Title :
Nonlinear Feedback Control of a Dual-Stage Actuator System for Reduced Settling Time
Author :
Zheng, Jinchuan ; Fu, Minyue
Author_Institution :
Sch. of Electr. Eng. & Comput. Sci., Univ. of Newcastle, Newcastle, NSW
fDate :
7/1/2008 12:00:00 AM
Abstract :
This brief presents a nonlinear control method for dual-stage actuator (DSA) systems to track a step command input fast and accurately. Conventional tracking controllers for DSA systems are generally designed to enable the primary actuator to approach the setpoint without overshoot. However, this strategy is unable to achieve the minimal settling time when the setpoints are beyond the secondary actuator travel limit. To further reduce the settling time, we design the primary actuator controller to yield a closed-loop system with a small damping ratio for a fast rise time and certain allowable overshoot. Then, a composite nonlinear control law is designed for the secondary actuator to reduce the overshoot caused by the primary actuator as the system output approaches the setpoint. The proposed control method is applied to an actual DSA positioning system, which consists of a linear motor and a piezo actuator. Experimental results demonstrate that our approach can further reduce the settling time significantly compared with the conventional control.
Keywords :
closed loop systems; control system synthesis; feedback; nonlinear control systems; piezoelectric actuators; position control; closed-loop system; damping ratio; dual-stage actuator system; linear motor; minimal settling time; nonlinear control; nonlinear feedback control; piezoactuator; positioning system; primary actuator controller design; step command input; tracking controller; Dual-stage actuator; friction; linear motor; motion control; piezo actuator (PA); saturation;
Journal_Title :
Control Systems Technology, IEEE Transactions on
DOI :
10.1109/TCST.2007.912125