WO2023194760A1 - 走行支援方法及び走行支援装置 - Google Patents
走行支援方法及び走行支援装置 Download PDFInfo
- Publication number
- WO2023194760A1 WO2023194760A1 PCT/IB2022/000177 IB2022000177W WO2023194760A1 WO 2023194760 A1 WO2023194760 A1 WO 2023194760A1 IB 2022000177 W IB2022000177 W IB 2022000177W WO 2023194760 A1 WO2023194760 A1 WO 2023194760A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- driving force
- braking
- slip angle
- vehicle
- target
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Ceased
Links
Images
Classifications
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60W—CONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
- B60W30/00—Purposes of road vehicle drive control systems not related to the control of a particular sub-unit, e.g. of systems using conjoint control of vehicle sub-units
- B60W30/02—Control of vehicle driving stability
- B60W30/045—Improving turning performance
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60T—VEHICLE BRAKE CONTROL SYSTEMS OR PARTS THEREOF; BRAKE CONTROL SYSTEMS OR PARTS THEREOF, IN GENERAL; ARRANGEMENT OF BRAKING ELEMENTS ON VEHICLES IN GENERAL; PORTABLE DEVICES FOR PREVENTING UNWANTED MOVEMENT OF VEHICLES; VEHICLE MODIFICATIONS TO FACILITATE COOLING OF BRAKES
- B60T13/00—Transmitting braking action from initiating means to ultimate brake actuator with power assistance or drive; Brake systems incorporating such transmitting means, e.g. air-pressure brake systems
- B60T13/10—Transmitting braking action from initiating means to ultimate brake actuator with power assistance or drive; Brake systems incorporating such transmitting means, e.g. air-pressure brake systems with fluid assistance, drive, or release
- B60T13/66—Electrical control in fluid-pressure brake systems
- B60T13/662—Electrical control in fluid-pressure brake systems characterised by specified functions of the control system components
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60T—VEHICLE BRAKE CONTROL SYSTEMS OR PARTS THEREOF; BRAKE CONTROL SYSTEMS OR PARTS THEREOF, IN GENERAL; ARRANGEMENT OF BRAKING ELEMENTS ON VEHICLES IN GENERAL; PORTABLE DEVICES FOR PREVENTING UNWANTED MOVEMENT OF VEHICLES; VEHICLE MODIFICATIONS TO FACILITATE COOLING OF BRAKES
- B60T7/00—Brake-action initiating means
- B60T7/12—Brake-action initiating means for automatic initiation; for initiation not subject to will of driver or passenger
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60T—VEHICLE BRAKE CONTROL SYSTEMS OR PARTS THEREOF; BRAKE CONTROL SYSTEMS OR PARTS THEREOF, IN GENERAL; ARRANGEMENT OF BRAKING ELEMENTS ON VEHICLES IN GENERAL; PORTABLE DEVICES FOR PREVENTING UNWANTED MOVEMENT OF VEHICLES; VEHICLE MODIFICATIONS TO FACILITATE COOLING OF BRAKES
- B60T8/00—Arrangements for adjusting wheel-braking force to meet varying vehicular or ground-surface conditions, e.g. limiting or varying distribution of braking force
- B60T8/17—Using electrical or electronic regulation means to control braking
- B60T8/1755—Brake regulation specially adapted to control the stability of the vehicle, e.g. taking into account yaw rate or transverse acceleration in a curve
- B60T8/17552—Brake regulation specially adapted to control the stability of the vehicle, e.g. taking into account yaw rate or transverse acceleration in a curve responsive to the tyre sideslip angle or the vehicle body slip angle
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60W—CONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
- B60W10/00—Conjoint control of vehicle sub-units of different type or different function
- B60W10/04—Conjoint control of vehicle sub-units of different type or different function including control of propulsion units
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60W—CONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
- B60W10/00—Conjoint control of vehicle sub-units of different type or different function
- B60W10/18—Conjoint control of vehicle sub-units of different type or different function including control of braking systems
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60W—CONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
- B60W10/00—Conjoint control of vehicle sub-units of different type or different function
- B60W10/18—Conjoint control of vehicle sub-units of different type or different function including control of braking systems
- B60W10/184—Conjoint control of vehicle sub-units of different type or different function including control of braking systems with wheel brakes
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60W—CONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
- B60W40/00—Estimation or calculation of non-directly measurable driving parameters for road vehicle drive control systems not related to the control of a particular sub unit, e.g. by using mathematical models
- B60W40/10—Estimation or calculation of non-directly measurable driving parameters for road vehicle drive control systems not related to the control of a particular sub unit, e.g. by using mathematical models related to vehicle motion
- B60W40/103—Side slip angle of vehicle body
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60W—CONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
- B60W40/00—Estimation or calculation of non-directly measurable driving parameters for road vehicle drive control systems not related to the control of a particular sub unit, e.g. by using mathematical models
- B60W40/10—Estimation or calculation of non-directly measurable driving parameters for road vehicle drive control systems not related to the control of a particular sub unit, e.g. by using mathematical models related to vehicle motion
- B60W40/105—Speed
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B62—LAND VEHICLES FOR TRAVELLING OTHERWISE THAN ON RAILS
- B62D—MOTOR VEHICLES; TRAILERS
- B62D6/00—Arrangements for automatically controlling steering depending on driving conditions sensed and responded to, e.g. control circuits
- B62D6/002—Arrangements for automatically controlling steering depending on driving conditions sensed and responded to, e.g. control circuits computing target steering angles for front or rear wheels
- B62D6/003—Arrangements for automatically controlling steering depending on driving conditions sensed and responded to, e.g. control circuits computing target steering angles for front or rear wheels in order to control vehicle yaw movement, i.e. around a vertical axis
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B62—LAND VEHICLES FOR TRAVELLING OTHERWISE THAN ON RAILS
- B62D—MOTOR VEHICLES; TRAILERS
- B62D7/00—Steering linkage; Stub axles or their mountings
- B62D7/06—Steering linkage; Stub axles or their mountings for individually-pivoted wheels, e.g. on king-pins
- B62D7/14—Steering linkage; Stub axles or their mountings for individually-pivoted wheels, e.g. on king-pins the pivotal axes being situated in more than one plane transverse to the longitudinal centre line of the vehicle, e.g. all-wheel steering
- B62D7/15—Steering linkage; Stub axles or their mountings for individually-pivoted wheels, e.g. on king-pins the pivotal axes being situated in more than one plane transverse to the longitudinal centre line of the vehicle, e.g. all-wheel steering characterised by means varying the ratio between the steering angles of the steered wheels
- B62D7/159—Steering linkage; Stub axles or their mountings for individually-pivoted wheels, e.g. on king-pins the pivotal axes being situated in more than one plane transverse to the longitudinal centre line of the vehicle, e.g. all-wheel steering characterised by means varying the ratio between the steering angles of the steered wheels characterised by computing methods or stabilisation processes or systems, e.g. responding to yaw rate, lateral wind, load, road condition
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60T—VEHICLE BRAKE CONTROL SYSTEMS OR PARTS THEREOF; BRAKE CONTROL SYSTEMS OR PARTS THEREOF, IN GENERAL; ARRANGEMENT OF BRAKING ELEMENTS ON VEHICLES IN GENERAL; PORTABLE DEVICES FOR PREVENTING UNWANTED MOVEMENT OF VEHICLES; VEHICLE MODIFICATIONS TO FACILITATE COOLING OF BRAKES
- B60T2201/00—Particular use of vehicle brake systems; Special systems using also the brakes; Special software modules within the brake system controller
- B60T2201/16—Curve braking control, e.g. turn control within ABS control algorithm
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60T—VEHICLE BRAKE CONTROL SYSTEMS OR PARTS THEREOF; BRAKE CONTROL SYSTEMS OR PARTS THEREOF, IN GENERAL; ARRANGEMENT OF BRAKING ELEMENTS ON VEHICLES IN GENERAL; PORTABLE DEVICES FOR PREVENTING UNWANTED MOVEMENT OF VEHICLES; VEHICLE MODIFICATIONS TO FACILITATE COOLING OF BRAKES
- B60T2230/00—Monitoring, detecting special vehicle behaviour; Counteracting thereof
- B60T2230/02—Side slip angle, attitude angle, floating angle, drift angle
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60T—VEHICLE BRAKE CONTROL SYSTEMS OR PARTS THEREOF; BRAKE CONTROL SYSTEMS OR PARTS THEREOF, IN GENERAL; ARRANGEMENT OF BRAKING ELEMENTS ON VEHICLES IN GENERAL; PORTABLE DEVICES FOR PREVENTING UNWANTED MOVEMENT OF VEHICLES; VEHICLE MODIFICATIONS TO FACILITATE COOLING OF BRAKES
- B60T2260/00—Interaction of vehicle brake system with other systems
- B60T2260/08—Coordination of integrated systems
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60T—VEHICLE BRAKE CONTROL SYSTEMS OR PARTS THEREOF; BRAKE CONTROL SYSTEMS OR PARTS THEREOF, IN GENERAL; ARRANGEMENT OF BRAKING ELEMENTS ON VEHICLES IN GENERAL; PORTABLE DEVICES FOR PREVENTING UNWANTED MOVEMENT OF VEHICLES; VEHICLE MODIFICATIONS TO FACILITATE COOLING OF BRAKES
- B60T2270/00—Further aspects of brake control systems not otherwise provided for
- B60T2270/82—Brake-by-Wire, EHB
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60W—CONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
- B60W2520/00—Input parameters relating to overall vehicle dynamics
- B60W2520/10—Longitudinal speed
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60W—CONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
- B60W2520/00—Input parameters relating to overall vehicle dynamics
- B60W2520/12—Lateral speed
- B60W2520/125—Lateral acceleration
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60W—CONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
- B60W2520/00—Input parameters relating to overall vehicle dynamics
- B60W2520/14—Yaw
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60W—CONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
- B60W2520/00—Input parameters relating to overall vehicle dynamics
- B60W2520/20—Sideslip angle
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60W—CONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
- B60W2540/00—Input parameters relating to occupants
- B60W2540/10—Accelerator pedal position
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60W—CONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
- B60W2540/00—Input parameters relating to occupants
- B60W2540/12—Brake pedal position
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60W—CONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
- B60W2540/00—Input parameters relating to occupants
- B60W2540/18—Steering angle
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60W—CONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
- B60W2710/00—Output or target parameters relating to a particular sub-units
- B60W2710/06—Combustion engines, Gas turbines
- B60W2710/0666—Engine torque
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60W—CONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
- B60W2710/00—Output or target parameters relating to a particular sub-units
- B60W2710/06—Combustion engines, Gas turbines
- B60W2710/0677—Engine power
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60W—CONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
- B60W2710/00—Output or target parameters relating to a particular sub-units
- B60W2710/08—Electric propulsion units
- B60W2710/083—Torque
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60W—CONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
- B60W2710/00—Output or target parameters relating to a particular sub-units
- B60W2710/18—Braking system
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60W—CONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
- B60W2710/00—Output or target parameters relating to a particular sub-units
- B60W2710/18—Braking system
- B60W2710/182—Brake pressure, e.g. of fluid or between pad and disc
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60W—CONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
- B60W2720/00—Output or target parameters relating to overall vehicle dynamics
- B60W2720/14—Yaw
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60W—CONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
- B60W2720/00—Output or target parameters relating to overall vehicle dynamics
- B60W2720/20—Sideslip angle
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60W—CONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
- B60W2720/00—Output or target parameters relating to overall vehicle dynamics
- B60W2720/40—Torque distribution
- B60W2720/403—Torque distribution between front and rear axle
Definitions
- the present invention relates to a driving support method and a driving support device.
