Methods and apparatus for operating vehicles including continuously controlled damping systems
The disclosure relates in general to a vehicle and to a method for operating a vehicle methods and apparatus for operating vehicles including continuously controlled damping systems. An example vehicle includes a first height sensor and a second height sensor coupled to a first axle, and a third height sensor coupled to a second axle, the height sensors configured to determine vertical positions, a rotation-rate sensor configured to sense a relative roll angle of a rotation of the vehicle about a longitudinal axis, machine readable instructions, and a control device coupled to the height sensors and the rotation-rate sensor, the machine readable instructions to cause the control device to determine an estimated vertical position of the second axle based on the vertical positions and the relative roll angle.
1 . A vehicle comprising:
a first height sensor and a second height sensor coupled to a first position and a second position of a first axle, and a third height sensor coupled to third position of a second axle, the height sensors configured to determine vertical positions;
a rotation-rate sensor configured to sense a relative roll angle of a rotation of the vehicle about a longitudinal axis;
machine readable instructions; and
a control device coupled to the height sensors and the rotation-rate sensor, the machine readable instructions to cause the control device to determine an estimated vertical position for a fourth position of the second axle based on the vertical positions and the relative roll angle.
2 . The vehicle of claim 1 , wherein the machine readable instructions cause the control device to determine, based on a Kalman filter and the relative roll angle, an absolute roll angle.
3 . The vehicle of claim 2 , wherein the machine readable instructions cause the control device to determine the estimated vertical position further based on the absolute roll angle.
4 . The vehicle of claim 1 , wherein the machine readable instructions cause the control device to, based on the vertical positions and the estimated vertical position, adjust a suspension travel setpoint for a spring-damper unit of the vehicle.
5 . The vehicle of claim 4 , wherein the machine readable instructions cause the control device to determine an actual suspension travel of the spring-damper unit based on the vertical positions or the estimated vertical position of the vehicle.
6 . The vehicle of claim 5 , wherein the machine readable instructions cause the control device to adjust the suspension travel setpoint further based on a comparison of the determined actual suspension travel with the suspension travel setpoint.
7 . The vehicle of claim 4 , wherein the spring-damper unit includes a spring device and a damping device.
8 . The vehicle of claim 1 , wherein the first, second, third, and fourth positions are arranged at vertices of a trapezoid or a rectangle.
9 . The vehicle of claim 1 , wherein the third position and the fourth position are arranged symmetrically along a width of the vehicle with respect to an axle mid-point of the second axle.
10 . A method for operating a vehicle, the vehicle including a first height sensor and a second height sensor coupled to a first axle of the vehicle, a third height sensor coupled to a second axle of the vehicle, and a rotation sensor, the method comprising:
determining a first vertical position of the first axle based on first data from the first height sensor and the second height sensor;
determining a relative roll angle of a rotation of the vehicle about a vehicle longitudinal axis based on second data from the rotation sensor; estimating a second vertical position of the second axle, based on third data from the third height sensor and the second data; and
adjusting a suspension travel setpoint for a spring-damper unit of the vehicle based on the first vertical position and the second vertical position.
11 . The method of claim 10 , further including determining an absolute roll angle of the vehicle based on a Kalman filter and the second data.
12 . The method of claim 11 , wherein estimating the second vertical position is further based on the absolute roll angle.
13 . The method of claim 10 , further including determining an actual suspension travel of the spring-damper unit based on the first vertical position or the second vertical position.
14 . The method of claim 13 , wherein adjusting the suspension travel setpoint for the spring-damper unit is further based on a comparison of the actual suspension travel with the suspension travel setpoint.
15 . An apparatus for adjusting a setpoint of a spring-damper unit of a vehicle, the apparatus comprising:
machine readable instructions; and
programmable circuitry to execute the machine readable instructions to:
determine a first vertical position of a first axle based on first data from a first height sensor and a second height sensor;
determine a roll angle of a rotation of the vehicle;
determine a second vertical position of a second axle based on the first vertical position and the roll angle; and
adjust the setpoint of the spring-damper unit based on the first vertical position, the second vertical position, and the roll angle.
16 . The apparatus of claim 15 , wherein the machine readable instructions cause the programmable circuitry to determine, based on a Kalman filter and the roll angle, an absolute roll angle.
17 . The apparatus of claim 16 , wherein the machine readable instructions cause the programmable circuitry to determine the second vertical position further based on the absolute roll angle.
18 . The apparatus of claim 15 , wherein the machine readable instructions cause the programmable circuitry to determine an actual suspension travel of the spring-damper unit based on the first vertical position and the second vertical position.