Vehicle transmission control system
The vehicle gear shift control device optimizes gear shift points and power transmission based on road friction to balance regenerative braking and oversteer suppression, improving fuel efficiency and stability in hybrid vehicles.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-04-05
- Publication Date
- 2026-04-14
AI Technical Summary
Conventional hybrid vehicles fail to balance regenerative braking and oversteer suppression in rear-wheel-drive vehicles, leading to reduced fuel efficiency and unstable vehicle behavior.
A vehicle gear shift control device that adjusts gear shift points based on road surface friction coefficient (μ) to optimize regenerative braking and gear shifting, ensuring robustness and stability by delaying or interrupting power transmission when necessary.
Achieves maximum regenerative braking and improved vehicle robustness by optimizing gear shift points and power transmission based on road conditions, enhancing fuel efficiency and stability.
Smart Images

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Abstract
Description
Technical Field
[0001] The technology disclosed herein relates to a shift control device for a vehicle.
Background Art
[0002] For example, Patent Document 1 describes a control device for a hybrid vehicle. This hybrid vehicle includes an engine, a motor, and an automatic transmission. The engine and the motor are connected to the input shaft of the automatic transmission. This hybrid vehicle improves fuel efficiency by causing the motor to perform a regenerative operation when the automatic transmission downshifts.
[0003] In particular, the automatic transmission described in Patent Document 1 has a plurality of friction control mechanisms that independently control a plurality of friction elements. When the control device instructs pilot pressures to the first and second friction control mechanisms among the plurality of friction control mechanisms, it performs delay arithmetic processing on those pilot pressures. According to Patent Document 1, by performing delay arithmetic processing on each pilot pressure, it is possible to take into account a time response delay.
Prior Art Documents
Patent Documents
[0004]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0005] By the way, in a rear-wheel drive vehicle in which the output shaft of the automatic transmission is connected to the rear wheels, when the motor performs a regenerative operation, regenerative braking torque is applied only to the rear wheels. Therefore, for example, when the motor performs a regenerative operation during deceleration, the rear wheels are likely to slip. When that slip state deteriorates, for example, the rear wheels skid during a decelerating turn, and the behavior of the vehicle is likely to fall into a so-called oversteer state.
[0006] Therefore, if the vehicle enters an oversteer state, it is conceivable to discontinue the motor's regenerative braking operation. In other words, if the motor's regenerative braking operation is discontinued, the braking force equivalent to the regenerative braking torque is distributed to the front and rear wheels by the friction brakes, thereby eliminating the rear wheel slip and, consequently, the vehicle's oversteer state. However, discontinuing the regenerative operation is undesirable because it reduces the fuel efficiency of the hybrid vehicle.
[0007] Unfortunately, conventional hybrid vehicles have not adequately considered regenerative braking in situations where oversteer is a concern in rear-wheel-drive vehicles, such as when the rear wheels slip. As a result, they have been unable to achieve both oversteer suppression and sufficient regenerative braking.
[0008] The technology disclosed herein has been developed in view of these points, and its purpose is to achieve both the maximum possible amount of regenerative braking in rear-wheel-drive vehicles and improved robustness. [Means for solving the problem]
[0009] The inventors of this invention analyzed the relationship between gear shifting control, motor regenerative braking, and oversteer during vehicle deceleration. Their analysis revealed that when gear shifting by an automatic transmission and motor regenerative braking occur simultaneously, the vehicle is prone to oversteer.
[0010] However, the likelihood of oversteer is also affected by the road surface coefficient of friction (μ). Specifically, when the road surface coefficient is high, the skidding of the rear wheels is suppressed, making it less likely to oversteer compared to when the road surface coefficient is low. In this case, even if gear shift control and regenerative braking are performed in parallel, it is thought that the occurrence of oversteer will be suppressed.
[0011] Therefore, when the road surface friction coefficient (μ) is high, it is not considered undesirable to set the downshift point (the threshold for the input rotational speed of the automatic transmission), which is the trigger for initiating a downshift during deceleration, higher, and configure the system to initiate a downshift earlier and at a higher rotational speed. Regenerative braking at higher rotational speeds can increase the amount of regenerated energy compared to lower rotational speeds, thus contributing to improved fuel efficiency.
[0012] Conversely, when the road surface friction coefficient (μ) is low, the vehicle is more prone to oversteer compared to when the road surface friction coefficient is high. In this case, it might be possible to prevent the shift control and regenerative braking from operating in parallel, but if shift control is completely disabled, the driving feel will deteriorate, which is undesirable.
[0013] On the other hand, according to the inventors' analysis, after a certain period of time has elapsed since the vehicle began to decelerate, the amount of regenerative braking decreases along with the decrease in the input rotational speed of the automatic transmission. As a result, the vehicle recovers from the slip state, suppressing the occurrence of oversteer, or, if oversteer has already occurred, resolving the condition. However, it has been newly discovered that in this case, the timing of recovery from the slip state is later than the timing of the start of gear shifting. Therefore, if gear shifting occurs without the vehicle recovering from the slip state, oversteer is more likely to occur.
[0014] Therefore, when the vehicle decelerates when the road surface μ is low, we came up with a new idea to configure the system so that the shift control starts after the oversteer condition has been avoided or resolved, by setting the downshift point lower compared to when the road surface μ is high. This led to the present disclosure.
[0015] Specifically, this disclosure relates to a vehicle gear shift control device. This gear shift control device includes an engine mounted on a vehicle that generates the driving force of the vehicle, a motor that generates the driving force of the vehicle and supplies regenerative energy to a battery when the vehicle decelerates, a hydraulically controlled automatic transmission having an input shaft connected to the engine and the motor, and an output shaft connected to the rear wheels of the vehicle, which changes the input rotation at a gear ratio corresponding to a selected gear, and outputs the result, and a controller that performs regenerative control, which applies regenerative braking torque to the rear wheels by causing the motor to perform a regenerative operation, and gear shift control, which changes the gear by outputting a gear shift signal to the automatic transmission according to the rotation speed of the input shaft, at least while the vehicle is decelerating, wherein the controller starts the gear shift control when the rotation speed of the input shaft decreases to a predetermined downshift point when shifting down to the gear.
[0016] Furthermore, according to the present disclosure, during regenerative control, when the vehicle decelerates due to the determination that the road surface μ on the road surface the vehicle is traveling on is lower than a predetermined threshold, the controller sets the downshift point lower than when the vehicle decelerates due to the determination that the road surface μ is equal to or greater than the threshold.
[0017] In this configuration, regenerative control is performed by causing the motor to perform regenerative braking, at least during vehicle deceleration. This regenerative control increases the regenerative energy stored in the battery. The regenerative braking torque from the motor is applied only to the rear wheels through the automatic transmission.
[0018] Furthermore, during vehicle deceleration, the controller outputs a gear shift signal to the automatic transmission corresponding to the input shaft's rotational speed when the input shaft's rotational speed drops to a predetermined downshift point. Upon receiving the gear shift signal, the automatic transmission performs a gear change, that is, a downshift from a high gear to a low gear. During vehicle deceleration, the gear corresponding to the engine's operating state is selected.
[0019] When the vehicle decelerates and the road surface μ is determined to be equal to or higher than a predetermined threshold value, the controller sets the downshift point relatively high. When the road surface μ is high, even if the downshift is configured to start on the high rotation side, the occurrence of an oversteer state is suppressed. Since the regeneration operation on the high rotation side can increase the regeneration amount compared to the low rotation side, it contributes to improving the fuel efficiency performance.
[0020] On the other hand, when the vehicle decelerates and the road surface μ is determined to be lower than a predetermined threshold value, the controller sets the downshift point relatively low so that the downshift is started at a later timing. As a result, the shift control can be started after the oversteer state is avoided, or even if the oversteer state has occurred, the shift control can be started after it is eliminated. By doing so, the behavior of the vehicle can be stabilized, and the robustness of the vehicle can be enhanced.
[0021] As described above, the shift control device according to the present disclosure can achieve both ensuring as much as possible the regeneration amount by the regeneration operation on the high rotation side and improving the robustness by delaying the start timing of the shift control.
[0022] Furthermore, regarding this disclosure When the vehicle accelerates and the controller determines that the road surface μ is lower than the threshold value, Compared to when not accelerating, the maximum speed gear of the aforementioned gear range is temporarily lowered, and upshifts within the range of that maximum speed gear are permitted.
[0023] This disclosure According to this, when the vehicle accelerates and the road surface μ is relatively low, the highest gear of the gear stage is restricted. As a result, when the vehicle changes from acceleration to deceleration, the frequency of downshifts can be reduced. By doing so, the opportunity for oversteer to occur can be reduced, and the behavior of the vehicle can be stabilized.
[0024] Also, in one aspect of the present disclosure This relates to a vehicle gear shift control device. This gear shift control device comprises an engine mounted on the vehicle that generates the driving force of the vehicle, a motor that generates the driving force of the vehicle and supplies regenerative energy to the battery when the vehicle decelerates, a hydraulically controlled automatic transmission having an input shaft connected to the engine and the motor, and an output shaft connected to the rear wheels of the vehicle, which changes the input rotation at a gear ratio corresponding to the selected gear and outputs it, and a controller that performs regenerative control, which applies regenerative braking torque to the rear wheels by causing the motor to perform a regenerative operation, and gear shift control, which changes the gear by outputting a gear shift signal to the automatic transmission according to the rotation speed of the input shaft, at least during the deceleration of the vehicle, wherein the controller starts the gear shift control when the rotation speed of the input shaft decreases to a predetermined downshift point when shifting down to the gear. After the controller sets the downshift point low based on the road surface μ, when the rotational speed of the input shaft drops to the downshift point, Instead of starting to shift gears, Cut off the power transmission between the input shaft and the output shaft。
[0025] According to the above aspect, when the rotational speed of the input shaft drops to a relatively lowly set downshift point, instead of starting a gear shift, the controller interrupts the power transmission between the input shaft and the output shaft. By interrupting the power transmission, the torque acting on the rear wheels decreases. Thereby, it is possible to suppress the destabilization of the vehicle behavior such as the occurrence of an oversteer state, and it is possible to avoid engine stall due to a further decrease in the rotational speed of the engine.
