Title :
Slip controller design and implementation in a continuously variable transmission
Author :
Pulles, R.J. ; Bonsen, B. ; Steinbuch, M. ; Veenhuizen, P.A.
Author_Institution :
Dept. of Mech. Eng., Eindhoven Univ. of Technol., Netherlands
Abstract :
Continuously variable transmissions (CVT) can be used to operate a combustion engine in a more optimal working point. Unfortunately, due to the relatively low efficiency of modern production CVT´s the total efficiency of the driveline is not increased significantly. This low efficiency is mainly caused by losses in the hydraulic actuation system and the variator. Decreasing the clamping forces in the variator greatly improves the efficiency of the CVT. However, lower clamping forces increase the risk of excessive belt slip, which can damage the system. In this paper a method is presented to measure and control slip in a CVT in order to minimize the clamping forces while preventing destructive belt slip. To ensure robustness of the system against torque peaks, a controller is designed with optimal load disturbance response. A synthesis method for robust PI(D)-controller design is used to maximize the integral gain while making sure that the closed loop system remains stable. Experimental results prove the validity of the approach.
Keywords :
clamps; closed loop systems; control system synthesis; hydraulic actuators; internal combustion engines; mechanical variables control; optimal control; power transmission (mechanical); robust control; slip; three-term control; belt slip; clamping forces; closed loop system; combustion engine; continuously variable transmission; hydraulic actuation system; optimal load disturbance response; robust PID control; slip controller design; Belts; Clamps; Combustion; Engines; Force control; Force measurement; Mechanical power transmission; Optimal control; Production; Robust control;
Conference_Titel :
American Control Conference, 2005. Proceedings of the 2005
Print_ISBN :
0-7803-9098-9
Electronic_ISBN :
0743-1619
DOI :
10.1109/ACC.2005.1470200