or greater than the second zero limit value β2, the SOC is reduced by motoring.
[0042] The first input limiting start value α1 and the second input limiting start value α2 are set to different values. In other words, the SOC at which input limiting starts is set to different values for the first charging characteristic C1 and the second charging characteristic C2. Therefore, the first charging characteristic C1 and the second charging characteristic C2 cause the SOC at which input limiting to the battery 6 starts to differ between the first mode in which the first charging characteristic C1 is applied and the second mode in which the second charging characteristic C2 is applied.
[0043] Similarly, the first zero limit value β1 and the second zero limit value β2 are set to different values. In other words, the SOC at which the chargeable power becomes zero is set to different values for the first charging characteristic C1 and the second charging characteristic C2. Therefore, the first charging characteristic C1 and the second charging characteristic C2 cause the SOC at which the input power to the battery 6 becomes zero due to input limitation to differ between the first mode and the second mode.
[0044] The first input limit start value α1 is set smaller than the second input limit start value α2. Therefore, when the first mode is selected, input limiting is started at a lower SOC than when the second mode is selected. Also, the first zero limit value β1 is set smaller than the second zero limit value β2. Therefore, when the first mode is selected, the input power to the battery 6 is limited to zero at a lower SOC than when the second mode is selected, thereby stopping regeneration. The first zero limit value β1 may be set smaller than the second input limit start value α2. The pre-discharge start value γ will be described later.
[0045] In this embodiment, the SOC is the only parameter used to set the charging characteristics as a simple method for managing the charge amount of the battery 6. The input / output power of the battery 6 is controlled to prevent overcharging of the battery 6, and the battery voltage (voltage of the battery 6) is controlled within a normal operating range through charge limiting and discharge control. The SOC is an index representing the charge amount of the battery 6; the higher the SOC, the higher the battery voltage tends to be. Therefore, the higher the SOC, the more the charging power of the battery 6 is limited and discharge is promoted, thereby controlling the battery voltage to an appropriate voltage. Parameters used to prevent overcharging of the battery 6 include the SOC, battery voltage, and battery temperature (temperature of the battery 6). Using at least one parameter, including the SOC, can control the battery voltage and prevent overcharging. Regarding battery voltage, the higher the base voltage (e.g., no-load voltage), the lower the charging power is set to prevent overvoltage due to voltage rise caused by resistance during charging. Regarding battery temperature, the lower the battery temperature, the higher the internal resistance value, and the greater the voltage rise during charging. Therefore, the lower the battery temperature, the more the charging power of the battery 6 can be limited to prevent overvoltage.
[0046] 5 , the first chargeable power calculation unit 421 calculates the chargeable power with reference to the first charging characteristic C1, thereby calculating the chargeable power in the first mode. The second chargeable power calculation unit 422 calculates the chargeable power with reference to the second charging characteristic C2, thereby calculating the chargeable power in the second mode. The chargeable power calculated by the first chargeable power calculation unit 421 is input to the chargeable power selection unit 423. The chargeable power calculated by the second chargeable power calculation unit 422 is input to the chargeable power selection unit 423 and the power generation / discharge control calculation unit 45.
[0047] The chargeable power selection unit 423 selects chargeable power based on the input compensation flag. When the compensation flag is ON, the chargeable power in the first mode is selected, and when the compensation flag is OFF, the chargeable power in the second mode is selected. The chargeable power selection unit 423 selects the chargeable power as follows: Friction brake compensation The battery charging characteristics are selected depending on whether the setting is made or not.
[0048] 7 is a flowchart illustrating an example of the process of selecting the battery charging characteristics performed by the vehicle controller 40. The process of step S1 corresponds to the friction brake compensation determination unit 41, and the processes of steps S2 and S3 correspond to the chargeable power selection unit 423. In step S1 Friction brake compensation If the determination in step S1 is affirmative, the process proceeds to step S2, where the first charging characteristic C1 is selected. Friction brake compensation If yes, the first charging characteristic C1 is used as a reference for calculating the regenerative power limit. If the determination in step S1 is negative, the process proceeds to step S3, where the second charging characteristic C2 is selected. Friction brake compensation If not, the second charging characteristic C2 is used as a reference for calculating the regenerative power limit. After steps S2 and S3, the process ends.
[0049] 5, the chargeable power selected by the chargeable power selection unit 423 is input to the switching rate processing unit 424. The switching rate processing unit 424 performs switching rate processing of the input limit. The switching rate is the rate at which the input limit changes over time, and is specified for the chargeable power as a rate of decrease over time.