[0026] Also, according to one aspect of the present disclosure This relates to a vehicle gear shift control device. This gear shift control device includes an engine mounted on the vehicle that generates the driving force of the vehicle, a motor that generates the driving force of the vehicle and supplies regenerative energy to the battery when the vehicle decelerates, a hydraulically controlled automatic transmission having an input shaft connected to the engine and the motor, and an output shaft connected to the rear wheels of the vehicle, which changes the input rotation at a gear ratio corresponding to the selected gear, and outputs the result, and a controller that causes the motor to perform a regenerative operation to apply regenerative braking torque to the rear wheels, and a gear shift control that changes the gear by outputting a gear shift signal to the automatic transmission according to the rotation speed of the input shaft, at least during the deceleration of the vehicle. A hydraulic friction brake system that distributes braking force to the front wheels and the rear wheels of the vehicle so as to realize braking when the driver operates the brake pedal (when the brake pedal is operated) The controller is equipped with the following, and when shifting down a gear, it initiates the gear shift control when the rotational speed of the input shaft decreases to a predetermined shift-down point. When the controller performs the regeneration control when it is determined that the road surface μ is higher than the threshold value, in the vehicle deceleration state during the operation of the brake pedal, under the same condition of the road surface μ, compared with the vehicle deceleration state during non-operation of the brake pedal (when the brake pedal is not operated), the downshift point is set higher. 。
[0027] According to the above aspect, during deceleration when the brake pedal is operated, by setting the downshift point relatively high, the rotational speed of the motor during the regeneration operation can be maintained high. By maintaining the rotational speed of the motor high, the regeneration amount can be increased, and thus the fuel consumption performance of the vehicle can be improved.
[0028] On the other hand, during deceleration when the brake pedal is not operated, the driver may change to an acceleration request by stepping on the accelerator pedal. In this case, if the rotational speed of the input shaft of the automatic transmission is maintained high by setting the downshift point relatively high, there is a risk that sufficient driving force cannot be ensured when the driver requests acceleration.
[0029] Therefore, when the brake pedal is not being operated, the controller sets the downshift point of the automatic transmission relatively low. This results in a relatively lower rotational speed of the automatic transmission's input shaft, ensuring sufficient driving force when the driver requests acceleration.
[0030] Furthermore, according to one aspect of the present invention, the gear shift control device includes a hydraulic friction brake system that distributes braking force to the front and rear wheels of the vehicle in order to provide braking when the driver operates the brake pedal. The controller receives signals from a first sensor that outputs a signal relating to the vehicle's behavior and a second sensor that outputs a signal relating to the driver's steering operation, and calculates the difference between the estimated yaw rate of the vehicle and the actual yaw rate of the vehicle. The controller, after interrupting the power transmission between the input shaft and the output shaft, If the aforementioned deviation is increasing, The unstable behavior of the aforementioned vehicle diverges. We have determined that they are doing so. Alternatively, the friction brake system may be instructed to perform control that stabilizes the vehicle's behavior by applying braking force to the front or rear wheels.
[0031] Here, the control systems that stabilize the vehicle's behavior include DSC (Dynamic Stability Control) and ABS (Anti-lock Brake System).
[0032] According to the above embodiment, if the vehicle's unstable behavior diverges even after the power transmission between the input shaft and the output shaft is interrupted, the DSC or ABS will activate, thereby preventing the vehicle's behavior from becoming uncontrollable.
[0033] Furthermore, according to one aspect of this disclosure, the controller is The aforementioned First sensor and The aforementioned The controller may receive a signal from the second sensor to determine if the vehicle is in an oversteer state, and if the vehicle is in an oversteer state, the controller may determine that the vehicle is behaving erratically.
[0034] According to the above embodiment, the controller determines the oversteer state based on the signals from the first sensor and the second sensor. This allows the controller to quickly and accurately determine the behavior of the vehicle. [Effects of the Invention]
[0035] As explained above, this disclosure makes it possible to achieve both the maximum possible amount of regenerative braking in a rear-wheel-drive vehicle and improved robustness. [Brief explanation of the drawing]
[0036] [Figure 1] Figure 1 shows a hybrid vehicle. [Figure 2] Figure 2 shows the fastening table for an automatic transmission. [Figure 3A] Figure 3A is a block diagram of the gear shift control device. [Figure 3B] Figure 3B is a block diagram illustrating the base map of the gear shift points. [Figure 4] Figure 4 is an overall flowchart of the control related to behavioral stability. [Figure 5] Figure 5 illustrates the control function related to behavioral stability. [Figure 6] Figure 6 is a flowchart of the first process. [Figure 7] Figure 7 shows the downshift points for each gear in an automatic transmission. [Figure 8] Figure 8 is a flowchart of the second process. [Figure 9] Figure 9 is a flowchart of the gear shift control process. [Figure 10] Figure 10 is a flowchart of the third process. [Figure 11] Figure 11 is a flowchart of the fourth process. [Figure 12] Figure 12 shows a time chart for delaying downshifts. [Figure 13] Figure 13 is a time chart showing the time it takes for the K1 clutch of the automatic transmission to disengage as a result of delaying the downshift. [Figure 14] Figure 14 is a time chart showing what happens when oversteer is detected during a downshift. [Figure 15] Figure 15 is a flowchart showing a modified example of the second process. [Modes for carrying out the invention]
[0037] The following describes an embodiment of a vehicle's transmission control device with reference to the drawings. The transmission control device described here is illustrative.
[0038] (Hybrid vehicles) Figure 1 shows an automobile 1 (an example of a vehicle) to which the disclosed technology is applied. This automobile 1 is a hybrid automobile capable of running on electricity. The automobile 1 has a total of four wheels: two front wheels 2F and two rear wheels 2R. Friction brakes 31 are attached to both the front wheels 2F and the rear wheels 2R to brake their rotation.
[0039] Automobile 1 is equipped with an engine 4 and a motor 5 as its drive source, which generate the driving force for the automobile 1. These work together to drive the rear wheels 2R, thereby enabling automobile 1 to move. Automobile 1 is a rear-wheel-drive vehicle. In addition to being a drive source, motor 5 is also used as a generator during regenerative braking.
[0040] As described later, this vehicle 1 is equipped with a high-voltage battery 9 with a rated voltage of 50V or less. Power supplied from this high-voltage battery 9, the motor 5 primarily assists the engine 4 in driving (a so-called mild hybrid vehicle). Vehicle 1 may also be a so-called plug-in hybrid vehicle that can receive power from an external power source.
[0041] In this automobile 1, the engine 4 is located at the front of the vehicle, and the drive wheels are located at the rear of the vehicle. In other words, this automobile 1 is a so-called FR (front-engine, rear-wheel drive) vehicle.
[0042] Automobile 1 is equipped with an engine 4, a motor 5, and as part of its drivetrain, a K0 clutch 6, an inverter 7, and an automatic transmission 8. Automobile 1 is also equipped with a controller 20 as part of its control system. Automobile 1 is also equipped with a friction brake system 3, including a friction brake 31, as part of its braking system.
[0043] (Drive system components) Engine 4 is, for example, an internal combustion engine that burns fossil fuels. Engine 4 is also a so-called four-stroke engine that generates rotational power by repeating the intake, compression, expansion, and exhaust cycles. Engine 4 can be of various types and forms, such as spark-ignition engines and compression-ignition engines, but the disclosed technology does not particularly limit the type or form of engine 4.
[0044] In this automobile 1, the engine 4 is positioned approximately in the center of the vehicle width direction, with the crankshaft 4a that outputs rotational power facing in the front-to-rear direction of the vehicle body. The automobile 1 is equipped with various devices and mechanisms associated with the engine 4, such as an intake system, an exhaust system, and a fuel supply system.
[0045] Motor 5 is a permanent magnet type synchronous motor driven by three-phase alternating current. Motor 5 is located in series behind the engine 4 via the K0 clutch 6. Motor 5 is also located in series in front of the automatic transmission 8.
[0046] The K0 clutch 6 is installed between the front end of the shaft 5a of the motor 5 and the crankshaft 4a of the engine 4. The K0 clutch 6 switches between a state in which the crankshaft 4a and shaft 5a are connected (connected state) and a state in which the crankshaft 4a and shaft 5a are separated (separated state).
[0047] The rear end of the motor 5's shaft 5a is connected to the input shaft 8a of the automatic transmission 8. Therefore, the engine 4 is connected to the automatic transmission 8 via the K0 clutch 6 and shaft 5a. By disengaging the K0 clutch 6, the engine 4 is disconnected from the automatic transmission 8.
[0048] While the vehicle 1 is in motion, the K0 clutch 6 is switched between an engaged state and an engaged state. For example, when the vehicle 1 is decelerating, the K0 clutch 6 may be put into the engaged state, and regeneration may be performed with the engine 4 disconnected.
[0049] The motor 5 is connected to a high-voltage battery 9 mounted on the vehicle as a power source via an inverter 7 and a high-voltage cable 40. In the case of this automobile 1, the high-voltage battery 9 is a DC battery with a rated voltage of 50V or less, specifically a 48V battery.
[0050] The high-voltage battery 9 supplies high-voltage DC power to the inverter 7. The inverter 7 converts this DC power into three-phase AC power and energizes the motor 5. This causes the motor 5 to rotate. The motor 5 also supplies regenerative energy back to the high-voltage battery 9.
[0051] The high-voltage battery 9 is also connected to the DC-DC converter 10 via a high-voltage cable 40. The DC-DC converter 10 converts 48V high-voltage DC power to 12V low-voltage DC power and outputs it. The DC-DC converter 10 (its output side) is connected to the low-voltage battery 11 (a so-called lead-acid battery) via a low-voltage cable 41.
[0052] The low-voltage battery 11 is connected to various electrical components via the low-voltage cable 41. The DC-DC converter 10 is also connected to the CAN (Controller Area Network) 12 via the low-voltage cable 41. As a result, the DC-DC converter 10 supplies low-voltage DC power to the CAN 12.