- Patent Document 1 discloses that in order to improve turning performance, the torque distribution to the front wheels is increased when the actual yaw rate is larger than the target yaw rate, and the torque distribution to the rear wheels is increased when the actual yaw rate is smaller than the target yaw rate.
- a torque control device is described.
- An object of the present invention is to facilitate a steering operation for turning a vehicle along a desired travel line.
- the vehicle speed is detected, the steering angle of the steering wheel is detected, the required braking/driving force is set according to the amount of operation of the accelerator pedal or the brake pedal by the driver, and the vehicle body
- the target slip angle of the vehicle body which is the angle from the longitudinal direction of , the sign of the slip angle of the vehicle body rotating in the turning direction of the vehicle is positive, and the sign of the slip angle of the vehicle body rotating in the opposite direction to the turning direction is negative.
- the rear The required braking/driving force is corrected to increase the braking/driving force of the wheels or to decrease the braking/driving force generated to the front wheels, and if the actual slip angle is smaller than the target slip angle, the braking/driving force of the rear wheels is adjusted.
- the target braking/driving force is set by correcting the required braking/driving force so as to reduce the force or increase the braking/driving force generated at the front wheels, and the target braking/driving force is generated in the vehicle.
- FIG. 1 is a schematic configuration diagram of an example of a driving support device according to an embodiment.
- (a) to (d) are explanatory diagrams of the vehicle body slip angle.
- (a) to (d) are schematic diagrams showing examples of a target slip angle and an actual slip angle in a left turn.
- (a) to (d) are schematic diagrams showing examples of a target slip angle and an actual slip angle in a right turn.
- FIG. 2 is a block diagram of an example of the functional configuration of the controller in FIG. 1.
- FIG. FIG. 3 is a block diagram of an example of a functional configuration of a braking/driving force correction value calculation section. It is a flow chart of an example of the driving support method of an embodiment.
- FIG. 7 is a block diagram of a modification of the functional configuration of the braking/driving force correction value calculation section.
- FIG. 1 is a schematic configuration diagram of an example of a driving support device according to an embodiment.
- the driving support device 10 controls the braking/driving force of at least one of the front wheels 2F (left front wheel 2FL and right front wheel 2FR) and rear wheels 2R (left rear wheel 2RL and right rear wheel 2RR) of the vehicle 1.
- the vehicle body slip angle is adjusted to support the driver's steering operation of the vehicle 1.
- the driving support device 10 includes a wheel speed sensor 11, a steering angle sensor 12, a switch (SW) 13, a yaw rate sensor 14, an acceleration sensor 15, a brake sensor 16, an accelerator opening sensor 17, and a controller 18. , a drive controller 19, an actuator 20, a steering device 21, a braking device 22, and a drive source 23.
- Wheel speed sensor 11 detects wheel speed Vw of vehicle 1.
- the wheel speed sensor 11 may detect the average value of the wheel speeds of the front left wheel 2FL, the front right wheel 2FR, the rear left wheel 2RL, and the rear right wheel 2RR as the wheel speed Vw.
- the steering angle sensor 12 detects the steering angle ⁇ s(s) of the steering wheel.
- the sign of the steering angle ⁇ s(s) for left rotation (counterclockwise) is assumed to be positive (plus), and the sign of the steering angle ⁇ s(s) for right rotation (clockwise) is assumed to be negative (minus).
- the switch (SW) 13 is an operator through which an occupant of the vehicle 1 (for example, a driver) receives a selection input in order to select a response characteristic of the vehicle 1 in response to a driving operation by the driver.
- the switch 13 may be a switch that changes a drive mode that is a driving characteristic of the vehicle 1.
- the drive modes include a first mode (e.g., sports mode) in which the vehicle 1 has a high response characteristic in response to driving operations by the driver, and a second mode (e.g., eco mode) in which the vehicle 1 has a gentle response characteristic in response to driving operations. ) may also be included.
- the response characteristic of the vehicle 1 in response to a driving operation may be, for example, the response characteristic of the turning angle of the running wheels in response to the operation of the steering wheel, the driving characteristic in response to the operation of the accelerator pedal, or the response characteristic in response to the operation of the brake pedal. It may be a characteristic.
- the controller 18 changes the response characteristics of the vehicle 1 in response to a driving operation by the driver based on the setting state of the switch 13.
- Yaw rate sensor 14 detects the yaw rate of vehicle 1.
- Acceleration sensor 15 detects lateral acceleration, which is acceleration of vehicle 1 in the vehicle width direction.
- the brake sensor 16 detects a brake operation amount Br, which is the amount of operation of the brake pedal by the driver.
- the accelerator opening sensor 17 detects the accelerator operation amount Ac, which is the operation amount of the accelerator pedal by the driver.
- the controller 18 is an electronic control unit (ECU) that performs driving support control of the vehicle 1.
- the controller 18 includes a processor 18a and peripheral components such as a storage device 18b.
- the processor 18a may be, for example, a CPU (Central Processing Unit) or an MPU (Micro-Processing Unit).
- the storage device 18b may include a semiconductor storage device, a magnetic storage device, an optical storage device, or the like.
- the storage device 18b may include memories such as a register, a cache memory, a ROM (Read Only Memory) used as a main storage device, and a RAM (Random Access Memory).
- the functions of the controller 18 described below are realized, for example, by the processor 18a executing a computer program stored in the storage device 18b.
- controller 18 may be formed of dedicated hardware for executing each information process described below.
- the controller 18 may include a functional logic circuit set in a general-purpose semiconductor integrated circuit.
- the controller 18 may include a programmable logic device (PLD) such as a field-programmable gate array (FPGA).
- PLD programmable logic device
- FPGA field-programmable gate array
- the drive controller 19 determines whether the drive source 23 is generated in at least one of the front wheels 2F and the rear wheels 2R based on the accelerator operation amount Ac detected by the accelerator opening sensor 17 and the braking/driving force correction value Cr set by the controller 18. This is an electronic control unit that controls the driving force. Specifically, the drive controller 19 calculates the pre-correction target driving force Fd0 based on the accelerator operation amount Ac. The drive controller 19 causes the drive source 23 to generate a target driving force Fd obtained by correcting the pre-correction target driving force Fd0 using the braking/driving force correction value Cr set by the controller 18.
- the drive controller 19 includes a processor and peripheral components such as a storage device.
- the processor may be, for example, a CPU or an MPU.
- the storage device may include a semiconductor storage device, a magnetic storage device, an optical storage device, or the like.
- the storage device may include memory such as registers, cache memory, ROM and RAM used as main storage.
- the functions of the drive controller 19 described below are realized, for example, by a processor executing a computer program stored in a storage device.
- the drive controller 19 may be formed from dedicated hardware for executing each information process described below.
- the drive controller 19 may include a functional logic circuit set in a general-purpose semiconductor integrated circuit.
- the drive controller 19 may include a PLD such as an FPGA.
- the drive controller 19 may be a separate controller from the controller 18, or the drive controller 19 and the controller 18 may be an integrated controller.
- the actuator 20 operates the steering device 21 and the braking device 22 in response to a control signal from the controller 18 to generate the vehicle behavior of the vehicle 1.
- the actuator 20 includes a steering actuator and a brake control actuator.
- the steering actuator operates the steering device 21 to control the steering direction and amount of steering of the vehicle 1 .
- the brake control actuator operates the braking device 22 to generate frictional braking force, thereby controlling the longitudinal deceleration of the vehicle 1 .
- the driver can achieve a desired yaw rate by operating the steering wheel, but cannot achieve the desired yaw rate and desired vehicle body slip angle at the same time.
- the "vehicle body slip angle" is defined as the angle ⁇ from the vehicle body longitudinal direction db of the vehicle 1 to the traveling direction dd of the vehicle 1.
- reference numeral P indicates the position of the center of gravity of the vehicle 1
- reference numeral Ld indicates the running line (travel trajectory) of the vehicle 1 while turning.
- the sign of the vehicle body slip angle ⁇ for left rotation is assumed to be positive (plus), and the sign of the vehicle body slip angle ⁇ for right rotation (clockwise) is assumed to be negative (minus).