[0050] In the switching rate process, when transitioning from the second mode to the first mode, a switching rate is applied to the chargeable power in the second mode when the first mode is selected, and the chargeable power is changed according to the switching rate, thereby gradually decreasing the chargeable power. Then, when transitioning from the second mode to the first mode, the input limit obtained by changing the chargeable power according to the switching rate in this way is used as the input limit to the battery 6. This is for the following reason.
[0051] 6, for example, when the SOC is the second input limit start value α2, input limiting is initiated in the second mode, while the chargeable power is already limited in the first mode. Therefore, if the input limiting performed in the second mode is immediately switched to the input limiting performed in the first mode in such a case, the sudden decrease in the chargeable power will limit regeneration, resulting in a sudden decrease in the absolute value of the deceleration, which may cause discomfort to the occupants. For this reason, when transitioning from the second mode to the first mode, the input limit obtained as described above is used as the input limit to the battery 6. The switching rate is further set as follows:
[0052] FIG. 8 is a diagram showing an example of setting the switching rate according to the vehicle speed VSP. The higher the vehicle speed VSP, the larger the switching rate is set. This is because, in order to limit the change in deceleration within a predetermined range, the lower the vehicle speed, at which the motor torque sensitivity to the change in regenerative input power is high, the slower the change in regenerative power must be set. From this perspective, the switching rate can be set in advance according to the vehicle speed VSP.
[0053] Returning to FIG. 5, the chargeable power adopted by the switching rate processing unit 424 is input to the regenerative torque calculation unit 425. The regenerative torque calculation unit 425 calculates the regenerative torque based on the input chargeable power. The regenerative torque is the negative of the chargeable power, that is, the regenerative power converted into regenerative torque. The calculated regenerative torque is input to the deceleration torque distribution unit 44.
[0054] The target regenerative driving torque calculation unit 43 calculates the target regenerative torque based on the vehicle speed VSP and the accelerator pedal position APO. The target regenerative torque is preset according to the vehicle speed VSP and the accelerator pedal position APO, and a negative target regenerative torque is calculated as the target regenerative torque during accelerator-off regeneration. The calculated target regenerative torque is input to the deceleration torque distribution unit 44.
[0055] The deceleration torque distribution unit 44 distributes the input target regenerative torque into a target friction brake torque and a target regenerative torque after processing by the deceleration torque distribution unit 44. If the compensation flag is ON and the input target regenerative torque is greater in absolute value than the regenerative torque, regeneration cannot be performed with the input target regenerative torque. Therefore, in this case, the regenerative torque is set to the processed target regenerative torque, and the target friction brake torque is set to a torque equal to the magnitude of the difference between the input target regenerative torque and the regenerative torque.
[0056] If the compensation flag is ON and the input target regenerative torque is equal to or less than the regenerative torque in absolute value, the input target regenerative torque is set as the processed target regenerative torque, and the target friction brake torque is set to zero. The same applies when the compensation flag is OFF. The target friction brake torque is input from the deceleration torque distribution unit 44 to the brake controller 30, and the processed target regenerative torque is input to the drive control unit 11 of the motor controller 10. The drive control unit 11 controls the drive motor 3 based on the input target regenerative torque.
[0057] The power generation / discharge control calculation unit 45 has a power generation / discharge permission determination unit 451 and a target operating point calculation unit 452, and performs calculations for power generation control in which the engine 1 drives the generator 2 to generate electricity, and for discharge control in which the generator 2 motors the engine 1.
[0058] The power generation / discharge permission determination unit 451 sets the power generation / discharge permission flag based on the input signal. In addition to the chargeable power in the second mode, a warm-up request for the engine 1 and other power generation / discharge requests are input to the power generation / discharge permission determination unit 451. The warm-up of the engine 1 is performed based on the engine water temperature, for example, to warm up the exhaust purification catalyst. The warm-up request is performed as a power generation request because it involves driving the generator 2.
[0059] Other power generation / discharge requests include, for example, power generation requests and discharge requests made according to the SOC for energy management of the battery 6. Such discharge requests include, for example, a discharge request for motoring to prevent overcharging of the battery 6. Other power generation / discharge requests also include power generation / discharge requests made regardless of the SOC.
[0060] The power generation / discharge permission flag includes a power generation permission flag and a discharge permission flag. For example, when there is a warm-up request, the warm-up request takes priority for early catalyst activation, and the power generation permission flag is turned ON. If other power generation / discharge requests are power generation / discharge requests according to SOC, the power generation permission flag or discharge permission flag is turned ON. The power generation / discharge permission flag is turned OFF when there is no warm-up request or other power generation / discharge request. A discharge request according to SOC is made after setting the discharge start SOC, as explained below.