[0053] The automatic transmission 8 is a hydraulically controlled multi-stage automatic transmission (so-called AT). This automatic transmission 8 has an input shaft 8a connected to the engine 4 and an output shaft 8b connected to the drive wheels (rear wheels 2R) of the automobile 1. This automatic transmission 8 can output the rotation input to the input shaft 8a at a gear ratio corresponding to the gear selected by the occupant.
[0054] More specifically, the input shaft 8a is located at the front end of the automatic transmission 8. This input shaft 8a is connected to the shaft 5a of the motor 5, as described above. The output shaft 8b is located at the rear end of the automatic transmission 8. This output shaft 8b rotates independently of the input shaft 8a.
[0055] Between the input shaft 8a and the output shaft 8b, a speed change mechanism consisting of a torque converter 8c, multiple planetary gear mechanisms, and multiple friction fastening elements is incorporated. Each friction fastening element is switched between a fastened state and a disfastened state by hydraulic pressure.
[0056] Figure 2 shows the fastening table for this automatic transmission 8. Circles in the table indicate fastening. This automatic transmission 8 incorporates three clutches consisting of a first clutch CL1, a second clutch CL2, and a third clutch CL3 as friction fastening elements, and two brakes consisting of a first brake BR1 and a second brake BR2.
[0057] The automatic transmission 8 uses hydraulic control to select and engage three elements from these three clutches and two brakes. In doing so, the automatic transmission's gears switch between forward gears from 1st to 8th gear, and reverse gears (reverse speed).
[0058] Specifically, the engagement of the first clutch CL1, the first brake BR1, and the second brake BR2 creates the first gear. The engagement of the second clutch CL2, the first brake BR1, and the second brake BR2 creates the second gear. The engagement of the first clutch CL1, the second clutch CL2, and the second brake BR2 creates the third gear. The engagement of the second clutch CL2, the third clutch CL3, and the second brake BR2 creates the fourth gear. The engagement of the first clutch CL1, the third clutch CL3, and the second brake BR2 creates the fifth gear. The engagement of the first clutch CL1, the third clutch CL3, and the second brake BR2 creates the sixth gear. The engagement of the first clutch CL1, the second clutch CL2, and the third clutch CL3 creates the seventh gear. The engagement of the second clutch CL2, the third clutch CL3, and the first brake BR1 creates the eighth gear. The engagement of the third clutch CL3, the first brake BR1, and the second brake BR2 creates the reverse gear.
[0059] For example, when shifting up from 1st gear, the gear changes from 1st to 2nd gear by engaging the 2nd clutch CL2 instead of the 1st clutch CL1. The gear changes from 2nd to 3rd gear by engaging the 1st clutch CL1 instead of the 1st brake BR1. The gear changes from 3rd to 4th gear by engaging the 3rd clutch CL3 instead of the 1st clutch CL1.
[0060] Shifting up to 5th gear and beyond is done in the same way. Shifting down follows the reverse procedure of shifting up.
[0061] If the elements that should be fastened at each gear are not fastened, the input shaft 8a and the output shaft 8b will be disconnected (so-called neutral). Even if rotational power is input to the automatic transmission 8 from the drive source, that rotational power will not be output from the automatic transmission 8.
[0062] As described later, the automatic transmission 8 may be put into neutral while the vehicle 1 is decelerating. Specifically, when the automatic transmission 8 is in 2nd, 3rd, or 4th gear, the automatic transmission 8 is put into neutral by releasing the second clutch CL2. Also, when the automatic transmission 8 is in 5th, 6th, 7th, or 8th gear, the automatic transmission 8 is put into neutral by releasing the third clutch CL3. In the following explanation, these second clutch CL2 and third clutch CL3 may be collectively referred to as the K1 clutch. Releasing the K1 clutch while the vehicle 1 is decelerating means interrupting the power transmission between the input shaft 8a and the output shaft 8b of the automatic transmission 8, thereby putting the automatic transmission 8 into neutral.
[0063] As shown in Figure 1, the output shaft 8b of the automatic transmission 8 is connected to the differential gear 16 via a propeller shaft 15 that extends in the longitudinal direction of the vehicle body. The differential gear 16 is connected to a pair of drive shafts 17, 17 that extend in the width direction of the vehicle and are connected to the left and right rear wheels 2R, 2R. The rotational power output through the propeller shaft 15 is distributed by the differential gear 16 and then transmitted to each rear wheel 2R through this pair of drive shafts 17, 17.
[0064] (Speed control device) Figure 3A is a block diagram of the transmission control device. The automobile 1 is equipped with the controller 20 described above to control the movement of the automobile 1 by controlling the engine 4, motor 5, K0 clutch 6, automatic transmission 8, friction brake system 3, etc., in response to the driver's operation. The controller 20 consists of hardware such as a processor, memory, and interface, and software such as a database and control program. Although Figure 3A shows a single controller 20 for the transmission control device, the controller of the transmission control device may be divided into a unit (PCM) that mainly controls the operation of the drive source (engine 4 and motor 5) and a unit (TCM) that mainly controls the operation of the K0 clutch 6 and automatic transmission 8. The PCM and TCM are connected by CAN 12 and are configured to communicate with each other electrically. The PCM also serves as a brake ECU for controlling the friction brake system 3. The brake ECU may be separated from the PCM.
[0065] The transmission control device is equipped with sensors that measure various parameters related to the vehicle's operation. Specifically, the transmission control device includes a vehicle speed sensor 51, a wheel speed sensor 52, a steering angle sensor 53, a yaw rate sensor 54, a brake pedal sensor 55, an accelerator pedal position sensor 56, an AT input torque sensor 57, and an AT input rotational speed sensor 58.
[0066] The vehicle speed sensor 51 outputs a signal corresponding to the vehicle speed of car 1. The wheel speed sensor 52 outputs a signal corresponding to the rotational speed of each of the four wheels 2F and 2R of car 1.
[0067] The steering angle sensor 53 outputs a signal corresponding to the rotation angle of the steering wheel 110 (see Figure 1) operated by the driver, i.e., the steering angle. The yaw rate sensor 54 outputs a signal corresponding to the yaw rate of the automobile 1.
[0068] The brake pedal sensor 55 outputs a signal corresponding to the degree to which the brake pedal 19 (see Figure 1) is pressed by the driver. The accelerator pedal position sensor 56 outputs a signal corresponding to the degree to which the accelerator pedal 18 (see Figure 1) is pressed by the driver.
[0069] The AT input torque sensor 57 outputs a signal corresponding to the input torque of the input shaft 8a of the automatic transmission 8. The AT input rotational speed sensor 58 outputs a signal corresponding to the rotational speed of the input shaft 8a of the automatic transmission 8.
[0070] The controller 20 receives the signals output by these sensors via CAN 12. The controller 20 outputs control signals via CAN 12 to the engine 4, inverter 7, K0 clutch 6, automatic transmission 8, and friction brake system 3. In this way, the controller 20 controls the engine 4, motor 5, K0 clutch 6, automatic transmission 8, and friction brake system 3.
[0071] For example, the controller 20 can perform gear shift control to change the gear position of the automatic transmission 8. This gear shift control changes the gear position of the automatic transmission 8 by outputting a gear shift signal to the automatic transmission 8 according to the rotational speed of the input shaft 8a. By changing the gear position, the aforementioned upshifts and downshifts can be achieved. In this case, the controller 20 adjusts the difference in rotational speed between the input shaft 8a and the output shaft 8b before performing the gear position change.
[0072] More specifically, when shifting down a gear, the controller 20 initiates gear shift control (more precisely, adjusting the difference in rotational speed between the input shaft 8a and the output shaft 8b) when the rotational speed of the input shaft 8a drops to a predetermined downshift point. Hereafter, the downshift point will also simply be referred to as the "gear shift point".
[0073] The controller 20 can also control the friction brake system 3. The friction brake system 3 distributes braking force to the front wheels 2F and rear wheels 2R of the vehicle 1 to achieve braking when the driver operates the brake pedal 19. This friction brake system 3 is a hydraulically controlled friction brake system. The level of hydraulic pressure corresponds to the level of braking force distributed by the friction brake 31. That is, when the hydraulic pressure is low, the braking force is lower than when the hydraulic pressure is high.
[0074] Furthermore, the controller 20 according to this embodiment can also perform regenerative control to recover energy. This regenerative control performs regeneration through at least one of the following: distribution of braking force by the friction brake system 3 and application of regenerative braking torque to the rear wheels 2R by the motor 5. In other words, the controller 20 can also perform regeneration through the coordination of braking force distribution and application of regenerative braking torque. Note that even when the friction brake system 3 is not involved in regeneration, such as when the brake pedal 19 is not operated, this is also included in the term "regenerative control" as used herein.
[0075] The controller 20 according to this embodiment can perform the gear shift control and regenerative braking control while the automobile 1 is decelerating.
[0076] (Control related to behavioral stability) <Overall control> Figure 4 shows the overall control of the vehicle's behavioral stability. Note that Figure 4, and the flowcharts in Figures 6, 8-11, and 8-15 (which will be explained later), basically relate to the control of vehicle 1 during deceleration.
[0077] During vehicle deceleration, the controller 20 executes either regenerative cooperative control or second regenerative control as regenerative control, depending on whether the driver is pressing the brake pedal 19. These regenerative actions correspond to so-called "deceleration regeneration."
[0078] More specifically, when the driver is pressing the brake pedal 19 during deceleration, the controller 20 performs regenerative coordinated control, which uses the regenerative braking torque of the motor 5 to supply a portion of the braking force requested by the driver. On the other hand, when the driver is not pressing the brake pedal 19 during deceleration, the controller 20 performs a second regenerative control, which performs regenerative braking equivalent to engine braking.
[0079] Figure 5 illustrates the concept of the control functions related to the behavioral stability of automobile 1. Automobile 1 has three functions: active control, passive control, and DSC / ABS control. Active control functions to keep the grip force of wheels 2F and 2R within the friction circle illustrated in Figure 5. As long as the grip force of wheels 2F and 2R remains within the friction circle, the behavioral stability of automobile 1 is maintained. Active control is a control function for maintaining the behavioral stability of automobile 1.
