B60T8/246

VEHICLE BRAKING FORCE CONTROL DEVICE

A behavior stabilizer of a vehicle braking force control device includes a plurality of first valves configured to control movement of a hydraulic fluid to respective friction brakes, second valves configured to control the movement of the hydraulic fluid to reservoirs, and a drive motor configured to drive pumps that pump the hydraulic fluid from the reservoirs into a path leading to a hydraulic pressure generator. When a vehicle is in a state of turning at a specific vehicle speed or lower, a controller executes a turning control to control operation of an electric actuator to cause the hydraulic pressure generator to generate hydraulic pressure, and to control open/closed states of the first valves and the second valves to apply a braking force to a plurality of wheels. The controller keeps the driving of the drive motor in a stopped state during the turning control.

BRAKE-BY-WIRE SYSTEM WITH PISTON PRY-BACK PREVENTION
20190143950 · 2019-05-16 ·

A Brake-By-Wire (BBW) system for a vehicle includes a brake rotor, a caliper, a master cylinder, and a controller. The caliper is adapted to exert a hydraulic force upon the brake rotor during a braking action. The master cylinder includes a housing, a piston, an actuator, and a hydraulic fluid reservoir. The housing defines a piston cavity. The actuator is adapted to controllably move the piston within the piston cavity. A compensation opening is defined by the housing, and is in fluid communication between the reservoir and the piston cavity. A fluid opening is defined by the housing, and is in fluid communication between the caliper and the piston cavity. The controller is configured to receive a vehicle condition signal and send a command signal to the actuator that effects closure of the compensation opening based on the vehicle condition signal to prevent hydraulic fluid flowback to the hydraulic fluid reservoir.

BRAKING FORCE CONTROL APPARATUS FOR VEHICLE

A braking force control apparatus is provided which has an upstream braking actuator for generating an upstream pressure common to four wheels, a downstream braking actuator individually controlling braking pressure supplied to braking force generating devices of the wheels using the upstream pressure, and a control unit. When the downstream braking actuator is abnormal and the upstream pressure can be supplied to the braking force generating devices, but a braking pressure of any one of the wheels cannot be normally controlled, the control unit selects a control mode on the pressure increasing side out of the front wheel control modes, selects a control mode on the pressure increasing side out of the rear wheel control modes, selects a control mode on the pressure decreasing side out of the two selected control modes as a prescribed control mode, and controls the upstream pressure in the prescribed control mode.

Service Brake Assist Steering

A brake assist system is disclosed for assisting the steering operations of a mobile vehicle. The brake assist system comprises a service brake assembly having a first brake device and a second brake device and an auxiliary control assembly coupled to the service brake assembly. An electronic control unit is communicatively coupled to the auxiliary control assembly and configured to receive an input signal indicative of a vehicle operating parameter comprising at least one of a steering angle generated by a vehicle guidance system or a vehicle speed error and generates a control signal to activate the main and secondary valve circuits by proportionally controlling an output of at least two control valves arranged in the main and secondary valve circuits to supply a pressurized flow of fluid is applied to at least one of the first or second brake devices to assist steering operations of the vehicle.

Vehicle stability control device

A vehicle stability control device includes a yaw moment generation device and a control device. A variation yaw moment generated by simultaneous turn and acceleration/deceleration is expressed as a function of a longitudinal acceleration and a lateral acceleration. A longitudinal force and a lateral force of a tire have non-linear load dependency. The variation yaw moment when assuming that the load dependency is linear is a first variation yaw moment. The variation yaw moment considering the non-linear load dependency is a second variation yaw moment that is expressed as a product of the first variation yaw moment and a correction gain. In vehicle stability control, the control device controls the yaw moment generation device to generate a counter yaw moment counteracting the second variation yaw moment, based on the longitudinal acceleration, the lateral acceleration, and the correction gain.

Driver assistance system with reduced activation time

A method is disclosed for the operation of an automated parking brake of a motor vehicle with a hydraulic operating brake and an automated parking brake. The parking brake can adopt at least a disengaged position, an engaged position, and an intermediate position between the disengaged position and the engaged position. The method includes determining a parking variable representing a parking process of the motor vehicle, and bringing the parking brake into the intermediate position in response to the determined parking variable.

APPARATUS AND METHOD FOR CONTROLLING BRAKE SYSTEM IN CASE OF STEERING SYSTEM FAILURE
20240278755 · 2024-08-22 ·

An apparatus for controlling a brake system includes: an upper controller generating calculating a first control signal so that a difference between a control target and a vehicle state is equal to or less than a threshold through state-feedback control; and a lower controller converting the first control signal into a braking torque for each of vehicle wheels, and distributing a braking pressure to actuators of the vehicle wheels through the brake system so that the braking torque for each which can be generated.

Vehicle acceleration and deceleration control device

A target acceleration/deceleration setting unit (28) of a vehicle acceleration/deceleration controller (16) sets a target acceleration or deceleration at a location at which a curve starts to be a predetermined maximum deceleration, sets a target acceleration or deceleration at a location at which the curve ends to be a predetermined maximum acceleration, sets a target acceleration or deceleration at a predetermined intermediate location between the location at which the curve starts and the location at which the curve ends to be zero, and sets a target deceleration D (Ld) at a location to which the travelling distance from the location at which the curve starts is Ld and a target acceleration A (La) at a location to which the travelling distance from the predetermined intermediate location is La to satisfy respective predetermined relations.

METHOD FOR CONTROLLING A VEHICLE
20180339686 · 2018-11-29 ·

A method of controlling a vehicle including providing a system having a plurality of brakes and a curve detecting mechanism. Each brake of the plurality of brakes is configured to slow rotation of a respective wheel. The method further includes detecting a curve in a forward travel path of the vehicle using the curve detecting mechanism. At least two brakes but fewer than all of the plurality of brakes are pre-filled in response to the detection of a curve.

CONTROLLER FOR WORK MACHINE, CONTROL METHOD FOR WORK MACHINE, AND WORK MACHINE

A controller for a work machine includes a steering control circuit, a memory, and a speed control circuit. The steering control circuit is configured to control a steering of the work machine to change a steering angle based on a travel route. The memory is to store a threshold angle. The speed control circuit is configured to control a speed of the work machine if the steering angle is equal to or larger than the threshold angle and if the steering control circuit does not control the steering.