Patent classifications
B60G2800/214
METHOD TO CONTROL THE ACTIVE SHOCK ABSORBERS OF A ROAD VEHICLE FEATURING THE LOWERING OF THE CENTRE OF GRAVITY
Method to control active shock absorbers of a road vehicle. Each active shock absorber is part of a suspension connecting a frame to a hub of a wheel and is provided with an actuator. The control method comprises the steps of: determining a longitudinal acceleration and a transverse acceleration of the road vehicle; establishing a desired lowering of a centre of gravity of the road vehicle depending on the longitudinal acceleration and on the transverse acceleration; and controlling the actuator of each active shock absorber so as to obtain the desired lowering of the centre of gravity.
METHOD TO CONTROL THE ACTIVE SHOCK ABSORBERS OF A ROAD VEHICLE FEATURING THE ADJUSTMENT OF THE ROLL ANGLE AND OF THE PITCH ANGLE
Method to control active shock absorbers of a road vehicle. Each active shock absorber is part of a suspension connecting a frame to a hub of a wheel and is provided with an actuator. The control method comprises the steps of: determining a longitudinal acceleration and a transverse acceleration of the road vehicle; establishing a desired roll angle based on the transverse acceleration; and establishing a desired pitch angle based on the longitudinal acceleration.
DRIVE CONTROL DEVICE
A drive control device for a multi-axle-driving electrified vehicle including a first driving axle that is rotationally driven by a first electric motor and a second driving axle that is rotationally driven by a second electric motor includes: an axle load distribution change control unit configured to perform axle load distribution change control for changing an axle load distribution for the first driving axle and the second driving axle; and a drive control unit configured to control operations of the first electric motor and the second electric motor. The drive control unit is configured to perform driving force change control for changing driving forces of the first electric motor and the second electric motor when the axle load distribution change control unit performs the axle load distribution change control.
DYNAMIC WEIGHT SHIFT SUSPENSION SYSTEM
A dynamic weight shift suspension system for shifting the tandem axle loads on a vehicle. The system includes a first airbag connected between the drive axle of a tandem and the vehicle frame, and a second airbag connected between a tag axle of a tandem and the vehicle frame. The system also has a mechatronic control unit comprising at least one port and at least one solenoid. The mechatronic control unit is in direct fluid communication with the airbags and an air supply via fluid communication lines.
METHOD FOR OPERATING A MOTOR VEHICLE
A method for operating a motor vehicle which includes an active chassis system with which it is possible to change a wheel load distribution between two rear wheels and two front wheels which are deflected relative to a supporting structure of the motor vehicle by a steering system during a maneuvering process, wherein friction occurs at the front wheels owing to ground contact. In order to prevent the occurrence of undesired noise during the maneuvering, during the maneuvering process with the large wheel deflection, the wheel load at a first wheel pair, which comprises a left/right front wheel and a right/left rear wheel arranged diagonally with respect thereto, is reduced selectively compared to a second wheel pair, which comprises a right/left front wheel and a left/right rear wheel arranged diagonally with respect thereto, in order to reduce the friction at one of the two front wheels during the maneuvering.
TRUCK TIRE SCRUB INTERVENTION
A system and apparatus that reduces tire scrub on a truck and or trailer during turns. The system minimizes the redistribution of the load among the tires thereby spreading the load of the trailer or truck among the tires avoiding unnecessary overloading. The system operates without operator intervention and is capable of operating automatically on trailers, without control signals from the truck.
SLIP CONTROL VIA ACTIVE SUSPENSION FOR OPTIMIZATION OF BRAKING AND ACCELERATING OF A VEHICLE
System and method for improving braking efficiency by increasing the magnitude of a frictional force between a tire of a vehicle wheel and a road surface. Braking efficiency may be improved by controlling the normal force applied on the wheel, with an active suspension actuator, based on the wheel's slip ratio.
HARVESTING MACHINE FOR HARVESTING FRUITS FROM THE GROUND AND METHOD OF CONTROL OF THE SAME
A harvesting machine for harvesting fruit from the ground has a cart having a frame, which is movable in a moving direction and carries, connected to it in an integral manner, a fruit harvesting device having a harvesting member and wheels rolling on the ground and designed for the height positioning the harvesting member; the cart having a pair of front wheels and a pair of rear wheels; at least the front wheels being coupled to the frame by means of respective height-adjustable suspensions, each having a respective actuator; an electric-hydraulic command and control assembly being provided in order to adjust the height of the frame relative to the front wheels depending on the pressure of a chamber of at least one of the actuators and in order to rotate the frame around an instantaneous rotation axis, which is transverse to the moving direction, so as to adjust the load acting upon the positioning wheels and upon the front wheels.
Method for controlling the traction of a pneumatically sprung vehicle and air suspension system for carrying out the method
In a pneumatically sprung vehicle (1) with a front steering axle (A), one rear drive axle (TA) and one trailing axle (SA), traction is controlled by an air suspension system (36), having a “pressure ratio control” mode maintaining a parametrised ratio of air pressures in supporting bellows (2, 4) of the drive axle (TA) compared to air pressures in supporting bellows (3, 5) of the trailing axle (SA); a “relieve loading of trailing axle” mode checking whether relieving of the loading of the trailing axle (SA) is possible without overloading the drive axle (TA); and an “optimum traction” control mode increasing the pressure in the supporting bellows (2, 4) of the drive axle (TA) and reducing the pressure in the supporting bellows (3, 5) of the trailing axle (SA) without exceeding the maximum permissible axle load of the drive axle (TA) while maintaining residual pressure of the trailing axle (SA).
Bogie balancing system and method for a work machine
A bogie positioning system and method for a work machine. The bogie positioning system adapted to selectively engage a wheel of a work machine to a ground surface through a bogie assembly wherein the bogie assembly may have a front wheel coupled to a rear wheel through a bogie coupling mechanism. The bogie coupling mechanism comprising a beam with a rotary joint. The rotary joint allowing the front wheel to rotate about a rotary axis relative to the rear wheel. The beam is coupled to a chassis of the work machine with at least one actuator coupled to the beam. A control unit is in communication with the bogie assembly, a user input interface, and a plurality of sensors, generating command signals to actuate the actuator based on the input signals, thereby selectively engaging the front wheel or the rear wheel with the ground surface.