[0080] The passive control system works by returning the grip force of wheels 2F and 2R back within the friction circle if the grip force of wheels 2F and 2R exceeds the friction circle, causing the behavior of car 1 to become unstable.
[0081] DSC / ABS control functions when the behavior of vehicle 1 is likely to diverge, in other words, when the grip force of wheels 2F and 2R is likely to exceed the circle with the largest diameter, by applying braking force to each wheel 2F and 2R through the friction brake 31, thereby bringing the grip force of wheels 2F and 2R back within the friction circle. DSC / ABS control can employ known technologies.
[0082] Automobile 1, which has three functions, can ensure the stability of the vehicle's behavior.
[0083] In the flow chart of Figure 4, in step S11 after the start, the controller 20 reads the sensor signal. The controller 20 determines the driving state of the vehicle 1. Then, the controller 20 executes the first process (step S12). The first process involves active control and switches the gear shift control according to the road surface μ. Details of the first process will be described later.
[0084] After the first process in step S12, the process moves to the second process (step S13) or the fourth process (step S15). The second process relates to passive control and concerns gear shift control when the vehicle 1 enters an oversteer state. Details of the second process will be described later.
[0085] After step S13, the process moves to either the third process (step S14) or the fourth process (step S15). The third process involves active control, switching the gear shift control according to the slip state of wheels 2F and 2R. Details of the third process will be described later. The fourth process is DSC / ABS control. Details of the fourth process will be described later.
[0086] <First Processing> Figure 6 is a flowchart of the first process. As mentioned above, the first process relates to active control. This first process is performed when "automobile 1 is not in an oversteer state." By performing the first process, the controller 20 can prevent the occurrence of an oversteer state.
[0087] In step S21 after the start, the controller 20 determines whether the road surface μ on the road surface where the automobile 1 is traveling is lower than a predetermined threshold (Low judgment successful?).
[0088] The determination in step S21 may be made, for example, by comparing the road surface μ calculated based on vehicle speed, wheel speed, steering angle, and / or yaw rate with a threshold value. The threshold value to be compared is stored in advance in the controller 20, etc. If the determination in step S21 is No, that is, if the road surface μ is relatively high, the controller 20 proceeds to step S22. On the other hand, if the determination in step S21 is Yes, that is, if the road surface μ is relatively low, the process proceeds to step S25.
[0089] If the process proceeds to step S22, wheels 2F and 2R are relatively less likely to slip. In this case, the grip force of wheels 2F and 2R tends to remain within the friction circle, and the vehicle 1 is less likely to slip, and consequently, less likely to oversteer. Therefore, the controller 20 performs normal gear shift control as shown below.
[0090] In other words, when the controller 20 determines that the road surface μ is higher than the threshold, it sets the gear shift point (downshift point) higher when the brake pedal is operated (when the brake pedal 19 is operated) compared to when the brake pedal is not operated (when the brake pedal 19 is not operated), under the same road surface μ conditions, in the vehicle deceleration state.
[0091] Specifically, in step S22, the controller 20 first determines whether the driver is pressing the brake pedal 19 (brake on?).
[0092] The determination in step S22 can be made based on the signal from the brake pedal sensor 55. If the determination in step S22 is Yes, that is, if the driver is pressing the brake pedal 19 (determined to be brake pedal operation), the process proceeds to step S23. If the determination in step S22 is No, that is, if the driver is not pressing the brake pedal 19 (determined to be non-brake pedal operation), the process proceeds to step S24.
[0093] When the driver is pressing the brake pedal 19, the controller 20 performs regenerative coordinated control, which uses the regenerative braking torque of the motor 5 to supply a portion of the braking force requested by the driver. In addition, the hydraulic pressure of the friction brake 31 can be reduced by the amount of the regenerative braking torque of the motor 5.
[0094] In step S23, which proceeds when the brake pedal 19 is pressed, the controller 20 selects the first gear shift point S1 as the downshift point for the automatic transmission 8.
[0095] Here, Figure 7 illustrates the downshift points for each gear of the automatic transmission 8. In Figure 7, the horizontal axis represents vehicle speed, and the vertical axis represents the rotational speed of the input shaft 8a of the automatic transmission 8. The first gear shift point S1 selected in step S23 is set to a constant rotational speed of the input shaft 8a for each gear, regardless of vehicle speed. The first gear shift point S1 is higher than the second gear shift point S2 and the third gear shift point S3, which will be described later.
[0096] For example, when driving in 6th gear, the rotational speed of the input shaft 8a of the automatic transmission 8 reaches the first gear shift point S1 when the vehicle speed is slightly less than 60 km / h. In this case, the automatic transmission 8 shifts down from 6th gear to 5th gear. Along with the downshift, the rotational speed of the input shaft 8a of the automatic transmission 8, in other words, the rotational speed (output rotational speed) of the motor 5 becomes higher than the first gear shift point S1. By setting the downshift point to the first gear shift point S1 when the driver is pressing the brake pedal 19 and the controller 20 is performing regenerative cooperative control, the rotational speed of the motor 5 during regenerative operation can be maintained at a higher level compared to when it is set to the second gear shift point S2 or the third gear shift point S3. A higher motor rotational speed increases the amount of regeneration, thus improving the fuel efficiency of the automobile 1.
[0097] On the other hand, in step S24, which proceeds when the brake pedal 19 is not pressed, the controller 20 selects a second shift point S2, which is set lower than the first shift point S1, as the downshift point for the automatic transmission 8.
[0098] In other words, if the driver is not pressing the brake pedal 19, the controller 20 does not perform regenerative coordinated control, meaning that the friction brake system 3 does not contribute to regeneration. In this case, the motor 5 applies regenerative braking torque equivalent to engine braking to the rear wheels 2R, thereby performing the regenerative operation. In a deceleration state where the driver is not pressing the brake pedal 19, the driver may press the accelerator pedal 18, which may change the request to acceleration. If the rotational speed of the input shaft 8a of the automatic transmission 8 is kept high by setting the downshift point to the first gear shift point S1, there is a risk that sufficient driving force may not be secured when the driver requests acceleration.
[0099] Therefore, the controller 20 selects the second gear shift point S2 as the downshift point. As shown in Figure 7, the second gear shift point S2, like the first gear shift point S1, is set to a constant rotational speed of the input shaft 8a regardless of the vehicle speed for each gear. The second gear shift point S2 is set lower than the first gear shift point S1, regardless of the vehicle speed. Both the first gear shift point S1 and the second gear shift point S2 are gear shift points selected when the road surface μ is relatively high. Therefore, comparing the first gear shift point S1 and the second gear shift point S2 is equivalent to comparing them under the same road surface μ conditions.
[0100] By selecting the second gear shift point S2 as the downshift point, the rotational speed of the input shaft 8a of the automatic transmission 8 becomes relatively lower during deceleration. This ensures sufficient driving force when the driver requests acceleration.
[0101] On the other hand, if the process proceeds to step S25, wheels 2F and 2R are prone to slipping. In this case, the grip force of wheels 2F and 2R exceeds the friction circle, making it easy for the behavior of the vehicle 1 to become unstable. The controller 20 performs control to prevent the behavior of the vehicle 1 from becoming unstable due to the shifting operation of the automatic transmission 8.
[0102] Specifically, in step S25, the controller 20 first determines whether or not the vehicle 1 is accelerating. If the determination in step S25 is Yes (i.e., if it is determined that the vehicle is accelerating), the process proceeds to step S26. On the other hand, if the determination in step S25 is No (i.e., if it is determined that the vehicle is decelerating), the process proceeds to step S27.
[0103] Here, in step S26, that is, when the vehicle is accelerating and it is determined that the road surface μ is lower than a threshold, the controller 20 restricts upshifts that would change the gear position to a predetermined position or higher.
[0104] More specifically, when car 1 is accelerating, the automatic transmission 8 shifts up as the vehicle speed and / or the rotational speed of the input shaft 8a of the automatic transmission 8 increase. Car 1, while accelerating, will eventually begin to decelerate. When it begins to decelerate, the automatic transmission 8 will shift down in accordance with the deceleration. When the automatic transmission 8 shifts down, the torque fluctuation of the rear wheels 2R is caused by the inertia torque of the automatic transmission 8. If the road surface friction coefficient (μ) is low, the torque fluctuation of the rear wheels 2R due to the downshift may destabilize the behavior of car 1. Therefore, the controller 20 restricts the shift up in step S26.
[0105] Specifically, the controller 20 prohibits upshifts that change the gear ratio to seven or more, such as from 6th gear to 7th gear, and from 7th gear to 8th gear. Therefore, when the process proceeds to step S26, the automatic transmission 8 will temporarily be limited to a maximum of 6th gear. By limiting the maximum gear of the automatic transmission 8, the frequency of downshifts when transitioning from acceleration to deceleration can be reduced. This reduces the opportunities for the vehicle 1's behavior to become unstable, such as the occurrence of oversteer.
[0106] On the other hand, in step S27, that is, during regenerative control, when the vehicle is decelerated and it is determined that the road surface μ is lower than a predetermined threshold, the controller 20 sets the downshift point lower compared to when the vehicle is decelerated and it is determined that the road surface μ is above the threshold.
[0107] More specifically, when the vehicle 1 is decelerating, the automatic transmission 8 downshifts as the vehicle speed and / or the rotational speed of the input shaft 8a of the automatic transmission 8 decreases. The controller 20 performs the downshift when the vehicle speed is as low as possible in order to avoid as much as possible instability in the behavior of the vehicle 1 caused by the downshift.
[0108] Specifically, the controller 20 selects a third gear point S3 as the downshift point of the automatic transmission 8, which is set lower than both the first gear point S1 and the second gear point S2. As shown in Figure 7, the third gear point S3, like the first gear point S1 and the second gear point S2, is set to a constant rotational speed of the input shaft 8a regardless of the vehicle speed for each gear. The third gear point S3 is set lower than the first gear point S1 and the second gear point S2, regardless of the vehicle speed. Comparing the first gear point S1 and the second gear point S2 with the third gear point S3 is equivalent to comparing them under different road surface μ conditions.