[0061] 9 is a block diagram showing the discharge request process. The vehicle controller 40 further has a discharge request unit 46. The discharge request unit 46 has a discharge start SOC setting unit 461 and a discharge request generation unit 462. A compensation flag and a drive range signal are input to the discharge start SOC setting unit 461. The discharge start SOC setting unit 461 sets the discharge start SOC as described below.
[0062] FIG. 10 is a flowchart illustrating an example of a process for setting the discharge start SOC. In step S11, it is determined whether or not there is no friction brake compensation, and in step S12, it is determined whether or not the range is B. If the determination in step S11 or step S12 is negative, the process proceeds to step S14, where the second zero limit value β2 is set as the discharge start SOC. In step S14, the second zero limit value β2 is always set as the discharge start SOC, and functions as the discharge start SOC even when there is friction brake compensation. The second zero limit value β2 is set from the perspective of preventing overcharging of the battery 6. If the determination in step S11 and step S12 is positive, the process proceeds to step S13, where the pre-discharge start value γ is set as the discharge start SOC. The pre-discharge start value γ will be explained below using FIG. 6.
[0063] As shown in Fig. 6, the pre-discharge start value γ is set to an SOC lower than the second zero limit value β2, and the chargeable power is not zero at the pre-discharge start value γ. By starting discharge at an SOC lower than the second zero limit value β2, the pre-discharge start value γ constitutes a pre-motoring discharge start SOC that increases the SOC margin in advance compared to when motoring is started at the second zero limit value β2.
[0064] The pre-discharge start value γ is set to an SOC lower than the first zero limit value β1. Therefore, pre-motoring makes it possible to continue for a longer period of time the state in which regeneration, which becomes impossible when the chargeable power becomes zero, is possible. The pre-discharge start value γ is set from the perspective of continuing regeneration (in other words, preventing a decrease in the absolute value of regenerative torque), and therefore differs from the second zero limit value β2, which serves as a discharge start SOC and is set to an SOC at which the chargeable power becomes zero from the perspective of suppressing overcharging. The pre-discharge start value γ is set to an SOC equal to or higher than the second input limit start value α2, for example.
[0065] When the pre-discharge start value γ is set, the pre-discharge start value γ functions as the discharge start SOC. Therefore, in this case, the second zero limit value β2 does not function as the discharge start SOC. Even when the pre-discharge start value γ is set, input limitation is performed with reference to the second charging characteristic C2. In other words, the pre-discharge start value γ is merely a setting for discharge, and for the sake of convenience, the pre-discharge start value γ is also shown in FIG. 6. Therefore, the pre-discharge start value γ is not particularly reflected in the calculation for regenerative control. The same applies to the second zero limit value β2 as the discharge start SOC.
[0066] Returning to FIG. 9, the set discharge start SOC is input to the discharge request generation unit 462. The SOC is also input to the discharge request generation unit 462, and a discharge request is generated when the SOC becomes equal to or greater than the input discharge start SOC. If the input discharge start SOC is the second zero limit value β2, the discharge request is generated as a discharge request according to the second zero limit value β2, and if the input discharge start SOC is the pre-discharge start value γ, the discharge request is generated as a discharge request according to the pre-discharge start value γ. The discharge request is input to the power generation / discharge permission determination unit 451 as an additional power generation / discharge request. In this case, the power generation / discharge permission determination unit 451 sets a discharge permission flag as follows:
[0067] 11 is a flowchart showing an example of the discharge permission flag setting process performed by the vehicle controller 40. In step S21, it is determined whether or not there is a discharge request according to the SOC. If the determination in step S21 is negative, the process ends, and if the determination in step S21 is positive, the process proceeds to step S22. In step S22, it is determined whether or not friction brake compensation is present. If the determination in step S22 is positive, the process proceeds to step S23, where it is determined whether or not the SOC is equal to or greater than the second zero limit value β2. In other words, if friction brake compensation is present, motoring is performed to prevent overcharging of the battery 6, and therefore the second zero limit value β2 is used as a comparison target for the SOC.
[0068] If the determination in step S23 is affirmative, the discharge permission flag is turned ON in step S24, and motoring is permitted. If the determination in step S23 is negative, the discharge permission flag is turned OFF in step S25. Motoring continues until the SOC falls below the discharge end SOC, even if the discharge permission flag is turned OFF. The process ends after step S24 or step S25.
