Title :
Nonlinear control of a continuously variable transmission (CVT)
Author :
Setlur, P. ; Wagner, J.R. ; Dawson, D.M. ; Samuels, B.
Author_Institution :
Dept. of Electr. & Comput. Eng. & Mech. Eng., Clemson Univ., SC, USA
fDate :
1/1/2003 12:00:00 AM
Abstract :
Automotive engineers are continuously exploring various engine, transmission, and chassis technologies to increase overall vehicle performance, fuel economy, and safety. One promising powertrain concept is the continuously variable transmission (CVT), which offers a continuum of infinitely variable gear ratios between established minimum and maximum limits. This continuous gear ratio spectrum can increase the overall powertrain efficiency and eliminate the unwanted jerks associated with manual and automatic transmissions. Although basic CVT designs may have difficulty with high torque/low speed requirements, a power split continuously variable transmission configuration offers both fixed gearing and adjustable pulleys to satisfy driving demands. The effective control of the variable radius pulleys allows the designation of engine torque/speed to improve overall system performance for a given operating condition. In this paper, the fundamental components, configuration, and kinematics of a power split CVT will be briefly introduced. The problem of wheel speed (i.e., cruise) control of a CVT equipped vehicle will be considered. An innovative adaptive nonlinear controller will be designed to ensure asymptotic tracking of the desired wheel speed. Representative numerical results are presented and discussed to demonstrate the ability of the integrated CVT and engine controller in tracking the prescribed wheel speed.
Keywords :
automobile industry; nonlinear control systems; automotive engineers; backstepping; chassis technologies; continuously variable transmission; fuel economy; kinematics; nonlinear control; operating condition; powertrain concept; safety; system performance; vehicle performance; Automotive engineering; Engines; Fuel economy; Gears; Mechanical power transmission; Power engineering and energy; Pulleys; Torque; Vehicle safety; Wheels;
Journal_Title :
Control Systems Technology, IEEE Transactions on
DOI :
10.1109/TCST.2002.806434