- Fig. 2(a) when the longitudinal direction db of the vehicle body during a left turn is toward the outside of the turn than the traveling direction dd, the sign of the vehicle body slip angle ⁇ is positive, and as shown in Fig. 2(b). If the longitudinal direction db of the vehicle body during a left turn is toward the inner side of the turn than the traveling direction dd, the sign of the vehicle body slip angle ⁇ becomes negative.
- Fig. 2(a) when the longitudinal direction db of the vehicle body during a left turn is toward the outside of the turn than the traveling direction dd, the sign of the vehicle body slip angle ⁇ is positive, and as shown in Fig. 2(b). If the longitudinal direction db of the vehicle body during a left turn is toward the inner side of the turn than the traveling direction dd, the sign
- the driving support device 10 of the embodiment sets a target slip angle ⁇ t(s), which is a target value of the vehicle body slip angle, based on the vehicle speed V and the steering angle ⁇ s(s).
- the target slip angle ⁇ t(s) is an angle from a target value in the vehicle longitudinal direction db (hereinafter sometimes referred to as "target vehicle longitudinal direction dbt") to the traveling direction dd of the vehicle 1.
- the driving support device 10 controls the braking/driving force of at least one of the front wheels 2F and the rear wheels 2R so that the actual slip angle ⁇ a(s), which is the actual vehicle body slip angle, approaches the target slip angle ⁇ t(s).
- 3(a) to 3(d) are schematic diagrams showing examples of the target slip angle ⁇ t(s) and the actual slip angle ⁇ a(s) in a left turn.
- the vehicle body longitudinal direction db points toward the outer side of the turn than the traveling direction dd ( ⁇ a(s)>0)
- the target vehicle body longitudinal direction dbt points toward the inner side of the turn than the traveling direction dd. ( ⁇ t(s) ⁇ 0). That is, the actual slip angle ⁇ a(s) is larger than the target slip angle ⁇ t(s).
- the braking/driving force of at least one of the front wheels 2F and the rear wheels 2R is controlled so that the actual slip angle ⁇ a(s) decreases (that is, so that the vehicle body longitudinal direction db rotates toward the inside of the turn).
- the braking/driving force of the front wheels 2F is decreased, or the braking/driving force of the rear wheels 2R is increased.
- the braking/driving force of the front wheels 2F may be decreased and the braking/driving force of the rear wheels 2R may be increased.
- both the vehicle longitudinal direction db and the target vehicle longitudinal direction dbt are oriented toward the outer side of the turn than the traveling direction dd, but the vehicle longitudinal direction db is oriented toward the outer side of the turn than the target vehicle longitudinal direction dbt.
- the actual slip angle ⁇ a(s) is larger than the target slip angle ⁇ t(s) ( ⁇ a(s)> ⁇ t(s)>0).
- the braking/driving force of at least one of the front wheels 2F and the rear wheels 2R is controlled so that the actual slip angle ⁇ a(s) is reduced.
- the vehicle body longitudinal direction db points toward the inner side of the turn than the traveling direction dd ( ⁇ a(s) ⁇ 0), whereas the target vehicle body longitudinal direction dbt points toward the outer side of the turn than the traveling direction dd. ( ⁇ t(s)>0). That is, the actual slip angle ⁇ a(s) is smaller than the target slip angle ⁇ t(s).
- the braking/driving force of at least one of the front wheels 2F and the rear wheels 2R is controlled so that the actual slip angle ⁇ a(s) increases (that is, so that the vehicle body longitudinal direction db rotates toward the outside of the turn). .
- the braking/driving force of the front wheels 2F is increased, or the braking/driving force of the rear wheels 2R is decreased.
- the braking/driving force of the front wheels 2F may be increased and the braking/driving force of the rear wheels 2R may be decreased.
- both the vehicle longitudinal direction db and the target vehicle longitudinal direction dbt are oriented toward the inner side of the turn than the traveling direction dd, but the vehicle longitudinal direction db is oriented toward the inner side of the turn than the target vehicle longitudinal direction dbt. . That is, the actual slip angle ⁇ a(s) is smaller than the target slip angle ⁇ t(s) ( ⁇ a(s) ⁇ t(s) ⁇ 0).
- the braking/driving force of at least one of the front wheels 2F and the rear wheels 2R is controlled so that the actual slip angle ⁇ a(s) increases.
- FIGS. 4(a) to 4(d) are schematic diagrams showing examples of the target slip angle ⁇ t(s) and the actual slip angle ⁇ a(s) in a right turn.
- the vehicle body longitudinal direction db points toward the outer side of the turn than the traveling direction dd ( ⁇ a(s) ⁇ 0)
- the target vehicle body longitudinal direction dbt points toward the inner side of the turn than the traveling direction dd. ( ⁇ t(s)>0). That is, the actual slip angle ⁇ a(s) is smaller than the target slip angle ⁇ t(s).
- the braking/driving force of at least one of the front wheels 2F and the rear wheels 2R is controlled so that the actual slip angle ⁇ a(s) increases (that is, so that the vehicle body longitudinal direction db rotates toward the inside of the turn). .
- the braking/driving force of the front wheels 2F is decreased, or the braking/driving force of the rear wheels 2R is increased.
- the braking/driving force of the front wheels 2F may be decreased and the braking/driving force of the rear wheels 2R may be increased.
- both the vehicle longitudinal direction db and the target vehicle longitudinal direction dbt are oriented toward the outer side of the turn than the traveling direction dd, but the vehicle longitudinal direction db is oriented toward the outer side of the turn than the target vehicle longitudinal direction dbt. . That is, the actual slip angle ⁇ a(s) is smaller than the target slip angle ⁇ t(s) ( ⁇ a(s) ⁇ t(s) ⁇ 0). Also in this case, the braking/driving force of at least one of the front wheels 2F and the rear wheels 2R is controlled so that the actual slip angle ⁇ a(s) increases.
- the vehicle body longitudinal direction db points toward the inner side of the turn than the traveling direction dd ( ⁇ a(s)>0), whereas the target vehicle body longitudinal direction dbt points toward the outer side of the turn than the traveling direction dd. ( ⁇ t(s) ⁇ 0). That is, the actual slip angle ⁇ a(s) is larger than the target slip angle ⁇ t(s).
- the braking/driving force of at least one of the front wheels 2F and the rear wheels 2R is controlled so that the actual slip angle ⁇ a(s) decreases (that is, so that the vehicle body longitudinal direction db rotates toward the outside of the turn). .
- the braking/driving force of the front wheels 2F is increased, or the braking/driving force of the rear wheels 2R is decreased.
- the braking/driving force of the front wheels 2F may be increased and the braking/driving force of the rear wheels 2R may be decreased.
- both the vehicle longitudinal direction db and the target vehicle longitudinal direction dbt are oriented toward the inner side of the turn than the traveling direction dd, but the vehicle longitudinal direction db is oriented toward the inner side of the turn than the target vehicle longitudinal direction dbt. . That is, the actual slip angle ⁇ a(s) is larger than the target slip angle ⁇ t(s) ( ⁇ a(s)> ⁇ t(s)>0).
- the braking/driving force of at least one of the front wheels 2F and the rear wheels 2R is controlled so that the actual slip angle ⁇ a(s) is reduced.
- the vehicle body slip angle ⁇ (actual slip angle ⁇ a(s)) of the vehicle 1 can be appropriately controlled, so that the vehicle body slip angle ⁇ can be prevented from becoming excessive or insufficient.
- the steering operation for turning the vehicle along a desired travel line becomes easier.
- the sign of the vehicle body slip angle ⁇ rotating in the turning direction of the vehicle 1 is defined as positive
- FIG. 4(a) Note that in the example of a right turn in FIG. 4(d), the sign of the slip angle ⁇ of the vehicle body rotating in the turning direction of the vehicle 1 is defined as negative.
- the braking/driving force of the front wheels 2F is decreased and the braking/driving force of the rear wheels 2R is increased.
- the actual slip angle ⁇ a(s) is smaller than the target slip angle ⁇ t(s) (that is, as shown in FIG. 3(c), FIG. 3(d), FIG. 4(c), and FIG. 4(d))
- the braking/driving force of the front wheels 2F is increased or the braking/driving force of the rear wheels 2R is decreased.
- the braking/driving force of the front wheels 2F is increased and the braking/driving force of the rear wheels 2R is decreased.
- FIG. 5 is a block diagram of an example of the functional configuration of the controller 18.
- the controller 18 includes a vehicle speed calculation section 30, a required torque calculation section 31, an actual slip angle estimation section 32, a target slip angle calculation section 33, and a braking/driving force correction value calculation section 34.
- Ac and the pre-correction target driving force Fd0 calculated by the drive controller 19 are input to the controller 18.
- the vehicle speed calculation unit 30 calculates the vehicle speed V of the vehicle 1 based on the wheel speed Vw, and inputs information on the vehicle speed V to the actual slip angle estimation unit 32 and the target slip angle calculation unit 33.
- the required torque calculating section 31 calculates a required braking/driving torque Td according to the brake operation amount Br or the accelerator operation amount Ac by the driver, and inputs information on the required braking/driving torque Td to the target slip angle calculating section 33 .
- the actual slip angle estimation unit 32 estimates the actual slip angle ⁇ a(s) based on at least the vehicle speed V and the steering angle ⁇ s(s). For example, the actual slip angle estimation unit 32 may estimate the actual slip angle ⁇ a(s) based on the following equation (1).
- m is the weight of the vehicle
- I is the yaw radius of inertia
- l is the Hall base
- l f is the distance from the center of gravity P of the vehicle 1 to the front wheel axle
- l r is the center of gravity P is the distance from to the rear axle
- K f is the equivalent cornering power of the front wheels
- K r is the equivalent cornering power of the rear wheels.
