Patent classifications
B60G2600/17
GYROSCOPE-BASED ROTATION DAMPER FOR A MOTOR VEHICLE
A gyroscope-based rotation damper for a motor vehicle, includes a flywheel that is driven via a drive, rotates around an axis of rotation at an angular velocity (ω.sub.φ), the flywheel being mounted in a gimbal on the motor vehicle structure by way of a first bearing element and a second bearing element. The flywheel is mounted rotatably around the angle of rotation (φ) at the first bearing element, and the first bearing element is rotatably mounted at the second bearing element around a first angle of rotation (θ) around a first axis aligned orthogonal to the axis of rotation of the flywheel, and the second bearing element is mounted rotatably around a second angle of rotation (ψ) around a second axis aligned orthogonal to the first axis, as well as a controller unit for controlling a shaft drive.
Driving Dynamics Control of a Vehicle by Means of Dampers
The invention relates to a method for controlling the driving dynamics of a vehicle by means of dampers, wherein the vehicle comprises at least two axles, which each have at least two wheels including dampers, and wherein the method has the following control:
a) Obtaining a target driving dynamics variable;
b) determining a control deviation using the target driving dynamics variable and an actual driving dynamics variable;
c) Changing the damper force of at least one damper according to the control deviation;
d) Updating and feeding back the actual driving dynamics variable to once again determine the control deviation when the damper force changes.
VEHICLE SUSPENSION CONTROL DEVICE AND VEHICLE SUSPENSION CONTROL METHOD
A vehicle suspension control device includes: an actuator configured to apply a control force in a vertical direction between an unsprung structure and a sprung structure; and an electronic control unit configured to control the actuator so as to generate the control force according to a required control amount for reducing vibration of the sprung structure. The required control amount includes at least two control terms of a displacement term, a velocity term, and an acceleration term related to displacement, velocity, and acceleration of the sprung structure. The electronic control unit calculates a magnitude of a frequency component of each of a plurality of frequency bands included in road surface vibration information, and determines a control gain of each of the at least two control terms so as to change based on the magnitude of the frequency component of each of the plurality of frequency bands.
ELECTRONICALLY OPEN-LOOP OR CLOSED-LOOP CONTROLLED AIR SPRING SYSTEM, AIR SPRING SYSTEM AND METHOD FOR HEIGHT REGULATION OF A VEHICLE
A controlled air spring system with a compressed air supply for height regulation of a vehicle includes a number of air springs and a reservoir for the storage of compressed air, a number of switching valves for height regulation, and a controller configured to actuate the number of switching valves. The at least one switching valve is actuated with a number of sequential switching periods and switches over in a switching period, between a first switching state with an open valve state and a second switching state with a closed valve state, the switching period of the number of sequential shifting periods having the open valve state and the closed valve state. The controller is configured to set a speed for a height change of the height regulation. The setting of the speed takes place via an open/closed parameter.
DAMPING CONTROL DEVICE AND DAMPING CONTROL METHOD FOR VEHICLE
A damping control device for a vehicle includes a control force generating device configured to generate vertical control force between a vehicle body of the vehicle and at least one wheel suspended from the vehicle body by a suspension, and an electronic control unit configured to reduce, by controlling the control force generating device to change the control force, vibration of the vehicle body that is caused by vertical vibration occurring in the wheel in response to vertical road surface displacements while the vehicle is traveling, the vertical vibration being transmitted to the vibration of the vehicle body via the suspension.
CONFIGURABLE INTERCONNECTED SUSPENSION SYSTEM
A vehicle includes a suspension system for providing configurable stiffness and damping. The system includes a plurality of hydraulic cylinders, each corresponding to a respective wheel of the vehicle, and one or more valve assemblies for controlling hydraulic fluid in the plurality of hydraulic cylinders to achieve a plurality of suspension modes affecting bounce, pitch, roll, and warp. The system also includes a plurality of accumulators acting as spring elements for storing and releasing the hydraulic fluid as the plurality of hydraulic cylinders compress and rebound. The system includes control circuitry for controlling the valve assemblies to achieve one or more suspension modes defining bounce, pitch, roll, and warp stiffnesses. By generating control signals for the valve assemblies, various interconnections or fluid paths can be achieved, corresponding to the suspension modes. The hydraulic cylinders are double acting, with rebound and compression volumes, and may be coupled to damping valves.
Vehicle control method and vehicle control apparatus
A vehicle control method includes a step of executing preview vibration damping control for controlling a control force generating apparatus, when a wheel passes a predicated passage position, on the basis of a target control force computed by using a road surface displacement related value at the predicated passage position. The control method further includes a step of determining whether or not a predetermined condition is satisfied, the predetermined condition being satisfied when a time series change of the road surface displacement related value on a predicted route of the wheel falls within a controllable range of the control force generating apparatus, and a step of executing a particular process for reducing the magnitude of the road surface displacement related value at the predicted passage position when the predetermined condition is not satisfied.
VEHICLE CONTROL METHOD AND VEHICLE CONTROL APPARATUS
A vehicle control method includes a step of executing preview vibration damping control for controlling a control force generating apparatus, when a wheel passes a predicated passage position, on the basis of a target control force computed by using a road surface displacement related value at the predicated passage position. The control method further includes a step of determining whether or not a predetermined condition is satisfied, the predetermined condition being satisfied when a time series change of the road surface displacement related value on a predicted route of the wheel falls within a controllable range of the control force generating apparatus, and a step of executing a particular process for reducing the magnitude of the road surface displacement related value at the predicted passage position when the predetermined condition is not satisfied.
METHOD TO CONTROL AN ACTIVE SHOCK ABSORBER OF A ROAD VEHICLE
A method to control an active shock absorber of a road vehicle. The active shock absorber is part of a suspension connecting a frame of the road vehicle to a hub of a wheel and has: a first element, which defines an end of the active shock absorber, a second element, which defines another end of the active shock absorber and is mounted so as to slide relative to the first element; and an actuator, which is configured to generate a force, which is applied between the two elements. The control method comprises the steps of: determining a vertical acceleration of the hub; determining a speed of translation between the two elements of the active shock absorber; determining a target force for the actuator of the active shock absorber based on the vertical acceleration of the hub and based on the speed of translation between the two elements of the active shock absorber; and controlling the actuator (10) of the active shock absorber so as to pursue the target force.
System and method for controlling the stability of a vehicle provided with a semi-active suspension
A system for controlling the stability of a vehicle equipped with semi-active dampers includes: an actuator, a plurality of sensors, a low-level control unit, a high-level control unit and a mid-level control unit adapted to execute an algorithm for calculating a damping level (C.sub.ref).