[0069] If the determination in step S22 is negative, the process proceeds to step S26, where it is determined whether the SOC is equal to or greater than the pre-discharge start value γ. In other words, when there is no friction brake compensation, motoring is performed from the viewpoint of continuing regeneration, so the pre-discharge start value γ is used as a comparison target for the SOC. If the determination in step S26 is positive, the discharge permission flag is turned ON, and if the determination in step S26 is negative, the discharge permission flag is turned OFF. The process ends after step S27 or step S28.
[0070] Returning to FIG. 5, the power generation / discharge permission flag is input from the power generation / discharge permission determination unit 451 to the target operating point calculation unit 452. The target operating point calculation unit 452 calculates the target operating point of the engine 1. When the power generation / discharge permission flag is ON, the target operating point is calculated based on a warm-up request or other power generation / discharge requests. A target torque and a target rotation speed are calculated as the target operating point. The calculated target torque and target rotation speed are input to the power generation / discharge system SYS. The power generation / discharge permission flag is also input to the power generation / discharge system SYS from the power generation / discharge permission determination unit 451.
[0071] The power generation / discharge system SYS performs power generation operation or motoring of the engine 1 when the power generation / discharge permission flag is ON. When the power generation permission flag is ON, power generation operation is performed, and when the discharge permission flag is ON, motoring is performed. The power generation / discharge system SYS includes a motor controller 10 and an engine controller 20, and a target rotation speed is input to the motor controller 10, and a target torque is input to the engine controller 20. The power generation / discharge permission flag is input to both the motor controller 10 and the engine controller 20.
[0072] In power generation operation, engine 1 generates a target torque that corresponds to the target generated power, and generator 2 generates a torque that absorbs the torque generated by engine 1 so that the target rotation speed corresponds to the target generated power. In motoring, generator 2 is driven at the target rotation speed, and power is discharged by consuming power in generator 2. When the power generation / discharge permission flag is OFF, power generation operation and motoring are prohibited.
[0073] The power generation / discharge control calculation unit 45 constitutes a power generation / discharge power control unit that performs power generation / discharge power control to control the power generated by the generator 2 and the discharge power due to motoring of the engine 1. The power generation / discharge control calculation unit 45 can be thought of as two calculation units, a power generation control calculation unit and a discharge control calculation unit, and can be understood as comprising a power generation control unit and a discharge power control unit. The friction brake compensation determination unit 41, regenerative power limit calculation unit 42, target drive regenerative torque calculation unit 43, and deceleration torque distribution unit 44 constitute a regenerative power control unit RG that performs regenerative power control to control the regenerative power of the drive motor 3.
[0074] Fig. 12 shows a first example of a timing chart corresponding to the control of this embodiment. Fig. 12 shows the changes when friction brake compensation is present, i.e., in the first mode. Fig. 12 also shows the changes in various parameters during regeneration with the accelerator released. This also applies to Figs. 13 to 15, which will be described later.
[0075] At timing T11, the SOC exceeds the first input limit start value α1, and input limiting to the battery 6 begins. As a result, the first regenerative power and regenerative torque begin to decrease in absolute value. The first regenerative power indicates the regenerative power when friction brake compensation is present. The regenerative torque is controlled to a target torque that is smaller in absolute value than the regenerative torque, and is not limited by the regenerative torque. The same is true for the first regenerative power. Because the first input limit start value α1 is lower than the second input limit start value α2, input limiting begins earlier than when friction brake compensation is not present.
[0076] At timing T12, the first regenerative power reaches the target power and the regenerative torque reaches the target torque, and input restriction and regenerative restriction are activated. As a result, the regenerative power is limited to the first regenerative power and the regenerative torque is limited to the regenerative torque. When regenerative restriction is activated, the absolute value of the regenerative torque decreases, resulting in a deceleration deficiency relative to the target torque. For this reason, friction brake compensation also begins at timing T12, and the friction brake torque begins to increase.
[0077] At time T13, the first regenerative power and regenerative torque become zero, and the SOC becomes equal to or greater than the first zero limit value β1. As a result, from time T13, the power input to the battery 6 is limited to zero, stopping regeneration. Therefore, the first regenerative power and regenerative torque remain zero, and the SOC remains at the first zero limit value β1.
[0078] Because the first zero limit value β1 is lower than the second zero limit value β2, the battery 6 has a margin for accepting electric power at timing T13 compared to when there is no friction brake compensation. For this reason, in this example, motoring is not started at timing T13, thereby preventing motoring noise from causing discomfort to the occupants.