- the target slip angle calculation unit 33 estimates the target slip angle ⁇ t(s) based on at least the vehicle speed V and the steering angle ⁇ s(s). For example, the target slip angle calculation unit 33 may estimate the target slip angle ⁇ t(s) based on the following equation (2).
- K1 in equation (2) is the slip angle gain, and by appropriately adjusting the absolute value and sign of the slip angle gain K1, it is possible to determine how much the target slip angle ⁇ t(s) is increased relative to the actual slip angle ⁇ a(s). You can set whether to make it larger or smaller. That is, it is possible to set how much the target vehicle body longitudinal direction dbt is tilted toward the inside or outside of the turn with respect to the vehicle body longitudinal direction db.
- the target slip angle calculating section 33 may set the target slip angle ⁇ t(s) according to the vehicle speed V. Specifically, when the sign of the slip angle ⁇ of the vehicle body rotating in the turning direction of the vehicle 1 is positive and the sign of the slip angle ⁇ of the vehicle body rotating in the opposite direction to the turning direction is negative, for example, when the vehicle speed V is high
- the target slip angle ⁇ t(s) may be set smaller than that when the vehicle speed V is low. For example, the higher the vehicle speed V, the smaller the target slip angle may be set. Thereby, when the vehicle speed V is high, the vehicle 1 can be prevented from turning inward. Further, when the vehicle speed V is low, the vehicle 1 is prevented from turning outward, and the vehicle 1 is made easier to turn inward.
- the braking/driving force correction value calculation unit 34 calculates the required braking/driving force according to the brake operation amount Br or accelerator operation amount Ac by the driver according to the actual slip angle ⁇ a(s) and the target slip angle ⁇ t(s).
- a braking/driving force correction value Cr to be corrected is calculated.
- FIG. 6 is a block diagram of an example of the functional configuration of the braking/driving force correction value calculating section 34. As shown in FIG. FIG. 6 illustrates a configuration for calculating a braking/driving force correction value Cr for correcting the driving force of the rear wheels 2R according to the actual slip angle ⁇ a(s) and the target slip angle ⁇ t(s).
- the braking/driving force correction value calculation section 34 includes a subtracter 40 , a gain multiplication section 41 , a sign inversion section 42 , a sign calculation section 43 , multipliers 44 and 46 , and a limiter 45 .
- the gain multiplier 41 multiplies the slip angle difference ⁇ by the proportional gain P and outputs the product P ⁇ to the multiplier 44 .
- the sign inverting unit 42 inverts the sign of the steering angle ⁇ s(s), and the sign calculating unit 43 calculates the value “1” if the sign of the steering angle ( ⁇ 1 ⁇ s(s)) after inverting the sign is positive. is output, and if it is negative, it outputs "-1".
- the multiplier 44 normalizes the sign of the slip angle difference ⁇ by multiplying the slip angle difference ⁇ by the output of the sign calculation unit 43.
- the sign of the slip angle difference ⁇ is set to be positive if the vehicle longitudinal direction db is directed toward the outer side of the turning than the target vehicle longitudinal direction dbt. .
- the sign of the braking/driving force correction value Cr is set to positive.
- the sign of the slip angle difference ⁇ is set to be negative.
- the sign of the braking/driving force correction value Cr is set to be negative.
- the limiter 45 limits the upper and lower limits of the output of the multiplier 44 (that is, the slip angle difference ⁇ whose sign has been normalized), and the multiplier 46 converts the limited slip angle difference ⁇ into the pre-correction target driving force Fd0.
- the braking/driving force correction value Cr is calculated by multiplying the braking/driving force correction value Cr.
- the drive controller 19 in FIG. 1 calculates the target driving force Fd by adding the braking/driving force correction value Cr to the pre-correction target driving force Fd0, so that the driving force generated at the rear wheels 2R becomes the target driving force Fd. Controls the drive source 23. Therefore, when the vehicle longitudinal direction db is directed toward the outer side of the turn than the target vehicle longitudinal direction dbt, the driving force of the rear wheel 2R increases, and the vehicle body is rotated so that the vehicle longitudinal direction db rotates toward the inner side of the turn. The slip angle ⁇ is controlled.
- the driving force of the rear wheel 2R decreases, and the vehicle body rotates so that the vehicle longitudinal direction db rotates toward the outer side of the turn.
- the slip angle ⁇ is controlled.
- the braking/driving force correction value calculation unit 34 in FIG. 6 calculates the braking/driving force correction value Cr that corrects the driving force of the rear wheels 2R, but the braking/driving force correction value calculation unit 34 calculates the Alternatively, a braking/driving force correction value Cr may be calculated.
- the sign of the slip angle difference ⁇ is normalized to be opposite to that in FIG.
- the sign of the braking/driving force correction value Cr is set to a negative value
- the vehicle body longitudinal direction db is more oriented than the target vehicle body longitudinal direction dbt. If the vehicle is facing toward the inside of the turn, the sign of the braking/driving force correction value Cr is set to positive.
- the drive controller 19 in FIG. 1 calculates the target driving force Fd by adding the braking/driving force correction value Cr to the pre-correction target driving force Fd0, and drives the front wheels 2F so that the driving force generated at the front wheels 2F becomes the target driving force Fd. source 23. Therefore, when the vehicle body longitudinal direction db is directed toward the outer side of the turn than the target vehicle body longitudinal direction dbt, the driving force of the front wheels 2F is decreased, and the vehicle body slips so that the vehicle body longitudinal direction db rotates toward the inner side of the turn. The angle ⁇ is controlled.
- the braking/driving force correction value calculation unit 34 calculates, as the braking/driving force correction value Cr, a braking/driving force correction value CrF that corrects the driving force of the front wheels 2F, and a braking/driving force correction value that corrects the driving force of the rear wheels 2R. CrR may be calculated at the same time.
- the drive controller 19 decreases the driving force of the front wheels 2F and increases the driving force of the rear wheels 2R when the vehicle longitudinal direction db is directed toward the outer side of the turn than the target vehicle longitudinal direction dbt.
- the driving force of the front wheels 2F is increased and the driving force of the rear wheels 2R is decreased. That is, the sign of the braking/driving force correction value CrF is different from the sign of the braking/driving force correction value CrR.
- the magnitude of the braking/driving force correction value CrF and the magnitude of the braking/driving force correction value CrR may be equal or different.
- the braking/driving force correction value CrF In order to make the magnitude of the braking/driving force correction value CrF equal to the magnitude of the braking/driving force correction value CrR, calculate the braking/driving force correction value Cr for either the front wheel 2F or the rear wheel 2R, and calculate the calculated braking/driving force correction value Cr.
- the sign of the force correction value Cr may be reversed and set to the other braking/driving force correction value (-Cr).
- the braking/driving force correction value calculation unit 34 calculates a braking/driving force correction value that corrects the above-mentioned pre-correction target driving force Fd0.
- a braking/driving force correction value Cr that corrects the frictional braking force by the braking device 22 or the regenerative braking force by the drive source 23 may be calculated.
- the braking/driving force correction value Cr decreases the braking force of the front wheel 2F or the braking/driving force increases the braking force of the rear wheel 2R.
- the correction value Cr may also be calculated.
- a braking/driving force correction value Cr may be calculated that reduces the braking force of the front wheels 2F and increases the braking force of the rear wheels 2R.
- the braking/driving force correction value Cr increases the braking force of the front wheel 2F or the braking/driving force correction value Cr decreases the braking force of the rear wheel 2R.
- the force correction value Cr may also be calculated.
- a braking/driving force correction value Cr that increases the braking force of the front wheels 2F and decreases the braking force of the rear wheels 2R may be calculated.
- the drive controller 19 calculates a target regenerative braking force according to the amount of operation of the accelerator pedal or brake pedal by the driver, and corrects the calculated target regenerative braking force with a braking/driving force correction value Cr to obtain a regenerative braking force.
- the drive source 23 is controlled so that this occurs.
- the controller 18 calculates a target frictional braking force according to the amount of operation of the accelerator pedal or brake pedal by the driver, and corrects the calculated target frictional braking force with a braking/driving force correction value Cr to obtain a frictional braking force.
- the brake control actuator of the actuator 20 is controlled so that this occurs.
- FIG. 7 is a flowchart of an example of the driving support method according to the embodiment.
- the steering angle sensor 12 detects the steering angle ⁇ s(s) of the steering wheel.
- the controller 18 detects the vehicle speed V of the vehicle 1.
- the drive controller 19 calculates a pre-correction target driving force Fd0.
- the controller 18 estimates the target slip angle ⁇ t(s) based on at least the vehicle speed V and the steering angle ⁇ s(s).
- the controller 18 estimates the actual slip angle ⁇ a(s) based on at least the vehicle speed V and the steering angle ⁇ s(s).
- step S5 the controller 18 calculates a braking/driving force correction value Cr based on the slip angle difference ⁇ .
- step S6 the drive controller 19 calculates the target driving force Fd to be generated in the wheels by correcting the uncorrected target driving force Fd0 with the braking/driving force correction value Cr, and calculates the target driving force Fd to be generated in the wheels.
- the driving source 23 generates the signal. The process then ends.
- the target slip angle calculation unit 33 calculates a larger target slip when the required braking/driving torque Td is large than when the required braking/driving torque Td is small.
- An angle ⁇ t(s) may be set. For example, the larger the required braking/driving torque Td, the larger the target slip angle ⁇ t(s) may be set.
- a larger target slip angle ⁇ t(s) may be set than when the required braking/driving torque Td is a braking force. This makes it possible to suppress the occurrence of understeer during driving and oversteer during braking.
- the target slip angle calculation unit 33 may set the target slip angle to be larger when the lateral acceleration is large than when the lateral acceleration is small. For example, the larger the lateral acceleration, the larger the target slip angle ⁇ t(s) may be set. This makes it possible to suppress the occurrence of understeer when the lateral acceleration is large.
- the target slip angle calculation unit 33 may set a larger target slip angle ⁇ t(s) when the response characteristic is high than when the response characteristic is low.