[0109] As mentioned above, when transitioning from acceleration to deceleration, the maximum speed is limited to 6th gear. Moreover, the downshift point is the relatively low 3rd gear point S3. For this reason, in step S27, the automatic transmission 8 will not downshift until the vehicle speed drops to approximately 40 km / h, as indicated by the white arrow in Figure 7. Because downshifting does not occur at high vehicle speeds, the instability of the vehicle 1's behavior can be suppressed.
[0110] Next, the controller 20 sets the downshift point to the third gear shift point based on the road surface μ, and then, when the rotational speed of the input shaft 8a drops to the third gear shift point, it disconnects the power transmission between the input shaft 8a and the output shaft 8b.
[0111] Specifically, in step S28 following step S27, the controller 20 disengages the K1 clutch in response to the rotational speed of the input shaft 8a of the automatic transmission 8 decreasing to the third gear shift point S3. As mentioned above, the K1 clutch is a clutch composed of friction engagement elements of the automatic transmission 8. When the K1 clutch is disengaged, power transmission between the input shaft 8a and the output shaft 8b of the automatic transmission 8 is interrupted. Disengaging the K1 clutch reduces the torque acting on the rear wheel 2R, thereby suppressing instability in the behavior of the automobile 1 and preventing engine stall due to a further decrease in the rotational speed of the engine 4.
[0112] After active control in the case of low road surface friction coefficient, the process moves to the fourth step.
[0113] As shown in the fourth process described later, after the controller 20 disconnects the power transmission between the input shaft 8a and the output shaft 8b in step S28, if the unstable behavior of the vehicle 1 diverges, the controller 20 causes the friction brake system 3 to perform control (DSC / ABS control) to stabilize the behavior of the vehicle 1 by applying braking force to the front wheels 2F or the rear wheels 2R.
[0114] Here, Figure 3B is a block diagram illustrating the base set of gear shift points.
[0115] The controller 20 is configured to set appropriate downshift points corresponding to the driving state of the vehicle 1 by referring to the gear shift maps M1 to M3, which define the base set of downshift points, under normal conditions (for example, when there is no risk of the vehicle 1's behavior becoming unstable, such as in an oversteer state).
[0116] In particular, the controller 20 according to this embodiment is configured to select one of a plurality of gear shift maps based on the driving state of the automobile 1. The plurality of gear shift maps are stored, for example, in memory and used by the controller 20 when appropriate.
[0117] Specifically, as shown in Figure 3B, the controller 20 is configured to refer to three shift maps: a regeneration request map M3, a combustion request map M1, and a driving request map M2. The regeneration request map M3 corresponds to the map (third map) used during regenerative cooperative control, that is, when the friction brake system 3 and the motor 5 work together to regenerate and decelerate.
[0118] The combustion request map M1 and the driving request map M2 are maps used during non-regenerative cooperative control, that is, during the second regenerative control described later. These maps are used, for example, when the vehicle 1 is accelerating and when deceleration regeneration is performed using only the motor 5 without involving the friction brake system 3. The combustion request map M1 corresponds to the map used when the accelerator pedal 18 is not operated (when deceleration regeneration is performed using only the motor 5) (first map), and the driving request map M2 corresponds to the map used when the accelerator pedal 18 is operated (second map).
[0119] These maps define multiple shift points corresponding to each gear, at least for downshifts among downshifts and upshifts. Each shift point indicates a threshold rotational speed of the input shaft 8a that triggers the start of a gear change.
[0120] The regeneration request map M3 specifies each gear shift point at a higher rotational speed than both the combustion request map M1 and the driving request map M2. In other words, the regeneration request map M3 is set to maintain a higher rotational speed for the input shaft 8a than both the combustion request map M1 and the driving request map M2.
[0121] On the other hand, the combustion request map M1 specifies each gear shift point at an even lower rotational speed compared to the driving request map M2. In other words, in the driving request map M2, the rotational speed of the input shaft 8a is kept lower than in the regeneration request map M3, but it is set to maintain a higher rotational speed than in the combustion request map M1.
[0122] The controller 20 uses the gear shift points defined for each map as a base set of gear shift points. Then, if certain conditions are met in the first processing, the controller uses the aforementioned first gear shift point S1, second gear shift point S2, and third gear shift point S3 instead of that base set.
[0123] Specifically, when the process proceeds to step S28, the downshift point is set to the third gear shift point S3 instead of the base set value specified for each map. Similarly, when the process proceeds to step S23, the controller 20 sets the downshift point to the first gear shift point S1 instead of the base set value specified for each map. When the process proceeds to step S24, the downshift point is set to the second gear shift point S2 instead of the base set value specified for each map. The first gear shift point S1, the second gear shift point S2, and the third gear shift point S3 are set to the same value for each map, regardless of which of the three maps the controller 20 was referring to.
[0124] <Second Processing> Figure 8 is a flowchart of the second process. As mentioned above, the second process is passive control. In step S31 after the start, the controller 20 determines whether or not an oversteer determination has been made. The controller 20 determines whether or not the vehicle 1 is in an oversteer state based on the difference between the estimated yaw rate, which can be calculated from the vehicle speed and steering angle, and the actual yaw rate based on the signal from the yaw rate sensor 54. If the difference between the estimated yaw rate and the actual yaw rate is greater than or equal to a predetermined value, the controller 20 may determine that the vehicle 1 is in an oversteer state. If the determination in step S31 is No, that is, if the vehicle 1 is not in an oversteer state, passive control is not performed. The process proceeds to the third process. On the other hand, if the determination in step S31 is Yes, that is, if the vehicle 1 is in an oversteer state, the process proceeds to step S32.
[0125] In step S32, the controller 20 determines whether or not brake regeneration is being performed. In other words, it determines whether or not the driver is pressing the brake pedal 19. If the determination in step S32 is Yes, the process proceeds to step S33; if the determination in step S32 is No, the process does not proceed to step S33 but proceeds to step S34.
[0126] When the driver is pressing the brake pedal 19 during deceleration, as mentioned above, regenerative cooperative control is performed in which a portion of the braking force requested by the driver is supplied by the regenerative braking torque of the motor 5. The regenerative braking torque of the motor 5 is applied only to the rear wheel 2R of the rear-wheel-drive vehicle 1. As a result, the lateral force on the rear wheel 2R decreases, making the behavior of the vehicle 1 prone to oversteer.
[0127] Therefore, in step S33, the controller 20 performs torque-up control. Specifically, it increases the input torque of the input shaft 8a of the automatic transmission 8 so that the regenerative braking torque of the motor 5, which had been supplying part of the braking force of the friction brake 31, is eliminated. Torque-up control corresponds to the end of regenerative cooperative control. The friction brake system 3 compensates for the braking force lost due to the elimination of regenerative braking torque with the braking force of the friction brake 31. Even after the regenerative cooperative control ends, regenerative braking torque equivalent to engine braking due to the release of the accelerator remains, and the regenerative operation of the motor 5 continues. Even if the vehicle 1 enters an oversteer state, the amount of regeneration is secured, which is advantageous for improving the fuel efficiency of the vehicle 1.
[0128] As the regenerative braking torque applied to the rear wheel 2R decreases and lateral force is secured on the rear wheel 2R, the oversteer condition of vehicle 1 begins to resolve. The deviation between the estimated yaw rate and the actual yaw rate begins to decrease. The behavior of vehicle 1 can be stabilized while securing as much regeneration as possible. After step S33, the process proceeds to step S34.
[0129] Furthermore, in step S32, when brake regeneration is not performed, that is, when the driver is not pressing the brake pedal 19 during deceleration, a second regenerative control is performed that provides regenerative braking equivalent to engine braking, and since regenerative coordinated control is not performed, the torque increase in step S33 does not occur. Even when the process transitions from step S32 to step S34, the motor 5 performs regenerative operation with regenerative braking torque equivalent to engine braking when the accelerator is released.
[0130] In step S34, the controller 20 determines whether the unstable behavior of the vehicle 1 is diverging. The controller 20 may determine that the unstable behavior of the vehicle 1 is diverging, for example, if the deviation between the estimated yaw rate and the actual yaw rate is increasing. If the determination in step S34 is Yes, the process proceeds to step S35. If the determination in step S34 is No, the process proceeds to step S310.
[0131] In step S35, the controller 20 determines whether the automatic transmission 8 is shifting gears (i.e., out of gear). If the automatic transmission 8 is not shifting gears (i.e., Yes), the process proceeds to step S36. If the automatic transmission 8 is shifting gears (i.e., No), the process proceeds to step S310.
[0132] In step S36, the controller 20 delays the downshift of the automatic transmission 8. That is, even when the vehicle 1 reaches the downshift point, the controller 20 prohibits the downshift of the automatic transmission 8 until the oversteer condition of the vehicle 1 is resolved. As mentioned above, the downshift of the automatic transmission 8 is accompanied by torque fluctuations in the rear wheels 2R, which may further destabilize the behavior of the vehicle 1, but prohibiting the downshift suppresses further destabilization of the vehicle 1's behavior. The downshift point is normally the first gear shift point S1 or the second gear shift point S2 of the gear shift control.
[0133] In the following step S37, the controller 20 determines whether the oversteer condition of the vehicle 1 has been resolved. The controller 20 may determine that the oversteer condition of the vehicle 1 has been resolved if the deviation between the estimated yaw rate and the actual yaw rate falls below a predetermined value. If the oversteer condition of the vehicle 1 has been resolved, the process proceeds to the fourth process. If the oversteer condition of the vehicle 1 has not been resolved, the process proceeds to step S38.
[0134] In step S38, the controller 20 determines whether the rotational speed of the input shaft 8a of the automatic transmission 8 has reached the third shift point S3. If the rotational speed of the input shaft 8a has reached the third shift point S3, the process proceeds to step S39; otherwise, the process proceeds to the fourth process. As mentioned above, the third shift point S3 is a downshift point that takes engine stall into consideration.
[0135] In step S39, the controller 20 releases the K1 clutch of the automatic transmission 8, similar to step S28 of the first process. This prevents engine stalling. The process then proceeds to the fourth process.
