A New Finite Time Control Solution for Robotic Manipulators Based on Nonsingular Fast Terminal Sliding Variables and the Adaptive Super-Twisting Scheme

Author:

Anh Tuan Vo1,Kang Hee-Jun1

Affiliation:

1. School of Electrical Engineering, University of Ulsan, 93 Daehak-ro, Nam-gu, Ulsan 680-749, South Korea e-mail:

Abstract

In this study, a new finite time control method is suggested for robotic manipulators based on nonsingular fast terminal sliding variables and the adaptive super-twisting method. First, to avoid the singularity drawback and achieve the finite time convergence of positional errors with a fast transient response rate, nonsingular fast terminal sliding variables are constructed in the position errors' state space. Next, adaptive tuning laws based on the super-twisting scheme are presented for the switching control law of terminal sliding mode control (TSMC) so that a continuous control law is extended to reject the effects of chattering behavior. Finally, a new finite time control method ensures that sliding motion will take place, regardless of the effects of the perturbations and uncertainties on the robot system. Accordingly, the stabilization and robustness of the suggested control system can be guaranteed with high-precision performance. The robustness issue and the finite time convergence of the suggested system are totally confirmed by the Lyapunov stability principle. In simulation studies, the experimental results exhibit the effectiveness and viability of our proposed scheme for joint position tracking control of a 3DOF PUMA560 robot.

Publisher

ASME International

Subject

Applied Mathematics,Mechanical Engineering,Control and Systems Engineering,Applied Mathematics,Mechanical Engineering,Control and Systems Engineering

Reference48 articles.

1. PD Control With Gravity Compensation for Hydraulic 6-DOF Parallel Manipulator;Mech. Mach. Theory,2010

2. Ouyang, P. R., Zhang, W. J., and Wu, F. X., 2002, “Nonlinear PD Control for Trajectory Tracking With Consideration of the Design for Control Methodology,” IEEE International Conference on Robotics and Automation (ICRA'02), Washington, DC, May 11–15, pp. 4126–4131.10.1109/ROBOT.2002.1014393

3. An Adaptive Switching Learning Control Method for Trajectory Tracking of Robot Manipulators;Mechatronics,2006

4. Neural PID Control of Robot Manipulators With Application to an Upper Limb Exoskeleton;IEEE Trans. Cybern.,2013

5. Global Asymptotic Saturated PID Control for Robot Manipulators;IEEE Trans. Control Syst. Technol.,2010

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