Title :
Feedforward Controller With Inverse Rate-Dependent Model for Piezoelectric Actuators in Trajectory-Tracking Applications
Author :
Ang, Wei Tech ; Khosla, Pradeep K. ; Riviere, Cameron N.
Author_Institution :
Sch. of Mech. & Aerosp. Eng, Nanyang Technol. Univ., Singapore
fDate :
4/1/2007 12:00:00 AM
Abstract :
Effective employment of piezoelectric actuators in microscale dynamic trajectory-tracking applications is limited by two factors: 1) the intrinsic hysteretic behavior of piezoelectric ceramic and 2) structural vibration as a result of the actuator´s own mass, stiffness, and damping properties. While hysteresis is rate-independent, structural vibration increases as the piezoelectric actuator is driven closer to its resonant frequency. Instead of separately modeling the two interacting dynamic effects, this work treats their combined effect phenomenologically and proposes a rate-dependent modified Prandtl-Ishlinskii operator to account for the hysteretic nonlinearity of a piezoelectric actuator at varying actuation frequency. It is shown experimentally that the relationship between the slope of the hysteretic loading curve and the rate of control input can be modeled by a linear function up to a driving frequency of 40 Hz
Keywords :
control nonlinearities; feedforward; hysteresis; piezoceramics; piezoelectric actuators; position control; vibration control; feedforward control; hysteresis; hysteretic nonlinearity; inverse rate-dependent model; piezoelectric actuators; piezoelectric ceramic; structural vibration; trajectory-tracking; Aerodynamics; Capacitive sensors; Displacement control; Employment; Frequency; Hysteresis; Inverse problems; Piezoelectric actuators; Piezoelectric materials; Vibrations; Feedforward controller; hysteresis modeling; piezoelectric actuators;
Journal_Title :
Mechatronics, IEEE/ASME Transactions on
DOI :
10.1109/TMECH.2007.892824