[0136] Thus, if the vehicle 1 enters an oversteer state while decelerating using regenerative cooperative control or second regenerative control, the downshift of the automatic transmission 8 is delayed. This prevents the vehicle's behavior from becoming even more unstable due to the downshift. Furthermore, if the downshift of the automatic transmission 8 is delayed, the rotational speed of the input shaft 8a of the automatic transmission 8 decreases, which could lead to engine stall. However, once the rotational speed of the input shaft 8a of the automatic transmission 8 reaches the limit rotational speed (i.e., the third gear shift point S3), the power transmission between the input shaft 8a and the output shaft 8b of the automatic transmission 8 is interrupted, thus preventing engine stall.
[0137] On the other hand, if the vehicle 1 is in an oversteer state and the automatic transmission 8 is downshifting (if step S35 is No), or if the delayed downshift is performed after the oversteer state of the vehicle 1 has been resolved (if step S34 is No), the controller 20 performs gear shift control in step S310 when oversteer is detected. Details of this gear shift control will be described later. Simply put, the torque of the rear wheels 2R fluctuates due to the inertia of the automatic transmission 8 when downshifting. In the gear shift control in step S310 when oversteer is detected, the input torque of the input shaft 8a of the automatic transmission 8 is increased compared to the input torque during normal gear shift control, i.e., when oversteer is not detected, so that the torque fluctuation of the rear wheels 2R due to inertia is suppressed. As a result of the relatively increased amount of input torque, torque fluctuations are suppressed even when downshifting is performed, and the deterioration of the instability of the vehicle 1's behavior due to downshifting is suppressed.
[0138] In the following step S311, the controller 20 determines whether or not brake regeneration is in progress. If it is Yes, the process proceeds to step S312. On the other hand, if it is No, the process proceeds from step S311 to the fourth process.
[0139] In step S312, the controller 20 discontinues regenerative cooperative control and secures the braking force that was previously provided by the regenerative braking torque of the motor 5 using the friction brake 31, achieving a deceleration that matches the braking required by the driver. Even after the regenerative cooperative control ends, the regenerative braking torque equivalent to the engine braking that occurs when the accelerator is released remains, and the regenerative operation of the motor 5 continues.
[0140] <Speed change processing> Figure 9 is a flowchart of the gear shift control. In step S41 after starting, the controller 20 reads the AT input torque and the AT input rotational speed. The process then proceeds to steps S42 and S44, respectively.
[0141] In step S42, the controller 20 sets the target acceleration fluctuation for shifting gears of the automatic transmission 8. The target acceleration fluctuation is the target value of the acceleration fluctuation that occurs in the vehicle 1 when the automatic transmission 8 shifts gears. Basically, the higher the AT input rotational speed, the larger the target acceleration fluctuation is set to be. When the AT input rotational speed is high, it is acceptable for the driver to feel the shift up or down. The target acceleration fluctuation is determined from the gear position of the automatic transmission 8 and the AT input rotational speed, based on the relational formula or map set for each of the up and down shifts.
[0142] In the following step S43, the controller 20 calculates the AT output torque from the set target acceleration fluctuation. The AT output torque is the torque fluctuation of the output shaft 8b when the automatic transmission 8 shifts gears.
[0143] Meanwhile, in step S44, the controller 20 sets the target shift time for the automatic transmission 8 during gear changes. Basically, the higher the AT input rotational speed, the shorter the target shift time is set. When the AT input rotational speed is high, it is required that the upshift or downshift be completed quickly. The target shift time is determined from the gear position of the automatic transmission 8 and the AT input rotational speed, based on the relational formula or map set for upshifts and downshifts, respectively.
[0144] In the following step S45, the controller 20 calculates the AT input rotational slope from the set target shift time. The AT input rotational slope is the rate of change of the rotational speed of the input shaft 8a during gear shifting of the automatic transmission 8.
[0145] After steps S43 and S45, the process proceeds to step S46. In step S46, the controller 20 determines whether or not correction of the calculated AT output torque and / or AT input rotational inclination is necessary. As described in step S310 of the second process above, when the vehicle 1 shifts gears in an oversteer state, it is necessary to suppress the torque fluctuation of the rear wheel 2R associated with the downshift in order to stabilize the behavior of the vehicle 1. In this case, the controller 20 determines in step S46 that correction is necessary. If the determination in step S46 is Yes, the process proceeds to step S47, where the calculated AT output torque and / or AT input rotational inclination are corrected. Specifically, in gear shift control when oversteer is detected, correction is made so that the torque fluctuation of the rear wheel 2R is suppressed, or in other words, so that the AT output torque becomes flat. When an oversteer state is detected, the target acceleration fluctuation is made smaller than when an oversteer state is not detected. After the correction, the process proceeds to step S48. On the other hand, if the decision in step S46 is No, that is, in normal gear shift control where no correction is needed, the process does not proceed to step S47 but proceeds to step S48.
[0146] Furthermore, in the first cooperative gear shift control in step S54 and the second cooperative gear shift control in step S55 of the third process described later, the correction in step S47 is also performed to suppress torque fluctuations of the rear wheel 2R during gear shifting.
[0147] In step S48, the controller 20 calculates the AT input torque based on the AT output torque and the AT input rotational inclination. The AT input torque is the torque input to the input shaft 8a of the automatic transmission 8, and the AT input torque is mainly adjusted by the motor 5. When a downshift is performed in step S310 of the second process described above, the amount of increase in the AT input torque is greater than the amount of increase during a normal downshift (i.e., when an oversteer condition is not detected and no correction is applied) as a result of the correction performed in step S47.
[0148] Once the AT input torque is calculated, in the following step S49, the controller 20 calculates the hydraulic pressure to be supplied to the friction engagement elements of the automatic transmission 8 to correspond to the calculated AT input torque. By supplying hydraulic pressure to the friction engagement elements according to the set hydraulic pressure, the automatic transmission 8 performs a downshift or upshift.
[0149] <Third Processing> Figure 10 is a flowchart of the third process. As mentioned above, the third process is active control. In step S51 after the start, the controller 20 determines whether a slip determination has been made. The controller 20 may determine the slip state of each wheel 2F and 2R based, for example, on the vehicle speed and wheel speed. If the determination in step S51 is Yes, that is, if it is determined that wheels 2F and 2R are slipping, the process proceeds to step S52. If it is No, that is, if it is determined that wheels 2F and 2R are not slipping, the process proceeds to step S53.
[0150] In step S53, the controller 20 determines whether a turning determination has been made. The controller 20 may determine the turning state of the vehicle 1 based, for example, on the steering angle and the yaw rate. If the determination in step S53 is Yes, that is, if it is determined that the vehicle 1 is in a turning state, the process proceeds to step S52. If the determination is No, that is, if it is determined that the vehicle 1 is not in a turning state, the process proceeds to step S56.
[0151] In step S56, the controller 20 performs normal gear shift control. That is, since wheels 2F and 2R are not in a slipping state and the vehicle 1 is moving straight, there is a low possibility that the vehicle 1 will become unstable when the automatic transmission 8 shifts gears. In step S56, the correction in step S47 in the gear shift control flow of Figure 9 is not performed.
[0152] On the other hand, in steps S52, S54, and S55, if wheels 2F and 2R are in a slipping state, or if the vehicle 1 is in a turning state, and the automatic transmission 8 shifts gears in this state, causing the torque of the rear wheel 2R to fluctuate, the behavior of the vehicle 1 may become unstable. Therefore, the controller 20 performs control to prevent the behavior of the vehicle 1 from becoming unstable.
[0153] First, in step S52, the controller 20 determines whether or not brake regeneration is being performed. If the answer is Yes, indicating that brake regeneration is in progress, the process proceeds to step S54. On the other hand, if the answer is No, indicating that brake regeneration is not in progress, the process proceeds to step S55.
[0154] When regenerative braking is performed, the controller 20 performs coordinated control of the friction brake system 3, the motor 5, and the automatic transmission 8. Specifically, in step S54, the automatic transmission 8 performs gear shift control so as to suppress torque fluctuations in the rear wheels 2R associated with gear shifting. In step S54, the correction in step S47 of the gear shift control flow in Figure 9 is performed. In addition, the friction brake system 3 and / or the motor 5 apply torque to the rear wheels 2R to compensate for torque fluctuations during gear shifting. As a result, instability in the behavior of the vehicle 1 is suppressed.
[0155] If regenerative braking is not being performed, the controller 20 performs coordinated control of the motor 5 and the automatic transmission 8. In step S55, the automatic transmission 8 performs gear shift control so as to suppress torque fluctuations in the rear wheels 2R associated with gear shifting. In step S55, the correction in step S47 of the gear shift control flow in Figure 9 is also performed. In addition, the motor 5 applies torque to the rear wheels 2R to compensate for torque fluctuations during gear shifting. As a result, instability in the behavior of the automobile 1 is suppressed.
[0156] After the third process, the process proceeds to the fourth process.
[0157] <Fourth Processing> Figure 11 is a flowchart of the fourth process. The fourth process is DSC / ABS control. In step S61 after the start, the controller 20 determines whether the unstable behavior of the vehicle 1 is diverging. If the unstable behavior of the vehicle 1 is diverging, the process proceeds to step S62. If the unstable behavior of the vehicle 1 is not diverging, DSC / ABS control is not necessary, and the fourth process ends.
[0158] In step S62, the controller 20 determines whether the brake is applied or not. If the driver is pressing the brake pedal 19 (i.e., Yes), the process proceeds to step S63; if the driver is not pressing the brake pedal 19 (i.e., No), the process proceeds to step S64.
[0159] In step S63, since the brakes are applied, DSC control or ABS control is executed to stabilize the unstable behavior of vehicle 1. In step S64, since the brakes are released, DSC control is executed to stabilize the unstable behavior of vehicle 1.
[0160] If the unstable behavior of the automobile 1 is resolved by the control intervention in step S63 or step S64, the fourth process ends.
[0161] <Control Example> Next, the second process will be explained with reference to the time charts in Figures 12-14. Each time chart includes changes in brake pedal operation amount and brake fluid pressure, changes in steering angle (measured by steering angle sensor 53), changes in gear position, changes in yaw rate (measured by yaw rate sensor 54), changes in regenerative braking torque, changes in AT input torque, changes in the transmission ratio of the automatic transmission 8, and changes in AT input rotational speed.