[0079] The rate of change of the first regenerative power according to the SOC when friction brake compensation is applied (the rate of change during regeneration restriction between timings T12 and T13) is set slower than the response speed of the friction brake torque. As a result, in this example, the braking force according to the absolute value of the regenerative torque relative to the target torque is compensated for by the friction brake torque.
[0080] This prevents a situation in which friction brake compensation is delayed relative to the progression speed of the regeneration restriction, resulting in insufficient deceleration relative to the target torque. The friction brake torque may reach the target magnitude to be compensated at timing T13. This change rate can be set by setting the degree of input restriction in the first mode, which is set so that the degree of restriction increases as the SOC increases.
[0081] Fig. 13 is a diagram showing a second example of a timing chart corresponding to the control of this embodiment. Fig. 13 shows a case where friction brake compensation is present, similar to the first example shown in Fig. 12. The changes before timing T23 are similar to the changes before timing T13 in the first example shown in Fig. 12. Therefore, the following will explain the period after timing T23.
[0082] In this example, at time T23, the input power to battery 6 is limited to zero, stopping regeneration. Then, at time T24, while the input is limited to zero, a catalyst warm-up request is made as a warm-up request. However, while the input limit is applied to regenerative power control, it is not applied to power generation control. In other words, the input limit does not affect the catalyst warm-up request, which is a power generation request. Therefore, at time T24, a positive target power generation request is calculated in accordance with the catalyst warm-up request, and engine 1 operates to generate power in accordance with the target power generation.
[0083] As a result, even when the input of electric power to the battery 6 is restricted, the catalyst can be warmed up by prioritizing power generation, and deterioration of exhaust emissions is suppressed. Also, at timing T24, the SOC is still lower than the second zero limit value β2, and the battery 6 has a margin for accepting electric power, so there is no particular problem in performing power generation operation.
[0084] FIG. 14 is a diagram showing a third example of a timing chart corresponding to the control of this embodiment. In this example, a case where the first mode is selected from the second mode while the B range is selected will be described. The second regenerative power indicates the regenerative power without friction brake compensation. The regenerative torque indicates the regenerative torque corresponding to the second regenerative power.
[0085] At time T31, the SOC exceeds the first input limit start value α1. As a result, the first regenerative power begins to decrease in absolute value. However, because there is no friction brake compensation at time T31, input and regeneration restrictions based on the first regenerative power are not implemented. Therefore, there is no particular change in the second regenerative torque.
[0086] At timing T32, the SOC becomes equal to or greater than the second input limit start value α2. As a result, input limiting is initiated, and the absolute value of the second regenerative power begins to decrease. Correspondingly, the absolute value of the second regenerative torque also begins to decrease.
[0087] At timing T33, the SOC exceeds the pre-discharge start value γ. Because the B range is selected without friction brake compensation at timing T33, the discharge start SOC is set to the pre-discharge start value γ. As a result, a negative target power is calculated as the target power, and pre-motoring begins. This delays the end of regeneration by the amount that the regenerative power increases in absolute value, allowing regeneration to continue for a longer period. When the target power becomes constant at timing T34, the regenerative power and regenerative torque begin to decrease again in absolute value as the SOC increases.
[0088] At time T35, the first mode is selected. Therefore, the first regenerative power should be applied as the regenerative power. However, at time T35, the first regenerative power has already decreased in absolute value below the target power. Therefore, if the regenerative power is immediately switched from the second regenerative power to the first regenerative power, the regenerative torque will change suddenly, resulting in a sudden decrease in deceleration in absolute value.
[0089] Therefore, from timing T35, the aforementioned switching rate is applied to the second regenerative power when the first mode is selected, and the regenerative power (regenerative power indicated by the two-dot dashed line) that changes according to the switching rate is used for input limitation instead of the first regenerative power. Timing T35 Since the first mode is selected from the beginning, the discharge start SOC and discharge end SOC of the first mode are applied to the discharge start SOC and discharge end SOC. The first discharge end SOC is as shown in the figure, and the discharge start SOC of the first mode is set to the second zero limit value β2.
[0090] The discharge end SOC in the first mode is set to, for example, an SOC slightly lower than the first zero limit value β1, and motoring is stopped when the SOC falls below the discharge end SOC. From timing T35, motoring continues even if the second zero limit value β2 constitutes the discharge start SOC for the first mode. If the SOC is higher than the discharge end SOC set in the first mode, motoring continues until it falls below the discharge end SOC for the first mode. The discharge end SOC is set a predetermined amount lower than the discharge start SOC to prevent control hunting.
