IP Library Granted Patent US 12662108
Granted Patent B2
US 12662108 · App. 18/862,568 · Granted Jun 23, 2026

System and method for vehicle motion control

Inventors: Johan Hulten (Gothenburg, SE); Lars Markström (Vastra Frolunda, SE); Erik Torstensson (Boras, SE)
Assignee: SENTIENT AB
B60W10/20B60W10/184B60W30/02B60W50/029B60W2050/0292B60W2510/207B60W2520/14
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Quick Facts
Patent No.
US 12662108
App. No.
18/862,568
Granted
Jun 23, 2026
Kind
B2
Abstract

The present invention relates to a system for vehicle motion control ( 100 ) of a vehicle with at least a steering system and one or more of a brake system ( 24 ) and a torque vectoring system, a number of sensors ( 11.21 ) for sensing at least vehicle speed or wheel speed, yaw rate and wheel angle, said vehicle motion control system comprising a Yaw Stability Control (YSC) functionality comprising an oversteer control function, wherein the YSC function is arranged to be fail-operational.

Claims (37)

1 . A system for vehicle motion control of a vehicle with a steering system, and/or a brake system, and/or a torque vectoring system, and a number of sensor arrangements comprising sensors for sensing, directly and/or allowing calculation of, at least vehicle speed or wheel speed, yaw rate and steering angle, said vehicle motion control system comprising a Yaw Stability Control (YSC) functionality with an oversteer control functionality,

wherein the YSC functionality is arranged to be fail-operational and comprises at least two YSC systems such that when one is shut down, the other will still be working, each of which being connected to one or more of the sensor arrangements comprising a number of sensors, the at least two YSC systems each comprising a controller comprising an oversteer control functionality for controlling the vehicle path by controlling a yaw and/or lateral vehicle state, said at least two YSC systems comprises at least two of one or more YSC systems arranged to act on the/a steering system of the vehicle by acting on one or more steering system actuators comprising steering system gear or position actuators, an YSC system, which is arranged to act on the/a braking system of the vehicle by acting on one or more brake system actuators and an YSC system, which is arranged to act on the/a torque vectoring system of the vehicle by acting on one or more torque vectoring system actuators, in any combination;

wherein the sensor arrangement(s) at least comprise(s) sensors collecting information allowing determination of vehicle velocity, steering angle and at least one yaw and/or lateral vehicle state, either through direct sensing or through calculation;

wherein the, or each, sensor arrangement comprises at least one or more sensors for allowing calculation of one or more target yaw and/or lateral vehicle states using one or more of steering angle, vehicle speed, by means of a vehicle model or calculated using a steering angle, a torsion-bar torque and an inverse steering torque feedback calculation, the steering torque being a feedback or function of the yaw and/or lateral vehicle state, and, sensing or calculation of an actual yaw and/or lateral vehicle state and a difference between the/a target and the/an actual state being established or calculated, forming at least one control error and wherein the control error(s) is/are input to each controller; and

wherein the, or each, control error is used for input to the steering control function, and/or to the braking control function, and/or to the torque vectoring function, and the steering control function and/or the braking control function and/or the torque vectoring function is/are adapted to minimize an input control error by controlling one or more steering actuators and/or brake actuators and/or torque vectoring actuators respectively.

2 . The system for vehicle motion control according to claim 1 , wherein the sensor arrangement(s) further at least comprise(s) sensor(s) collecting information allowing determination of driver or torsion-bar torque.

3 . The system for vehicle motion control according to claim 1 , wherein the sensing or calculation of an actual yaw and/or lateral vehicle state is a vehicle yaw rate, vehicle lateral acceleration or vehicle slip.

4 . The system for vehicle motion control according to claim 1 , wherein the at least two YSC systems comprises a first YSC system with a controller comprising a steering control function comprising an ECU for steering control comprising an oversteer control function and is arranged to act on the vehicle steering system by acting on one or more steering system actuators comprising steering system gear or position actuators and a second YSC system with a controller comprising a braking control function comprising an ECU with an oversteer control function and is arranged to act on a vehicle braking system by acting on one or more brake system actuators.

5 . The system for vehicle motion control at least according to claim 4 , wherein the steering control function comprising an oversteer control function of one of the at least two YSC systems is arranged to minimize an error between a target yaw and/or lateral vehicle state and an actual yaw and/or lateral vehicle state by controlling a steering system actuator controlling the steering angle generating lateral forces on wheel tires of the vehicle.