[0162] First, Figure 12 is a time chart showing the case where downshifting of the automatic transmission 8 is prohibited until the oversteer condition of the automobile 1 is resolved. At time t1, the driver starts pressing the brake pedal 19. The controller 20 starts regenerative cooperative control. Based on the signal from the controller 20, the friction brake system 3 lowers the brake fluid pressure in relation to the amount of operation of the brake pedal 19, which is shown by the dashed line. The braking force of the friction brake 31 decreases by that amount. The motor 5 increases the regenerative braking torque to compensate for the decrease in the braking force of the friction brake 31. This ensures that regenerative energy is secured, which is advantageous for improving the fuel efficiency of the automobile 1. Because the regenerative braking torque increases, the torque input to the input shaft 8a of the automatic transmission 8 decreases.
[0163] At time t2, the driver begins to steer the steering wheel 110. Consequently, the steering angle gradually increases. As the car 1 begins to turn, the yaw rate gradually increases.
[0164] At time t3, vehicle 1 enters an oversteer state, and the deviation between the actual yaw rate and the estimated yaw rate becomes large. In order to terminate the regenerative cooperative control, the controller 20 increases the input torque of the input shaft 8a of the automatic transmission 8 (torque increase, step S33) so that the regenerative braking torque of motor 5, which had been supplying part of the braking force of the friction brake 31, is eliminated. As a result, the regenerative braking torque is reduced. However, even after time t3, the regenerative braking torque equivalent to the engine braking due to releasing the accelerator remains, and the regenerative operation of motor 5 itself continues. In addition, the hydraulic pressure of the friction brake 31 is increased to compensate for the decrease in the regenerative braking torque of motor 5.
[0165] As vehicle 1 decelerates, the AT input rotational speed gradually decreases. After time t3, even if the AT input rotational speed reaches the first gear shift point S1, that is, the gear shift point set in the case of regenerative cooperative control, the controller 20 does not cause the automatic transmission 8 to perform a downshift. The downshift of the automatic transmission 8 is delayed (step S36).
[0166] As a result of the aforementioned torque increase, the regenerative braking torque applied to the rear wheel 2R decreases, and lateral force is secured on the rear wheel 2R, thus resolving the oversteer state of the vehicle 1. At time t4, once the oversteer state of the vehicle 1 is resolved, the controller 20 causes the automatic transmission 8 to perform the delayed downshift (transition from step S34 to step S310). Specifically, the increased torque of the motor 5 increases the input torque of the input shaft 8a of the automatic transmission 8 compared to normal shift control (see the "increase" arrow). This suppresses the torque fluctuation of the rear wheel 2R due to inertia during downshifting, thus preventing the vehicle 1 from becoming unstable immediately after the oversteer state is resolved.
[0167] Then, at time t5, the downshift of automatic transmission 8 is completed.
[0168] Furthermore, when the automatic transmission 8 downshifts after the oversteer condition of automobile 1 has been resolved, the normal gear shift control may be performed instead of the gear shift control used when oversteer was detected. In other words, the increase in torque of motor 5 during downshifting may be suppressed.
[0169] Figure 13 is a time chart showing the case where downshifting of the automatic transmission 8 is prohibited until the oversteer condition of vehicle 1 is resolved. The time chart in Figure 13 differs from the time chart in Figure 12 in that the AT input rotational speed reaches the third gear shift point S3.
[0170] In the time chart of Figure 13, as in the time chart of Figure 12, the driver begins to press the brake pedal 19 at time t1, the driver begins to steer the steering wheel 110 at time t2, and the car 1 enters an oversteer state at time t3. The controller 20 increases the input torque of the input shaft 8a of the automatic transmission 8 (torque increase) so that the regenerative braking torque of the motor 5, which was supplying part of the braking force of the friction brake 31, is eliminated in order to terminate the regenerative cooperative control. This reduces the regenerative braking torque. The regenerative operation of the motor 5 continues even after time t3. The shifting of the automatic transmission 8 is delayed.
[0171] As the vehicle 1 decelerates, the AT input rotational speed gradually decreases, and at time t4, the AT input rotational speed reaches the third shift point S3. The third shift point S3 is a downshift point that takes engine stall into consideration. The controller 20 disengages the K1 clutch of the automatic transmission 8. As a result, the AT input rotational speed decreases, and the transmission ratio, which is the speed ratio between the input shaft 8a and the output shaft 8b of the automatic transmission 8, decreases.
[0172] Furthermore, the oversteer condition is resolved by increasing the torque of the input shaft 8a. After the oversteer condition is resolved, the automatic transmission 8 performs a downshift.
[0173] Figure 14 is a time chart showing what happens when the vehicle 1 enters an oversteer state while the automatic transmission 8 is shifting gears. In the time chart of Figure 14, as in the time chart of Figure 12, the driver starts pressing the brake pedal 19 at time t1, and the driver starts steering the steering wheel 110 at time t2. The controller 20 performs regenerative braking control.
[0174] At time t3, the AT input rotational speed reaches the first shift point S1, so the automatic transmission 8 performs a downshift. Since the vehicle 1 is turning, the first cooperative shift control of the third process (step S54) is executed. As illustrated in Figure 14, the hydraulic pressure of the friction brake 31 is adjusted from time t4 onwards in accordance with the downshift of the automatic transmission 8.
[0175] At time t5 during gear shifting, the vehicle 1 enters an oversteer state. As per steps S310-S312 of the second process, the controller 20 increases the input torque of the input shaft 8a of the automatic transmission 8 (torque increase) in order to discontinue regenerative cooperative control, and also increases the input torque of the input shaft 8a of the automatic transmission 8 compared to normal gear shift control by increasing the torque of the motor 5. The torque increase for discontinuing regenerative cooperative control and the torque increase for gear shifting may be performed substantially simultaneously or with a timing difference. By securing lateral force on the rear wheels 2R and suppressing torque fluctuations during gear shifting, the deterioration of the vehicle 1's behavior is prevented. In addition, the hydraulic pressure of the friction brake 31 is increased to compensate for the decrease in the regenerative braking torque of the motor 5. Furthermore, the motor 5 performs regenerative operation with a regenerative braking torque equivalent to engine braking.
[0176] Then, at time t6, the downshift of automatic transmission 8 is completed.
[0177] (modified version) Figure 15 shows a modified version of the second process. This modified version differs from the flow in Figure 8 in that it does not delay the downshift. In step S71 after the start, the controller 20 determines whether or not an oversteer determination has been made. If the determination in step S71 is No, passive control is not performed. If the determination in step S71 is Yes, the process proceeds to step S72.
[0178] In step S72, the controller 20 determines whether or not brake regeneration is being performed. If the determination in step S72 is Yes, the process proceeds to step S73; if the determination in step S72 is No, the process does not proceed to step S73 but proceeds to step S74.
[0179] In step S73, the controller 20 performs torque-up control. This terminates the regenerative cooperative control. The regenerative braking torque applied to the rear wheel 2R decreases, and lateral force on the rear wheel 2R is secured, thus resolving the oversteer state of the vehicle 1. After step S73, the process proceeds to step S74. From step S74 onward, the motor 5 performs regenerative operation with a regenerative braking torque equivalent to engine braking when the accelerator is released. Even if the vehicle 1 is in an oversteer state, the amount of regeneration is secured as much as possible, which is advantageous for improving the fuel efficiency of the vehicle 1.
[0180] In step S74, the controller 20 determines whether the unstable behavior of the vehicle 1 is diverging. If the determination in step S74 is Yes, the process proceeds to step S75. If the determination in step S74 is No, the process proceeds to step S710.
[0181] In step S75, the controller 20 determines whether the automatic transmission 8 is shifting gears or not. If the automatic transmission 8 is not shifting gears (i.e., Yes), the process proceeds to step S76. If the automatic transmission 8 is shifting gears (i.e., No), the process proceeds to step S710.
[0182] In step S76, the controller 20 determines whether the rotational speed of the input shaft 8a of the automatic transmission 8 has reached the first shift point S1. If the rotational speed of the input shaft 8a has reached the first shift point S1, the process proceeds to step S77; otherwise, the process proceeds to the fourth process. As mentioned above, the first shift point S1 is the downshift point when regenerative cooperative control is being performed. In addition, in step S76, the controller 20 may also determine whether the rotational speed of the input shaft 8a of the automatic transmission 8 has reached the second shift point S2.
[0183] In step S77, the controller 20 disengages the K1 clutch of the automatic transmission 8. Since the automatic transmission 8 does not downshift, the instability of the vehicle 1's behavior caused by downshifting is suppressed.
[0184] Thus, in the second modification, when the vehicle 1 is in an oversteer state, the K1 clutch is released and the automatic transmission 8 does not downshift. This suppresses further instability of the vehicle 1's behavior due to gear changes. In addition, engine stall can be avoided.
[0185] On the other hand, if the vehicle 1 is in an oversteer state and the automatic transmission 8 is downshifting (if step S75 is No), or if the downshift is performed after the oversteer state of the vehicle 1 has been resolved (if step S74 is No), the controller 20 performs gear shift control in step S710 when oversteer is detected. Since torque fluctuations are suppressed even when downshifting is performed, the deterioration of the instability of the vehicle 1's behavior is suppressed.
[0186] In the following step S711, the controller 20 determines whether or not brake regeneration is in progress. If it is Yes, the process proceeds to step S712. On the other hand, if it is No, the process proceeds from step S711 to the fourth process.
[0187] In step S712, the controller 20 discontinues regenerative cooperative control and secures the braking force that was previously supplied by the regenerative braking torque of the motor 5 using the friction brake 31, thereby achieving a deceleration that matches the braking required by the driver.
[0188] The disclosed technology is not limited to the embodiments described above, but also encompasses various other configurations. For example, the configuration of automobile 1 is illustrative. Its configuration can be modified as appropriate depending on the specifications.
[0189] In the flows shown in Figures 4, 6, 8-11, and 15, it is possible to change the order of the steps, omit some steps, or add other steps.