[0091] From time T36, the regenerative power gradually decreases in absolute value while being limited by the regenerative power that changes according to the switching rate, and the regenerative torque also gradually decreases in absolute value accordingly. From time T36, the friction brake torque also begins to increase in accordance with the decrease in the absolute value of the regenerative power. This compensates for the braking force corresponding to the decrease in the regenerative torque in absolute value relative to the target torque.
[0092] At time T37, the regenerative power that changes according to the switching rate becomes the first regenerative power. As a result, from time T37 onwards, the regenerative power is limited by the first regenerative power. The regenerative torque and friction brake torque also have magnitudes that correspond to the regenerative power that is limited to the first regenerative power.
[0093] In this example, the SOC reaches the first zero limit value β1 shortly before timing T37, and the first regenerative power and regenerative power become zero. Meanwhile, motoring is in progress. As a result, the SOC begins to decrease and falls below the discharge end SOC for the first mode at timing T37. As a result, the motoring end condition is met.
[0094] When motoring is stopped, the absolute value of the second regenerative power and the corresponding regenerative torque decreases by the amount of power consumed by motoring. Then, when motoring is stopped, there is no change in the SOC, so the second regenerative power and the corresponding regenerative torque remain constant.
[0095] The determination of the start and end of motoring is not limited to SOC, and may be based on one or more determination factors, such as the voltage of battery 6, the input power to battery 6, which is a physical property of battery 6 that affects the voltage, as well as the regenerative power requirement and discharge power requirement included in the input / output request to battery 6.
[0096] FIG. 15 shows a fourth example of a timing chart corresponding to the control of this embodiment. In this example, we will explain the case where the first mode is selected from the second mode while the D range is selected. At timing T41, the SOC becomes equal to or greater than the first input limit start value α1. As a result, the first regenerative power begins to decrease in absolute value. However, because there is no friction brake compensation at timing T41, the regenerative torque does not change accordingly.
[0097] At time T42, the first mode is selected, and friction brake compensation changes from off to on. Therefore, the first regenerative power should be applied as the regenerative power. However, the first regenerative power has already decreased significantly in absolute value compared to when friction brake compensation is off. For this reason, from time T42, the second regenerative power when the first mode is selected is changed according to the switching rate, and this regenerative power is used for input limitation instead of the first regenerative power. As a result, at time T42, the regenerative power remains controlled to the target power, and input limitation is not performed. Therefore, a sudden decrease in absolute value of the deceleration is prevented.
[0098] At time T43, the regenerative power, which changes according to the switching rate, reaches the target power. Therefore, from time T43, regeneration restriction of the drive motor 3 is activated, and the regenerative torque, which had been controlled to the target torque, is limited to the regenerative torque. At time T43, friction brake compensation also begins to compensate for the braking force corresponding to the regenerative torque that is reduced in absolute value due to the regenerative restriction. As a result, the friction brake torque begins to increase. In this example, the SOC reaches the first zero limit value β1 at time T43, but because the regenerative power, which changes according to the switching rate, is used for input restriction, the SOC continues to increase.
[0099] At timing T44, the regenerative torque becomes zero. Therefore, the regenerative torque becomes zero and regeneration stops. At timing T44, the friction brake torque generates a deceleration torque equal to the decrease in regenerative torque due to the limit on regenerative power, and becomes equivalent to the target regenerative torque. The rate of change in the regenerative power according to the switching rate is slower than the response speed of the friction brake torque due to the characteristics of the switching rate described above using Figure 8. This prevents a situation in which the friction brake compensation follows the progression speed of the regenerative limit and the deceleration is insufficient relative to the target torque.
[0100] Next, the main effects of this embodiment will be described.
[0101] The control method for vehicle 100 according to this embodiment is used in vehicle 100, which includes engine 1, generator 2, drive motor 3, and battery 6, and in which engine 1 drives generator 2 to generate electricity, the electricity generated by generator 2 drives drive motor 3, and regenerative power from drive motor 3 is supplied to battery 6. Vehicle 100 has a first mode in which friction brake compensation is performed, that is, braking force compensation by friction brake 71 during regeneration with accelerator off, and a second mode in which friction brake compensation is not performed during regeneration with accelerator off. The control method for vehicle 100 includes limiting input to battery 6 and varying the SOC, at which input power to battery 6 becomes zero due to the input limitation, between the first mode and the second mode.