- a larger target slip angle ⁇ t(s) may be set than when the drive mode is the second mode.
- the vehicle body slip angle ⁇ of the vehicle 1 can be set according to the passenger's preference.
- the controller 18 sets the target yaw rate based on the steering angle ⁇ s(s) and the vehicle speed V, detects the actual yaw rate that is the actual yaw rate occurring in the vehicle 1, and detects the actual yaw rate when the actual yaw rate is smaller than the target yaw rate.
- the target braking/driving force may be set by correcting the required braking/driving force so as to increase the braking/driving force of the rear wheels 2R or to decrease the braking/driving force generated at the front wheels 2F.
- FIG. 8 is a block diagram of a modified example of the functional configuration of the braking/driving force correction value calculating section 34. As shown in FIG. In addition to the functional configuration described with reference to FIG. A container 56 is provided.
- Differentiators 50 and 51 and subtractor 52 calculate slip angular velocity difference ⁇ '.
- the gain multiplier 53 multiplies the slip angular velocity difference ⁇ ' by the differential gain D and outputs the product D ⁇ ' to the multiplier 54.
- the multiplier 54 normalizes the sign of the slip angular velocity difference ⁇ ' by multiplying the slip angular velocity difference ⁇ ' by the output of the sign calculation unit 43.
- the multiplier 55 multiplies the output of the multiplier 54 (that is, the slip angular velocity difference ⁇ ' whose sign has been normalized) by the pre-correction target driving force Fd0, and the adder 56 sums the multiplication results of the multipliers 46 and 55. Then, a braking/driving force correction value Cr is calculated.
- the braking/driving force correction value calculation unit 34 of the modified example increases the driving force of the rear wheel 2R when the actual slip angular velocity is larger than the target slip angular velocity, and when the actual slip angular velocity is smaller than the target slip angular velocity.
- a braking/driving force correction value Cr is calculated to reduce the driving force of the rear wheel 2R.
- the braking/driving force correction value Cr for correcting the driving force of the front wheels 2F can be calculated.
- the braking/driving force correction value Cr for correcting the braking force may be calculated.
- the controller 18 detects the vehicle speed of the vehicle 1.
- the steering angle sensor 12 detects the steering angle of the steering wheel.
- the controller 18 sets the required braking/driving force according to the amount of operation of the accelerator pedal or brake pedal by the driver, and sets the target value of the vehicle body slip angle ⁇ , which is the angle from the longitudinal direction db of the vehicle body to the traveling direction dd of the vehicle 1. is set as the target slip angle ⁇ t(s) based on the vehicle speed and steering angle, and the actual slip angle ⁇ a(s), which is the actual vehicle body slip angle, is estimated or detected, and the vehicle body slip rotating in the turning direction of the vehicle 1 is determined.
- the rear wheel The required braking/driving force is corrected to increase the braking/driving force or to decrease the braking/driving force generated at the front wheels, and if the actual slip angle ⁇ a(s) is smaller than the target slip angle ⁇ t(s),
- the target braking/driving force is set by correcting the required braking/driving force so as to reduce the braking/driving force for the rear wheels or increase the braking/driving force generated for the front wheels.
- the drive source 23 or the actuator 20 and the steering device 21 generate a target braking/driving force in the vehicle.
- the vehicle body slip angle ⁇ of the vehicle 1 can be appropriately controlled, so that the vehicle body slip angle can be prevented from becoming too large or too small.
- the steering operation for turning the vehicle along a desired travel line becomes easier.
- the controller 18 increases the braking/driving force of the rear wheels and decreases the braking/driving force generated in the front wheels.
- the required braking/driving force is corrected, and if the actual slip angle ⁇ a(s) is larger than the target slip angle ⁇ t(s), the braking/driving force of the rear wheels is decreased and the braking/driving force generated in the front wheels is increased.
- the target braking/driving force may be set by correcting the required braking/driving force so as to achieve the desired braking/driving force.
- the controller 18 may set a smaller target slip angle ⁇ t(s) when the vehicle speed is high than when the vehicle speed is low. This prevents the vehicle 1 from turning outward when the vehicle speed V is relatively low, and prevents the vehicle 1 from turning inward when the vehicle speed V is relatively high. can.
- Vehicle speed calculation unit 31...Required torque calculation section, 32...Actual slip angle estimation section, 33...Target slip angle calculation section, 34...Braking/driving force correction value calculation section, 40, 52...Subtractor, 41, 53...Gain multiplication section, 42 ...Sign inversion section, 43...Sign calculation section, 44, 46, 54, 55...Multiplier, 45...Limiter, 50, 51...Differentiator, 56...Adder
Landscapes
- Engineering & Computer Science (AREA)
- Transportation (AREA)
- Mechanical Engineering (AREA)
- Chemical & Material Sciences (AREA)
- Combustion & Propulsion (AREA)
- Automation & Control Theory (AREA)
- Physics & Mathematics (AREA)
- Mathematical Physics (AREA)
- Theoretical Computer Science (AREA)
- Regulating Braking Force (AREA)
- Control Of Driving Devices And Active Controlling Of Vehicle (AREA)