[0190] (summary) As described above, according to this embodiment, regenerative control is performed by causing the motor 5 to perform a regenerative operation at least during the deceleration of the automobile 1. This regenerative control increases the regenerative energy stored in the high-voltage battery 9. The regenerative braking torque from the motor 5 is applied only to the rear wheels 2R through the automatic transmission 8.
[0191] Furthermore, while the vehicle 1 is decelerating, the controller 20, acting as a control device, outputs a gear shift signal to the automatic transmission 8 corresponding to the rotational speed of the input shaft 8a when the rotational speed of the input shaft 8a decreases to a predetermined downshift point. Upon receiving the gear shift signal, the automatic transmission 8 performs a gear change, that is, a downshift from a high gear to a low gear. During the deceleration of the vehicle 1, a gear corresponding to the operating state of the engine 4 is selected.
[0192] When the vehicle decelerates due to the road surface friction coefficient (μ) being determined to be above a predetermined threshold, the controller 20 sets the downshift point to the relatively higher first gear shift point S1 or second gear shift point S2. Even if the system is configured to start downshifting at high RPMs when the road surface friction coefficient is high, the occurrence of oversteer is suppressed. Regenerative braking at high RPMs can increase the amount of regeneration compared to low RPMs, thus contributing to improved fuel efficiency.
[0193] On the other hand, when the vehicle decelerates due to the road surface μ being determined to be lower than a predetermined threshold, the controller 20 sets the downshift point to a relatively lower third gear point S3 so that the downshift starts at a later timing. This makes it possible to start the gear shift control after an oversteer condition has been avoided, or even if an oversteer condition has occurred, to start the gear shift control after it has been resolved. This stabilizes the behavior of the vehicle 1 and makes it possible to increase the robustness of the vehicle.
[0194] Thus, the gear shift control device according to this embodiment can achieve both the maximum possible amount of regeneration through regenerative operation at high rotational speeds and improved robustness by delaying the start timing of gear shift control.
[0195] Furthermore, as explained using step S26 in Figure 6, when the road surface μ is relatively low, a restriction is placed on the highest gear during vehicle acceleration. This reduces the frequency of downshifts when the vehicle 1 transitions from acceleration to deceleration. This reduces the opportunities for oversteer to occur and stabilizes the behavior of the vehicle 1.
[0196] Furthermore, as explained using step S28 in Figure 6, after the controller 20 sets the downshift point to the third shift point S3 based on the road surface μ, if the rotational speed of the input shaft 8a decreases to the third shift point S3, instead of starting the gear change, it disconnects the power transmission between the input shaft 8a and the output shaft 8b. By disconnecting the power transmission, the torque acting on the rear wheels 2R decreases. This suppresses instability in the vehicle's behavior, such as the occurrence of oversteer, and also prevents engine stall due to a further decrease in the rotational speed of the engine 4.
[0197] Furthermore, as explained using step S23 in Figure 6, when decelerating during operation of the brake pedal 19, the rotational speed of the motor 5 during regenerative operation can be maintained at a high level by setting the downshift point to the relatively high first gear shift point S1. Maintaining a high rotational speed of the motor 5 increases the amount of regeneration, and consequently improves the fuel efficiency of the automobile 1.
[0198] On the other hand, when decelerating without operating the brake pedal 19 (when the brake pedal is not operated), the driver may press the accelerator pedal 18, which can change the request to acceleration. In this case, if the rotational speed of the input shaft 8a of the automatic transmission 8 is kept high by setting the downshift point relatively high, there is a risk that sufficient driving force cannot be secured when the driver requests acceleration.
[0199] Therefore, as explained using step S24 in Figure 6, when the brake pedal 19 is not operated, the controller 20 sets the downshift point of the automatic transmission 8 to the second shift point S2, which is lower than the first shift point S1. As a result, the rotational speed of the input shaft 8a of the automatic transmission 8 becomes relatively lower, so that sufficient driving force can be secured when the driver requests acceleration.
[0200] Furthermore, as explained using steps S61 to S64 in Figure 11, which follow step S28 in Figure 6, if the unstable behavior of the automobile 1 still diverges even after the power transmission between the input shaft 8a and the output shaft 8b is interrupted, the loss of control over the behavior of the automobile 1 can be avoided by activating DSC or ABS.
[0201] Furthermore, the controller 20 according to this embodiment receives signals from a yaw rate sensor 54 that outputs signals related to the behavior of the automobile 1 and a steering angle sensor 53 that outputs signals related to the driver's steering operation, and determines the oversteer state of the automobile 1.
[0202] According to this, the controller 20 determines the oversteer state based on the signals from the yaw rate sensor and the steering angle sensor 53. This allows the controller 20 to quickly and accurately determine the behavior of the automobile 1. [Explanation of symbols]
[0203] 1. Automobile (vehicle) 19 Brake pedal 110 Steering Wheel 20 Controllers 2F Front Wheel 2R rear wheel 3. Friction Brake System 4 engines 5 Motors 53. Steering angle sensor (second sensor) 54 Yaw rate sensor (first sensor) 8 Automatic transmission 8a Input axis 8b Output shaft 9 High-voltage battery
Claims
1. An engine mounted on a vehicle and generating the driving force for the vehicle, A motor that generates the driving force for the vehicle and supplies regenerative energy to the battery when the vehicle decelerates, A hydraulically controlled automatic transmission having an input shaft connected to the engine and the motor, and an output shaft connected to the rear wheel of the vehicle, which changes the input rotation at a gear ratio corresponding to the selected gear and outputs it, The system includes a controller that performs regenerative control, which applies regenerative braking torque to the rear wheels by causing the motor to perform regenerative operation, and gear shift control, which changes the gear position by outputting a gear shift signal to the automatic transmission according to the rotational speed of the input shaft, at least during the deceleration of the vehicle. The controller initiates the gear shift control when the rotational speed of the input shaft decreases to a predetermined downshift point during a downshift of the gear ratio. During regenerative control, when the vehicle decelerates due to the determination that the road surface μ on the road surface the vehicle is traveling on is lower than a predetermined threshold, the controller sets the downshift point lower compared to when the vehicle decelerates due to the determination that the road surface μ is equal to or greater than the threshold. When the controller determines that the road surface μ is lower than the threshold, during vehicle acceleration, it temporarily lowers the highest gear of the transmission compared to when not accelerating, and allows upshifting within the range of the highest gear. A vehicle gear shift control device characterized by the following features.
2. An engine mounted on a vehicle and generating the driving force of the vehicle, A motor that generates the driving force for the vehicle and supplies regenerative energy to the battery when the vehicle decelerates, A hydraulically controlled automatic transmission having an input shaft connected to the engine and the motor, and an output shaft connected to the rear wheel of the vehicle, which changes the input rotation at a gear ratio corresponding to the selected gear and outputs it, The system includes a controller that performs regenerative control, which applies regenerative braking torque to the rear wheels by causing the motor to perform regenerative operation, and gear shift control, which changes the gear position by outputting a gear shift signal to the automatic transmission according to the rotational speed of the input shaft, at least during the deceleration of the vehicle. The controller initiates the gear shift control when the rotational speed of the input shaft decreases to a predetermined downshift point during a downshift of the gear ratio. During regenerative control, when the vehicle decelerates due to the determination that the road surface μ on the road surface the vehicle is traveling on is lower than a predetermined threshold, the controller sets the downshift point lower compared to when the vehicle decelerates due to the determination that the road surface μ is equal to or greater than the threshold. After the controller sets the downshift point low based on the road surface μ, if the rotational speed of the input shaft drops to the downshift point, instead of starting a gear change, it disconnects the power transmission between the input shaft and the output shaft. A vehicle gear shift control device characterized by the following features.
3. An engine mounted on a vehicle and generating the driving force of the vehicle, A motor that generates the driving force for the vehicle and supplies regenerative energy to the battery when the vehicle decelerates, A hydraulically controlled automatic transmission having an input shaft connected to the engine and the motor, and an output shaft connected to the rear wheel of the vehicle, which changes the input rotation at a gear ratio corresponding to the selected gear and outputs it, A controller that performs regenerative control, which applies regenerative braking torque to the rear wheels by causing the motor to perform regenerative operation, and gear shift control, which changes the gear position by outputting a gear shift signal to the automatic transmission according to the rotational speed of the input shaft, at least during the deceleration of the vehicle, The vehicle comprises a hydraulic friction brake system that distributes braking force to the front and rear wheels of the vehicle in order to apply braking when the driver operates the brake pedal, The controller initiates the gear shift control when the rotational speed of the input shaft decreases to a predetermined downshift point during a downshift of the gear ratio. During regenerative control, when the vehicle decelerates due to the determination that the road surface μ on the road surface the vehicle is traveling on is lower than a predetermined threshold, the controller sets the downshift point lower compared to when the vehicle decelerates due to the determination that the road surface μ is equal to or greater than the threshold. When the controller determines that the road surface μ is higher than the threshold, during the regenerative control, it sets the downshift point higher in the vehicle deceleration state when the brake pedal is operated compared to the vehicle deceleration state when the brake pedal is not operated, under the same road surface μ conditions. A vehicle gear shift control device characterized by the following features.
4. In the vehicle gear control device described in claim 2, The vehicle is equipped with a hydraulic friction brake system that distributes braking force to the front and rear wheels to achieve braking when the driver operates the brake pedal, The controller receives signals from a first sensor that outputs a signal relating to the vehicle's behavior and a second sensor that outputs a signal relating to the driver's steering operation, and calculates the difference between the estimated yaw rate of the vehicle and the actual yaw rate of the vehicle. After the controller disconnects the power transmission between the input shaft and the output shaft, if the deviation is increasing, it determines that the vehicle's unstable behavior is diverging and causes the friction brake system to perform control to stabilize the vehicle's behavior by applying braking force to the front or rear wheels. A vehicle gear shift control device characterized by the following features.
5. In the vehicle gear control device described in claim 4, The controller receives signals from the first sensor and the second sensor and determines the oversteer state of the vehicle. The controller determines that the vehicle is behaving erratically when it is in an oversteer state. A vehicle gear shift control device characterized by the following features.
Citation Information
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