[0102] Here, if there is no friction brake compensation, limiting the input power to battery 6 to zero will prevent regeneration, resulting in insufficient deceleration relative to the target torque. For this reason, in this case, discharging by motoring is required to make up for the insufficient deceleration caused by limiting the input to battery 6. In other words, discharging by motoring is required to increase the chargeable power of battery 6 by motoring and perform regeneration to compensate for the insufficient deceleration.
[0103] On the other hand, when friction brake compensation is in use, even if regeneration becomes impossible, the insufficient regenerative torque can be compensated for by friction brake compensation. Therefore, in this case, the SOC that limits the input power to battery 6 to zero does not need to be set as high as possible within a range that does not cause overcharging, and since the battery 6 still has a margin for power acceptance at such an SOC, it is not necessarily necessary to discharge the battery by motoring.
[0104] The method according to this embodiment takes into account the above circumstances and sets different SOCs for limiting the input power to zero between the first mode and the second mode. Therefore, even if the input power is limited to zero, motoring in the first mode can be avoided. As a result, it is possible to alleviate the discomfort that may be felt by occupants due to motoring noise. Furthermore, this method prevents occupants from feeling uncomfortable due to insufficient deceleration compared to the target torque.
[0105] The method according to this embodiment further includes starting input limiting and stopping regeneration of the drive motor 3 when the first mode is selected at a lower SOC than when the second mode is selected. According to this method, input limiting is started and regeneration is stopped earlier in the first mode than in the second mode, so that the battery 6 has a sufficient power capacity when the input power is reduced to zero. As a result, motoring in the first mode is not necessary even if the input power is limited to zero. This reduces the discomfort that may be felt by occupants due to motoring noise.
[0106] The method according to this embodiment further includes motoring the engine 1 by the generator 2, and when the first mode is selected, the input power to the battery 6 is limited to zero by input limitation before motoring begins. According to this method, in the first mode, motoring begins after the input power to the battery 6 is limited to zero, so that limiting the input power to zero does not result in motoring being performed, thereby alleviating the discomfort that may be felt by occupants due to motoring noise.
[0107] The method according to this embodiment further includes regenerative power control for controlling the regenerative power of the drive motor 3 and power generation control for controlling the power generated by the generator 2. Input power limitations are applied to the regenerative power control, but not to the power generation control. This method allows power generation regardless of input limitations, so power generation requirements can be met by prioritizing the reduction of motoring noise. Therefore, for example, if a warm-up request is made, the engine 1 can be operated in response to the warm-up request regardless of the input limitations, thereby avoiding a situation in which warm-up is not possible due to input limitations.
[0108] The method according to this embodiment further includes motoring the engine 1 using the generator 2, and performing pre-motoring by motoring the engine 1 using the generator 2 at a SOC lower than that of the motoring. When the first mode is selected, the execution of pre-motoring is prohibited. According to this method, in the first mode, friction brake compensation is possible when regeneration is stopped, and therefore the execution of pre-motoring, which is performed from the perspective of continuing regeneration, is prohibited. This reduces the discomfort that may be felt by occupants due to motoring noise caused by pre-motoring.
[0109] The method according to this embodiment further includes motoring the engine 1 using the generator 2. Regeneration of the drive motor 3 is stopped by limiting the input power to the battery 6 to zero. When the first mode is selected during motoring, even if the motoring start condition for the first mode is not satisfied, i.e., the SOC has not reached the first mode discharge start SOC, motoring continues as long as the motoring end condition for the first mode is not satisfied, i.e., the SOC has not reached the first mode discharge end SOC. According to this method, although motoring should be performed in the first mode according to the first mode motoring start and end conditions, if motoring is already in progress, prioritizing discharge by motoring enables an early reduction in the SOC.
[0110] The method according to this embodiment sets the rate of change of the input limit in the first mode, which is the rate of change of the input limit in response to a change in SOC, to be equal to or less than the response speed of the brake torque compensated by the friction brake 71. Furthermore, the method according to this embodiment sets the rate of change of the input limit obtained by changing the input allowable power according to the switching rate, i.e., the rate of change of the regenerative power according to the switching rate, to be equal to or less than the response speed of the brake torque compensated by the friction brake. These methods allow the regenerative torque lost due to the regenerative limit to be appropriately compensated for by the brake torque, thereby appropriately suppressing changes in deceleration.
[0111] In the method according to this embodiment, when transitioning from the second mode to the first mode, a switching rate is applied to the chargeable power in the second mode when the first mode is selected, and the input limit obtained by changing the chargeable power according to the switching rate is used as the input limit to the battery 6. According to this method, when transitioning from the second mode to the first mode, the input limit implemented in the first mode is immediately applied, thereby preventing a sudden change in deceleration.