Abstract
Description
本発明は、所望の走行ラインに沿って車両を旋回させるための操舵操作を容易にすることを目的とする。
本発明の目的及び利点は、特許請求の範囲に示した要素及びその組合せを用いて具現化され達成される。前述の一般的な記述及び以下の詳細な記述の両方は、単なる例示及び説明であり、特許請求の範囲のように本発明を限定するものでないと解するべきである。
図1は、実施形態の走行支援装置の一例の概略構成図である。走行支援装置10は、車両1の前輪2F(左前輪2FL及び右前輪2FR)及び後輪2R(左後輪2RL及び右後輪2RR)の少なくとも一方の制駆動力を制御することによって車両1の車体スリップ角を調整し、運転者による車両1の操舵操作を支援する。
走行支援装置10は、車輪速センサ11と、操舵角センサ12と、スイッチ(SW)13と、ヨーレイトセンサ14と、加速度センサ15と、ブレーキセンサ16と、アクセル開度センサ17と、コントローラ18と、駆動コントローラ19と、アクチュエータ20と、転舵装置21と、制動装置22と、駆動源23を備える。
操舵角センサ12は、ステアリングホイールの操舵角θs(s)を検出する。本明細書では、左回転(反時計回り)の操舵角θs(s)の符号を正(プラス)とし、右回転(時計回り)の操舵角θs(s)の符号を負(マイナス)とする。
スイッチ(SW)13は、車両1の乗員(例えば運転者)が、運転者による運転操作に応答する車両1の応答特性を選択するため選択入力を受け付ける操作子である。
加速度センサ15は、車両1の車幅方向の加速度である横方向加速度を検出する。
ブレーキセンサ16は、運転者によるブレーキペダルの操作量であるブレーキ操作量Brを検出する。
アクセル開度センサ17は、運転者によるアクセルペダルの操作量であるアクセル操作量Acを検出する。
駆動コントローラ19は、コントローラ18と別個のコントローラであってもよく、駆動コントローラ19とコントローラ18は一体のコントローラであってもよい。
図2(a)~図2(d)を参照する。本明細書では「車体スリップ角」を車両1の車体前後方向dbから車両1の進行方向ddまでの角度βと定義する。図2(a)~図2(d)において参照符号Pは車両1の重心位置を示し、参照符号Ldは旋回中の車両1の走行ライン(走行軌道)を示す。
図2(a)に示すように左旋回中の車体前後方向dbが進行方向ddよりも旋回外側に向いている場合には車体スリップ角βの符号は正となり、図2(b)に示すように左旋回中の車体前後方向dbが進行方向ddよりも旋回内側に向いている場合には車体スリップ角βの符号は負となる。
図2(c)に示すように右旋回中の車体前後方向dbが進行方向ddよりも旋回外側に向いている場合には車体スリップ角βの符号は負となり、図2(d)に示すように右旋回中の車体前後方向dbが進行方向ddよりも旋回内側に向いている場合には車体スリップ角βの符号は正となる。
以下の説明において、図2(a)及び図2(c)に示すように旋回中の車体前後方向dbが進行方向ddよりも旋回外側に向いている状態を「外向き状態」と表記し、図2(b)及び図2(d)に示すように旋回中の車体前後方向dbが進行方向ddよりも旋回内側に向いている状態を「内向き状態」と表記することがある。
そこで実施形態の走行支援装置10は、車速V及び操舵角θs(s)に基づいて車体スリップ角の目標値である目標スリップ角βt(s)を設定する。目標スリップ角βt(s)は、車体前後方向dbの目標値(以下「目標車体前後方向dbt」と表記することがある)から車両1の進行方向ddまでの角度である。走行支援装置10は、実際の車体スリップ角である実スリップ角βa(s)が目標スリップ角βt(s)に近づくように前輪2F及び後輪2Rの少なくとも一方の制駆動力を制御する。
図3(a)の例では車体前後方向dbが進行方向ddよりも旋回外側に向いているのに対して(βa(s)>0)、目標車体前後方向dbtが進行方向ddよりも旋回内側に向いている(βt(s)<0)。すなわち、実スリップ角βa(s)が目標スリップ角βt(s)よりも大きい。この場合には、実スリップ角βa(s)が減少するように(すなわち車体前後方向dbが旋回内側の方向へ回転するように)前輪2F及び後輪2Rの少なくとも一方の制駆動力を制御する。例えば、前輪2Fの制駆動力を減少させるか、後輪2Rの制駆動力を増加させる。前輪2Fの制駆動力を減少させ且つ後輪2Rの制駆動力を増加させてもよい。
図3(b)の例では車体前後方向dbも目標車体前後方向dbtも進行方向ddよりも旋回外側に向いているが、車体前後方向dbは目標車体前後方向dbtよりも旋回外側に向いている。すなわち、実スリップ角βa(s)が目標スリップ角βt(s)よりも大きい(βa(s)>βt(s)>0)。この場合も、実スリップ角βa(s)が減少するように前輪2F及び後輪2Rの少なくとも一方の制駆動力を制御する。
図3(d)の例では車体前後方向dbも目標車体前後方向dbtも進行方向ddよりも旋回内側に向いているが、車体前後方向dbは目標車体前後方向dbtよりも旋回内側に向いている。すなわち、実スリップ角βa(s)が目標スリップ角βt(s)よりも小さい(βa(s)<βt(s)<0)。この場合も、実スリップ角βa(s)が増加するように前輪2F及び後輪2Rの少なくとも一方の制駆動力を制御する。
図4(a)の例では車体前後方向dbが進行方向ddよりも旋回外側に向いているのに対して(βa(s)<0)、目標車体前後方向dbtが進行方向ddよりも旋回内側に向いている(βt(s)>0)。すなわち、実スリップ角βa(s)が目標スリップ角βt(s)よりも小さい。この場合には、実スリップ角βa(s)が増加するように(すなわち車体前後方向dbが旋回内側の方向へ回転するように)前輪2F及び後輪2Rの少なくとも一方の制駆動力を制御する。例えば、前輪2Fの制駆動力を減少させるか、後輪2Rの制駆動力を増加させる。前輪2Fの制駆動力を減少させ且つ後輪2Rの制駆動力を増加させてもよい。
図4(b)の例では車体前後方向dbも目標車体前後方向dbtも進行方向ddよりも旋回外側に向いているが、車体前後方向dbは目標車体前後方向dbtよりも旋回外側に向いている。すなわち、実スリップ角βa(s)が目標スリップ角βt(s)よりも小さい(βa(s)<βt(s)<0)。この場合も、実スリップ角βa(s)が増加するように前輪2F及び後輪2Rの少なくとも一方の制駆動力を制御する。
図4(d)の例では車体前後方向dbも目標車体前後方向dbtも進行方向ddよりも旋回内側に向いているが、車体前後方向dbは目標車体前後方向dbtよりも旋回内側に向いている。すなわち、実スリップ角βa(s)が目標スリップ角βt(s)よりも大きい(βa(s)>βt(s)>0)。この場合も、実スリップ角βa(s)が減少するように前輪2F及び後輪2Rの少なくとも一方の制駆動力を制御する。
なお、図3(a)~図3(d)の左旋回の例では、車両1の旋回方向へ回転する車体スリップ角βの符号を正と定義しているのに対し、図4(a)~図4(d)の右旋回の例では、車両1の旋回方向へ回転する車体スリップ角βの符号を負と定義していることに留意する。
したがって、右旋回の場合においても車両1の旋回方向へ回転する車体スリップ角βの符号が正、旋回方向と反対方向に回転する車体スリップ角βの符号が負と定義すれば、実スリップ角βa(s)が目標スリップ角βt(s)よりも大きい場合(すなわち、図3(a)、図3(b)、図4(a)及び図4(b)に示すように車体前後方向dbが目標車体前後方向dbtよりも旋回外側に向いている場合)に、前輪2Fの制駆動力を減少させるか、後輪2Rの制駆動力を増加させる。又は、前輪2Fの制駆動力を減少させ且つ後輪2Rの制駆動力を増加させる。一方で実スリップ角βa(s)が目標スリップ角βt(s)よりも小さい場合(すなわち、図3(c)、図3(d)、図4(c)及び図4(d)に示すように車体前後方向dbが目標車体前後方向dbtよりも旋回外側に向いている場合)には、前輪2Fの制駆動力を増加させるか、後輪2Rの制駆動力を減少させる。又は、前輪2Fの制駆動力を増加させ且つ後輪2Rの制駆動力を減少させる。
車輪速センサ11が検出した車輪速Vwと、操舵角センサ12が検出した操舵角θs(s)と、ブレーキセンサ16が検出したブレーキ操作量Brと、アクセル開度センサ17が検出したアクセル操作量Acと、駆動コントローラ19が演算した補正前目標駆動力Fd0は、コントローラ18に入力される。
実スリップ角推定部32は、少なくとも車速Vと操舵角θs(s)とに基づいて、実スリップ角βa(s)を推定する。例えば実スリップ角推定部32は、次式(1)に基づいて実スリップ角βa(s)を推定してよい。
具体的には、車両1の旋回方向へ回転する車体スリップ角βの符号を正とし、旋回方向と反対方向に回転する車体スリップ角βの符号を負とした場合に、例えば車速Vが高い場合に車速Vが低い場合よりも小さな目標スリップ角βt(s)を設定してよい。例えば車速Vが高いほど小さな目標スリップ角を設定してよい。これにより、車速Vが高い場合に車両1は内向き状態になるのを抑制できる。また、車速Vが低い場合に車両1は外向き状態になるのを抑制して、車両1を内向き状態にし易くする。
図6は、制駆動力補正値演算部34の機能構成の一例のブロック図である。図6では、実スリップ角βa(s)と目標スリップ角βt(s)とに応じて後輪2Rの駆動力を補正する制駆動力補正値Crを演算する構成を例示している。
制駆動力補正値演算部34は、減算器40と、ゲイン乗算部41と、符号反転部42と、符号算出部43と、乗算器44及び46と、リミッタ45を備える。
符号反転部42は操舵角θs(s)の符号を反転し、符号算出部43は符号を反転した後の操舵角(−1×θs(s))の符号が正であれば値「1」を出力し、負であれば「−1」を出力する。乗算器44は、符号算出部43の出力をスリップ角差分△βに乗算することにより、スリップ角差分Δβの符号を正規化する。
リミッタ45は、乗算器44の出力(すなわち符号が正規化されたスリップ角差分Δβ)の上限値及び下限値を制限し、乗算器46は制限後のスリップ角差分Δβを補正前目標駆動力Fd0に乗算して制駆動力補正値Crを演算する。
このため、車体前後方向dbが目標車体前後方向dbtよりも旋回外側に向いている場合には後輪2Rの駆動力が増加して、車体前後方向dbが旋回内側の方向へ回転するように車体スリップ角βが制御される。反対に、車体前後方向dbが目標車体前後方向dbtよりも旋回内側に向いている場合には後輪2Rの駆動力が減少して、車体前後方向dbが旋回外側の方向へ回転するように車体スリップ角βが制御される。
このため、車体前後方向dbが目標車体前後方向dbtよりも旋回外側に向いている場合には前輪2Fの駆動力が減少して、車体前後方向dbが旋回内側の方向へ回転するように車体スリップ角βが制御される。反対に、車体前後方向dbが目標車体前後方向dbtよりも旋回内側に向いている場合には前輪2Fの駆動力が増加して、車体前後方向dbが旋回外側の方向へ回転するように車体スリップ角βが制御される。
さらに、制駆動力補正値演算部34は、制駆動力補正値Crとして、前輪2Fの駆動力を補正する制駆動力補正値CrFと、後輪2Rの駆動力を補正する制駆動力補正値CrRを同時に算出してもよい。この場合、駆動コントローラ19は、車体前後方向dbが目標車体前後方向dbtよりも旋回外側に向いている場合には前輪2Fの駆動力を減少させるとともに後輪2Rの駆動力を増加させる。反対に、車体前後方向dbが目標車体前後方向dbtよりも旋回内側に向いている場合には前輪2Fの駆動力を増加させるとともに後輪2Rの駆動力を減少させる。すなわち、制駆動力補正値CrFの符号は制駆動力補正値CrRの符号と異なっている。制駆動力補正値CrFの大きさと制駆動力補正値CrRの大きさは等しくても異なっていてもよい。制駆動力補正値CrFの大きさと制駆動力補正値CrRの大きさを等しくする場合には、前輪2Fと後輪2Rのいずれか一方の制駆動力補正値Crを演算し、演算した制駆動力補正値Crの符号を反転して他方の制駆動力補正値(−Cr)に設定してよい。制駆動力補正値CrFと制駆動力補正値CrRを符号の異なる同じ大きさの補正値にすることで、前輪2F及び後輪2Rの車輪制駆動力の補正のために車両1全体の駆動力が変化するのを防止できる。
駆動コントローラ19は、運転者によるアクセルペダル又はブレーキペダルの操作量に応じて目標回生制動力を演算し、演算した目標回生制動力を制駆動力補正値Crで補正して得られる回生制動力が発生するように、駆動源23を制御する。
または、コントローラ18は、運転者によるアクセルペダル又はブレーキペダルの操作量に応じて目標摩擦制動力を演算し、演算した目標摩擦制動力を制駆動力補正値Crで補正して得られる摩擦制動力が発生するように、アクチュエータ20のブレーキ制御アクチュエータを制御する。
図7は、実施形態の走行支援方法の一例のフローチャートである。
ステップS1において操舵角センサ12は、ステアリングホイールの操舵角θs(s)を検出する。コントローラ18は、車両1の車速Vを検出する。駆動コントローラ19は、補正前目標駆動力Fd0を演算する。
ステップS2においてコントローラ18は、少なくとも車速Vと操舵角θs(s)とに基づいて目標スリップ角βt(s)を推定する。