6 . The system for vehicle motion control at least according to claim 1 , wherein the braking control function comprising an oversteer control function of one of the at least two YSC systems is arranged to minimize an error between a target yaw and/or lateral vehicle state and an actual yaw and/or lateral vehicle state by controlling a braking or a torque vectoring actuator controlling longitudinal forces on wheel tires of the vehicle.

7 . The system for vehicle motion control according to claim 1 , wherein the at least one yaw and/or lateral vehicle state comprises at least one or more of vehicle wheel speed, vehicle angular speed around an axis in yaw, pitch or roll direction, acceleration in longitudinal, lateral or vertical direction, vehicle position, slip angle, lateral acceleration or a linear combination thereof.

8 . The system for vehicle motion control according to claim 1 , wherein the at least two YSC systems are independent.

9 . The system for vehicle motion control according to claim 8 , wherein the at least two YSC systems are fail-safe.

10 . The system for vehicle motion control according to claim 9 , wherein the at least two YSC systems are fail-safe meeting ASIL-C requirements.

11 . The system for vehicle motion control according to claim 1 , wherein the system comprises two sensor arrangements, a first sensor arrangement for the first YSC system and a second sensor arrangement for the second YSC system, and for each of said sensor arrangements, critical sensors for determining at least vehicle velocity, steering angle and at least one yaw and/or lateral vehicle state are redundant allowing detection of faults, and if a fault is detected for a critical sensor of the first or second sensor arrangement, the YSC-functionality of the respective YSC-system is shut off.

12 . A system for vehicle motion control of a vehicle with a steering system, and/or a brake system, and/or a torque vectoring system, and a number of sensor arrangements comprising sensors for sensing, directly and/or allowing calculation of, at least vehicle speed or wheel speed, yaw rate and steering angle, said vehicle motion control system comprising a Yaw Stability Control (YSC) functionality with an oversteer control functionality;

wherein the YSC functionality is arranged to be fail-operational and comprises at least two YSC systems such that when one is shut down, the other will still be working, each of which being connected to one or more of the sensor arrangements comprising a number of sensors, the at least two YSC systems each comprising a controller comprising an oversteer control functionality for controlling the vehicle path by controlling a yaw and/or lateral vehicle state, said at least two YSC systems comprises at least two of one or more YSC systems arranged to act on the/a steering system of the vehicle by acting on one or more steering system actuators comprising steering system gear or position actuators, an YSC system, which is arranged to act on the/a braking system of the vehicle by acting on one or more brake system actuators and an YSC system, which is arranged to act on the/a torque vectoring system of the vehicle by acting on one or more torque vectoring system actuators, in any combination; and

one sensor arrangement which is common for the first YSC system and for the second YSC system, and in that critical sensors for determining at least vehicle velocity, steering angle and at least one yaw and/or lateral vehicle state at least are triple redundant following a two-out-of-three logic.

13 . The system for vehicle motion control according to according to claim 12 , wherein the common sensor arrangement is set-up or arranged to be fail-operational.

14 . The system for vehicle motion control according to claim 13 , wherein the sensor arrangement comprises a steering wheel angle sensor and two motor angle sensors allowing calculation of three road wheel angles and a road wheel angle sensor fusion function implementing two-out-of-three logic to provide a road wheel angle or steering angle signal to a vehicle model of the first and of the second YSC system, wheel speed sensors for sensing four wheel speeds and a wheel speed sensor fusion function implementing two-out-of-three logic to provide a vehicle speed signal to the vehicle model of the first and of the second YSC system, and two yaw rate sensors for provide two yaw rate signals to a yaw rate sensor fusion function, said yaw rate sensor fusion function further being arranged to calculate a third yaw rate from a wheel speed signal from the wheel speed sensors, thus implementing two-out-of-three logic to provide a yaw-rate signal to the control errors to the controllers of the first and of the second YSC system.