[0112] Although the embodiments of the present invention have been described above, the above embodiments merely illustrate some of the application examples of the present invention, and it is not intended that the technical scope of the present invention be limited to the specific configurations of the above embodiments.
Claims
1. A control method for a vehicle that includes an engine, a generator, a drive motor, and a battery, the engine driving the generator to generate electricity, the electric power generated by the generator driving the drive motor, and regenerative electric power of the drive motor being supplied to the battery, comprising: The vehicle has a first mode in which braking force compensation by a friction brake is performed during accelerator-off regeneration, which is regeneration by the drive motor in a state where no accelerator operation is performed, and a second mode in which braking force compensation by the friction brake is not performed during accelerator-off regeneration, limiting input to the battery; a voltage of the battery at which input power to the battery becomes zero due to the input limit or a physical property value of the battery that affects the voltage is made different between the first mode and the second mode; the physical property value includes an SOC of the battery, When the first mode is selected, the input limiting is started and the regeneration of the drive motor is stopped at an SOC that is lower than when the second mode is selected. The vehicle control method further includes:
2. 2. A vehicle control method according to claim 1, motoring the engine with the generator; When the first mode is selected, the input power to the battery is limited to zero by the input limit before starting the motoring. How to control the vehicle.
3. 2. A vehicle control method according to claim 1, motoring the engine with the generator; performing regenerative power control to control regenerative power of the drive motor; performing a generated power control for controlling the generated power of the generator; further comprising The input limitation is applied to the regenerative power control, but is not applied to the generated power control. How to control the vehicle.
4. 2. A vehicle control method according to claim 1, motoring the engine with the generator; performing pre-motoring by motoring the engine with the generator at an SOC lower than that of the motoring; further comprising When the first mode is selected, execution of the pre-motoring is prohibited. How to control the vehicle.
5. 2. A vehicle control method according to claim 1, motoring the engine with the generator; regeneration of the drive motor is stopped by limiting the input power to the battery to zero; When the first mode is selected during the execution of motoring, even if a motoring start condition of the first mode is not satisfied, the motoring is continued while a motoring end condition of the first mode is not satisfied. How to control the vehicle.
6. 2. A vehicle control method according to claim 1, a change rate of the input limit in the first mode in response to a change in SOC that is equal to or lower than a response rate of a brake torque compensated for by the friction brake; How to control the vehicle.
7. A method for controlling a vehicle comprising an engine, a generator, a drive motor, and a battery, the engine driving the generator to generate electricity, the generator generating electricity to drive the drive motor, and the regenerative power of the drive motor being supplied to the battery, comprising: The vehicle has a first mode in which braking force compensation by a friction brake is performed during accelerator-off regeneration, which is regeneration by the drive motor in a state where no accelerator operation is performed, and a second mode in which braking force compensation by the friction brake is not performed during accelerator-off regeneration, limiting input to the battery; a voltage of the battery at which input power to the battery becomes zero due to the input limit or a physical property value of the battery that affects the voltage is made different between the first mode and the second mode; When transitioning from the second mode to the first mode, an input limit is used that is obtained by applying a change rate to the input allowable power of the drive motor in the second mode when the first mode is selected and changing the input allowable power according to the change rate. How to control the vehicle.
8. 8. A vehicle control method according to claim 7, a change rate of the input limit obtained by changing the input allowable power in accordance with the change rate being equal to or less than a response rate of a brake torque compensated for by the friction brake; How to control the vehicle.
9. A vehicle comprising an engine, a generator, a drive motor, and a battery, the engine driving the generator to generate electricity, the electric power generated by the generator driving the drive motor, and regenerative electric power of the drive motor being supplied to the battery, The system has a first mode in which braking force compensation by the friction brake is performed during accelerator-off regeneration, which is regeneration by the drive motor when there is no accelerator operation, and a second mode in which braking force compensation by the friction brake is not performed during accelerator-off regeneration, a controller that performs the input limitation by varying a voltage of the battery at which input power to the battery becomes zero or a physical property value of the battery that affects the voltage between the first mode and the second mode; Equipped with the physical property value includes an SOC of the battery, The controller When the first mode is selected, the input limitation is initiated and the regeneration of the drive motor is stopped at a lower SOC than when the second mode is selected.
Citation Information
Patent Citations
Hybrid vehicle
JP2011240904A
Driving device for hybrid vehicle
JP2018154262A
Control method for series hybrid vehicle and series hybrid vehicle
WO2022024273A1