ステップS3においてコントローラ18は、少なくとも車速Vと操舵角θs(s)とに基づいて実スリップ角βa(s)を推定する。
ステップS5においてコントローラ18は、スリップ角差分Δβに基づいて制駆動力補正値Crを演算する。
ステップS6において駆動コントローラ19は、補正前目標駆動力Fd0を制駆動力補正値Crで補正前目標駆動力Fd0を補正することによって車輪に発生させる目標駆動力Fdを算出し、目標駆動力Fdを駆動源23に発生させる。その後に処理は終了する。
以下、実施形態の変形例について述べる。なお、以下の変形例では、車両1の旋回方向へ回転する車体スリップ角βの符号を正と定義し、旋回方向と反対方向に回転する車体スリップ角βの符号を負と定義する。また、駆動トルクである要求制駆動トルクTdの符号を正と定義し、制動トルクである要求制駆動トルクTdの符号を負と定義する。
(1)制駆動力補正値Crとして前輪2Fの制駆動力を増加させる補正とととともに後輪2Rの制駆動力を減少させる補正値を演算する場合、又は前輪2Fの制駆動力を減少させる補正値とともに後輪2Rの制駆動力を増加させる補正値を演算する場合、目標スリップ角演算部33は、要求制駆動トルクTdが大きい場合に要求制駆動トルクTdが小さい場合よりも大きな目標スリップ角βt(s)を設定してよい。例えば要求制駆動トルクTdが大きいほど大きな目標スリップ角βt(s)を設定してよい。例えば、要求制駆動トルクTdが駆動トルクである場合に要求制駆動トルクTdが制動力である場合よりも大きな目標スリップ角βt(s)を設定してよい。これにより、駆動時のアンダーステアの発生や制動時のオーバステアの発生を抑制できる。
(3)乗員のスイッチ13の操作により、車両1のドライブモードが設定された場合(すなわち運転者による運転操作に応答する車両1の応答特性が設定された場合)に、目標スリップ角演算部33は、応答特性が高い場合に応答特性が低い場合よりも大きな目標スリップ角βt(s)を設定してもよい。例えば、車両1のドライブモードが第1モードの場合に第2モードの場合よりも大きな目標スリップ角βt(s)を設定してよい。これにより、乗員の好みに合わせて車両1の車体スリップ角βを設定できる。
図8は、制駆動力補正値演算部34の機能構成の変形例のブロック図である。制駆動力補正値演算部34は、図6を参照して説明した機能構成に加えて、微分器50及び51と、減算器52と、ゲイン乗算部53と、乗算器54及び55と、加算器56を備える。
上述の実施形態と同様に、スリップ角速度差分Δβ’の符号を図8と反対に正規化することにより、前輪2Fの駆動力を補正する制駆動力補正値Crを演算できる。また、駆動力を補正する制駆動力補正値Crと同様に、制動力を補正する制駆動力補正値Crを演算してもよい。
(1)コントローラ18は、車両1の車速を検出する。操舵角センサ12は、ステアリングホイールの操舵角を検出する。コントローラ18は、運転者によるアクセルペダル又はブレーキペダルの操作量に応じて要求制駆動力を設定し、車体の前後方向dbから車両1の進行方向ddまでの角度である車体スリップ角βの目標値を、車速及び操舵角に基づいて目標スリップ角βt(s)として設定し、実際の車体スリップ角である実スリップ角βa(s)を推定又は検出し、車両1の旋回方向へ回転する車体スリップ角の符号を正とし、旋回方向と反対方向に回転する車体スリップ角の符号を負とすると、実スリップ角βa(s)が目標スリップ角βt(s)よりも大きい場合には、後輪の制駆動力を増加させるか、又は前輪に発生させる制駆動力を減少させるように要求制駆動力を補正し、実スリップ角βa(s)が目標スリップ角βt(s)よりも小さい場合には、後輪の制駆動力を減少させるか、又は前輪に発生させる制駆動力を増加させるように要求制駆動力を補正することにより目標制駆動力を設定する。駆動源23又はアクチュエータ20及び転舵装置21は、目標制駆動力を車両に発生させる。
これにより、車両1の車体スリップ角βを適切に制御することができるので、車体スリップ角が過大又は過少になることを抑制できる。この結果、所望の走行ラインに沿って車両を旋回させるための操舵操作が容易になる。
(3)コントローラ18は、車速が高い場合に車速が低い場合よりも小さな目標スリップ角βt(s)を設定してよい。これにより、車速Vが比較的低速である場合には車両1は外向き状態になるのを抑制するとともに、車速Vが比較的高速である場合には車両1は内向き状態になるのを抑制できる。
Claims (10)
- 車両の車速を検出し、
ステアリングホイールの操舵角を検出し、
運転者によるアクセルペダル又はブレーキペダルの操作量に応じて要求制駆動力を設定し、
車体の前後方向から前記車両の進行方向までの角度である車体スリップ角の目標値を、前記車速及び前記操舵角に基づいて目標スリップ角として設定し、
実際の車体スリップ角である実スリップ角を推定又は検出し、
前記車両の旋回方向へ回転する前記車体スリップ角の符号を正とし、前記旋回方向と反対方向に回転する前記車体スリップ角の符号を負とすると、前記実スリップ角が前記目標スリップ角よりも大きい場合には、後輪の制駆動力を増加させるか、又は前輪に発生させる制駆動力を減少させるように前記要求制駆動力を補正し、前記実スリップ角が前記目標スリップ角よりも小さい場合には、前記後輪の制駆動力を減少させるか、又は前記前輪に発生させる制駆動力を増加させるように前記要求制駆動力を補正することにより目標制駆動力を設定し、
前記目標制駆動力を前記車両に発生させる、
ことを特徴とする走行支援方法。 - 前記実スリップ角が前記目標スリップ角よりも小さい場合には、前記後輪の制駆動力を増加させるとともに前記前輪に発生させる制駆動力を減少させるように前記要求制駆動力を補正し、前記実スリップ角が前記目標スリップ角よりも大きい場合には、前記後輪の制駆動力を減少させるとともに前記前輪に発生させる制駆動力を増加させるように前記要求制駆動力を補正することにより前記目標制駆動力を設定することを特徴とする請求項1に記載の走行支援方法。
- 駆動力である前記要求制駆動力の符号を正とし制動力である前記要求制駆動力の符号を負とし、前記要求制駆動力が大きい場合に前記要求制駆動力が小さい場合よりも大きな前記目標スリップ角を設定することを特徴とする請求項2に記載の走行支援方法。
- 前記要求制駆動力が駆動力である場合に前記要求制駆動力が制動力である場合よりも大きな前記目標スリップ角を設定することを特徴とする請求項3に記載の走行支援方法。
- 前記車速が高い場合に前記車速が低い場合よりも小さな前記目標スリップ角を設定することを特徴とする請求項1~4のいずれか一項に記載の走行支援方法。
- 前記車両の横方向加速度を検出し、
前記横方向加速度が大きい場合に前記横方向加速度が小さい場合よりも大きな前記目標スリップ角を設定する、
ことを特徴とする請求項1~5のいずれか一項に記載の走行支援方法。 - 前記運転者からの選択入力に基づいて、前記運転者による運転操作に応答する前記車両の応答特性を変更し、
前記応答特性が高い場合に前記応答特性が低い場合よりも大きな前記目標スリップ角を設定する、
ことを特徴とする請求項1~6のいずれか一項に記載の走行支援方法。 - 前記目標スリップ角の微分値である目標スリップ角速度と前記実スリップ角の微分値である実スリップ角速度をそれぞれ算出し、
前記実スリップ角速度が前記目標スリップ角速度よりも大きい場合には、後輪の制駆動力を増加させるか、又は前輪に発生させる制駆動力を減少させるように前記要求制駆動力を補正し、前記実スリップ角速度が前記目標スリップ角速度よりも小さい場合には、前記後輪の制駆動力を減少させるか、又は前記前輪に発生させる制駆動力を増加させるように前記要求制駆動力を補正する、
ことを特徴とする請求項1~7のいずれか一項に記載の走行支援方法。 - 前記操舵角と前記車速に基づいて目標ヨーレイトを設定し、
前記車両に生じる実際のヨーレイトである実ヨーレイトを検出し、
前記実ヨーレイトが前記目標ヨーレイトよりも小さい場合に、前記後輪の制駆動力を増加させるか、又は前記前輪に発生させる制駆動力を減少させるように前記要求制駆動力を補正することにより目標制駆動力を設定する、
ことを特徴とする請求項1~7のいずれか一項に記載の走行支援方法。 - 車両の車速を検出する車速センサと、
ステアリングホイールの操舵角を検出する操舵角センサと、
運転者によるアクセルペダル又はブレーキペダルの操作量に応じて要求制駆動力を設定し、車体の前後方向から前記車両の進行方向までの角度である車体スリップ角の目標値を、前記車速及び前記操舵角に基づいて目標スリップ角として設定し、実際の車体スリップ角である実スリップ角を推定又は検出し、前記車両の旋回方向へ回転する前記車体スリップ角の符号を正とし、前記旋回方向と反対方向に回転する前記車体スリップ角の符号を負とすると、前記実スリップ角が前記目標スリップ角よりも大きい場合には、後輪の制駆動力を増加させるか、又は前輪に発生させる制駆動力を減少させるように前記要求制駆動力を補正し、前記実スリップ角が前記目標スリップ角よりも小さい場合には、前記後輪の制駆動力を減少させるか、又は前記前輪に発生させる制駆動力を増加させるように前記要求制駆動力を補正することにより目標制駆動力を設定するコントローラと、
前記目標制駆動力を前記車両に発生させる駆動力源又は制動装置と、
を備えることを特徴とする走行支援装置。
Priority Applications (5)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| JP2024513561A JP7799045B2 (ja) | 2022-04-05 | 2022-04-05 | 走行支援方法及び走行支援装置 |
| PCT/IB2022/000177 WO2023194760A1 (ja) | 2022-04-05 | 2022-04-05 | 走行支援方法及び走行支援装置 |
| EP22936056.5A EP4506223A4 (en) | 2022-04-05 | 2022-04-05 | MOVEMENT ASSISTANCE METHOD AND MOVEMENT ASSISTANCE DEVICE |
| CN202280094384.0A CN118922341B (zh) | 2022-04-05 | 2022-04-05 | 行驶辅助方法及行驶辅助装置 |
| US18/854,447 US12397777B2 (en) | 2022-04-05 | 2022-04-05 | Travel assistance method and travel assistance device |
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| PCT/IB2022/000177 WO2023194760A1 (ja) | 2022-04-05 | 2022-04-05 | 走行支援方法及び走行支援装置 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2023194760A1 true WO2023194760A1 (ja) | 2023-10-12 |
Family
ID=88244137
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/IB2022/000177 Ceased WO2023194760A1 (ja) | 2022-04-05 | 2022-04-05 | 走行支援方法及び走行支援装置 |
Country Status (5)
| Country | Link |
|---|---|
| US (1) | US12397777B2 (ja) |
| EP (1) | EP4506223A4 (ja) |
| JP (1) | JP7799045B2 (ja) |
| CN (1) | CN118922341B (ja) |
| WO (1) | WO2023194760A1 (ja) |
Families Citing this family (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2023157337A1 (ja) * | 2022-02-15 | 2023-08-24 | 日立Astemo株式会社 | 車両制御装置 |
Citations (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP2003194209A (ja) * | 2002-11-01 | 2003-07-09 | Toyota Motor Corp | 車両の制御装置 |
| WO2006013645A1 (ja) * | 2004-08-06 | 2006-02-09 | Hitachi, Ltd. | 車両姿勢制御装置および方法 |
| JP2020192938A (ja) * | 2019-05-30 | 2020-12-03 | 日立オートモティブシステムズ株式会社 | 車両走行制御装置、車両走行制御方法及び車両走行制御システム |