15 . The system for vehicle motion control according to claim 12 , wherein the sensor arrangement comprises three steering wheel torque sensors, a steering wheel angle sensor and two motor angle sensors providing signals to a steering angle sensor fusion function implementing two-out-of-three logic for calculation of a target yaw and/or lateral vehicle state in a calculation function, wheel speed sensors for sensing four wheel speeds and a wheel speed sensor fusion function implementing two-out-of-three logic to provide a vehicle speed signal to the target yaw and/or lateral vehicle state calculation function, and two yaw rate sensors for providing two yaw rate signals to a yaw rate sensor fusion function, said yaw rate sensor fusion function further being arranged to calculate a third yaw rate from a wheel speed signal from the wheel speed sensors, thus implementing two-out-of-three logic to provide an actual yaw and/or vehicle state signal to a control error calculation function, the yaw and/or lateral vehicle state calculation function providing a target yaw and/or lateral vehicle state signal to the control error calculation, for input of the calculated control error(s) to the controllers of the first and of the second YSC system.

16 . The system for vehicle motion control according to claim 1 , wherein the fail-operational YSC functionality is provided by means of one or more fail-operational vehicle systems or a combination of fail-safe and fail-operational subsystems or subfunctions.

17 . The system for vehicle motion control according to claim 16 , wherein the one or more fail-operational systems are a vehicle fail-operational steering system and/or a fail-operational braking system and/or a fail-operational torque vectoring system.

18 . The system for vehicle motion control according to claim 17 , wherein the fail-operational steering system and/or a fail-operational braking system and/or a fail-operational torque vectoring system is achieved by means of a combination of independent failsafe and fail-operational subsystems or sub-functions comprising an input signal sensing arrangement, sensor fusion arrangement, target calculation, control system, actuating arrangement, a steering system, brake system or torque vectoring system with double ECU's, a steering system with double motors, or common sensors.

19 . The system for vehicle motion control according to claim 1 , wherein the system is adapted for use in a steer-by-wire steering system or a wireless steering system.

20 . The system for vehicle motion control according to claim 1 , wherein the system is adapted for use in an autonomous vehicle with a fail-operational steering system.

21 . A vehicle comprising a system for vehicle motion control according to claim 1 , wherein the vehicle is a car, a bus, a truck, an autonomous car, bus, truck or similar, a hybrid vehicle or a fully electrical vehicle.

22 . A method for vehicle motion control of a vehicle with a steering system, and/or a brake system, and/or a torque vectoring system, and a number of sensor arrangements comprising sensors for sensing, directly and/or allowing calculation of, at least vehicle speed or wheel speed, yaw rate and steering angle, said vehicle motion control system comprising a Yaw Stability Control (YSC) functionality with an oversteer control functionality comprising the step of:

arranging the YSC functionality to be fail-operational by:

providing at least a first and a second YSC system, such that when one is shut down, the other will still be working, for controlling the vehicle path by controlling a yaw and/or lateral vehicle state, said at least first and second YSC systems being independent with each a controller with an oversteer control function, and each connected to one or more sensor arrangements comprising a number of sensors, said at least two YSC systems further comprising at least two of one or more YSC system(s) which is/are arranged to act on the/a steering system of the vehicle by acting on one or more steering system actuators comprising steering system gear or position actuators, an YSC system, which is arranged to act on the/a braking system of the vehicle by acting on one or more brake system actuators;

an YSC system, which is arranged to act on the/a torque vectoring system of the vehicle by acting on one or more torque vectoring system actuators, in any combination;

determination from input signals from the sensor arrangement(s) of a measure of a torque applied by a driver via a steering wheel;

transformation of the above-mentioned input signal of a measure of a torque applied by the driver via a steering wheel to a target yaw and/or lateral vehicle state, providing the target yaw and/or lateral vehicle state as input signals to one or more YSC controller(s); and

minimizing control error(s) between the target yaw and/or lateral vehicle state and a corresponding measured actual yaw and or lateral vehicle state in the YSC controller(s) controlling said one or more yaw and/or lateral vehicle state actuators for the vehicle state control using a said minimized control error(s).

23 . The method for vehicle motion control according to claim 22 , comprising the step of providing a fail-operational YSC-functionality by providing at least a first and a second fail-safe YSC system.

24 . The method for vehicle motion control according to claim 22 , comprising the step of providing a fail-operational YSC-functionality by providing one or more fail-operational vehicle systems or a combination of fail-safe and fail-operational subsystems or sub-functions.

25 . The system for vehicle motion control according to claim 11 , further comprising including provisioning of a warning or an indication to a driver of the vehicle.