Family Cites Families (23)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| DE3661472D1 (en) * | 1985-04-13 | 1989-01-26 | Nissan Motor | Vehicle control system for controlling side slip angle and yaw rate gain |
| JPH0370633A (ja) | 1989-08-10 | 1991-03-26 | Mazda Motor Corp | 4輪駆動車の前後輪トルク制御装置 |
| JP3333091B2 (ja) * | 1996-07-03 | 2002-10-07 | 株式会社ユニシアジェックス | 車両運動制御装置 |
| US6035251A (en) * | 1997-11-10 | 2000-03-07 | General Motors Corporation | Brake system control method employing yaw rate and ship angle control |
| JP4094103B2 (ja) | 1998-02-25 | 2008-06-04 | 富士重工業株式会社 | 車両運動制御装置 |
| JP4866580B2 (ja) * | 2005-08-04 | 2012-02-01 | 日立オートモティブシステムズ株式会社 | 車両の走行制御装置 |
| DE102010038846A1 (de) * | 2009-08-05 | 2011-02-10 | Advics Co., Ltd, Kariya-city | Bewegungssteuervorrichtung für ein Fahrzeug |
| JP4918148B2 (ja) * | 2010-03-05 | 2012-04-18 | 本田技研工業株式会社 | 車両の運動制御装置 |
| JP4918149B2 (ja) * | 2010-03-05 | 2012-04-18 | 本田技研工業株式会社 | 車両の運動制御装置 |
| JPWO2012005260A1 (ja) * | 2010-07-09 | 2013-09-05 | 日産自動車株式会社 | 車両の左右輪駆動力配分制御装置 |
| JP5880927B2 (ja) * | 2011-10-06 | 2016-03-09 | 株式会社ジェイテクト | 車両用姿勢制御装置 |
| DE102012013611A1 (de) * | 2012-02-21 | 2013-08-22 | Volkswagen Ag | Verfahren und Vorrichtung zur Bestimmung eines resultierenden Soll-Lenkwinkels sowie Verfahren zur Einstellung eines Soll-Lenkwinkels |
| JP5971027B2 (ja) * | 2012-08-21 | 2016-08-17 | 株式会社ジェイテクト | 駆動力制御装置及び車両の制御方法 |
| DE102013214804A1 (de) * | 2013-07-29 | 2015-01-29 | Continental Teves Ag & Co. Ohg | Verfahren und System zur Sicherung der Fahrstabilität |
| JP6663333B2 (ja) * | 2016-09-23 | 2020-03-11 | 株式会社Subaru | 車両の制御装置及び車両の制御方法 |
| JP2018069998A (ja) * | 2016-10-31 | 2018-05-10 | 株式会社ジェイテクト | 車両用姿勢制御装置 |
| JP6976114B2 (ja) * | 2017-09-20 | 2021-12-08 | Ntn株式会社 | 車両制御装置 |
| JP6969440B2 (ja) * | 2018-02-26 | 2021-11-24 | トヨタ自動車株式会社 | 車両の運転支援装置 |
| JP6814192B2 (ja) * | 2018-11-26 | 2021-01-13 | 本田技研工業株式会社 | 車両制御装置、車両制御方法、およびプログラム |
| US11247561B2 (en) * | 2019-04-10 | 2022-02-15 | Akrus Inc. | Systems and methods for controlling driving dynamics in a vehicle |
| JP7636138B2 (ja) | 2020-03-12 | 2025-02-26 | 株式会社Subaru | 車両制御システム |
| KR20220034976A (ko) * | 2020-09-11 | 2022-03-21 | 현대자동차주식회사 | 차량 모터 제어 장치 및 그 방법 |
| WO2022141323A1 (zh) | 2020-12-30 | 2022-07-07 | 华为技术有限公司 | 一种车辆前后驱动扭矩分配方法、装置及车辆 |
-
2022
- 2022-04-05 US US18/854,447 patent/US12397777B2/en active Active
- 2022-04-05 EP EP22936056.5A patent/EP4506223A4/en active Pending
- 2022-04-05 CN CN202280094384.0A patent/CN118922341B/zh active Active
- 2022-04-05 WO PCT/IB2022/000177 patent/WO2023194760A1/ja not_active Ceased
- 2022-04-05 JP JP2024513561A patent/JP7799045B2/ja active Active
Patent Citations (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP2003194209A (ja) * | 2002-11-01 | 2003-07-09 | Toyota Motor Corp | 車両の制御装置 |
| WO2006013645A1 (ja) * | 2004-08-06 | 2006-02-09 | Hitachi, Ltd. | 車両姿勢制御装置および方法 |
| JP2020192938A (ja) * | 2019-05-30 | 2020-12-03 | 日立オートモティブシステムズ株式会社 | 車両走行制御装置、車両走行制御方法及び車両走行制御システム |
Non-Patent Citations (1)
| Title |
|---|
| See also references of EP4506223A4 * |
Also Published As
| Publication number | Publication date |
|---|---|
| US12397777B2 (en) | 2025-08-26 |
| JP7799045B2 (ja) | 2026-01-14 |
| EP4506223A4 (en) | 2025-08-06 |
| CN118922341A (zh) | 2024-11-08 |
| EP4506223A1 (en) | 2025-02-12 |
| JPWO2023194760A1 (ja) | 2023-10-12 |
| US20250171013A1 (en) | 2025-05-29 |
| CN118922341B (zh) | 2025-04-08 |
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| JP3046108B2 (ja) | 差動制限装置付き車両の舵力制御方法 | |
| CN106476798A (zh) | 车辆的控制装置及车辆的控制方法 | |
| JP6848653B2 (ja) | 操舵制御方法及び操舵制御装置 | |
| JP5919889B2 (ja) | 車両姿勢制御装置 | |
| CN118701030B (zh) | 一种基于双重稳定包络的车辆稳定性集成控制方法 | |
| JP2600386B2 (ja) | 後輪操舵制御装置 | |
| JP2000289637A (ja) | 車両用操舵装置 | |
| JP6662187B2 (ja) | 運転支援方法及び運転支援装置 | |
| JP7799045B2 (ja) | 走行支援方法及び走行支援装置 | |
| JP2003081119A (ja) | 自動車の電動パワーステアリング装置 | |
| JP5347500B2 (ja) | 車両制御装置及び車両制御方法 | |
| JP6329308B2 (ja) | 車両の制御装置及び車両の制御方法 | |
| CN118494487B (zh) | 车辆扭矩分配方法、装置、车辆及计算机可读存储介质 | |
| JP5321107B2 (ja) | 旋回挙動制御装置、及び旋回挙動制御方法 | |
| JPWO2023194760A5 (ja) | ||
| JP7484681B2 (ja) | 操舵方法及び操舵装置 | |
| JP7348262B2 (ja) | トルクステアの出現の段階的検出 | |
| CN112424055B (zh) | 车辆的辅助转向系统中辅助功能应用的加权 | |
| CN112449624B (zh) | 操舵控制装置以及操舵控制方法 | |
| CN116209612A (zh) | 线控转向式转向装置 | |
| JP3431061B2 (ja) | 車両用操舵制御装置 | |
| JP2018161943A (ja) | 車両の減速時姿勢制御装置 | |
| JPH1178933A (ja) | 車両の車体横滑り角推定方法及び推定装置 | |
| JP7582762B2 (ja) | 走行支援方法及び走行支援装置 | |
| JP2010179844A (ja) | 車両用操舵制御装置及び車両用操舵制御方法 |
Legal Events
| Date | Code | Title | Description |
|---|---|---|---|
| 121 | Ep: the epo has been informed by wipo that ep was designated in this application |
Ref document number: 22936056 Country of ref document: EP Kind code of ref document: A1 |
|
| ENP | Entry into the national phase |
Ref document number: 2024513561 Country of ref document: JP Kind code of ref document: A |
|
| WWE | Wipo information: entry into national phase |
Ref document number: 202280094384.0 Country of ref document: CN |
|
| WWE | Wipo information: entry into national phase |
Ref document number: 18854447 Country of ref document: US |
|
| WWE | Wipo information: entry into national phase |
Ref document number: 2022936056 Country of ref document: EP |
|
| NENP | Non-entry into the national phase |
Ref country code: DE |
|
| ENP | Entry into the national phase |
Ref document number: 2022936056 Country of ref document: EP Effective date: 20241105 |
|
| WWG | Wipo information: grant in national office |
Ref document number: 202280094384.0 Country of ref document: CN |
|
| WWP | Wipo information: published in national office |
Ref document number: 18854447 Country of ref document: US |
|
| WWG | Wipo information: grant in national office |
Ref document number: 18854447 Country of ref document: US |