Title :
Design, Identification, and Control of a Flexure-Based XY Stage for Fast Nanoscale Positioning
Author :
Yong, Yuen Kuan ; Aphale, Sumeet S. ; Moheimani, S. O Reza
Author_Institution :
Australian Res. Council (ARC), Univ. of Newcastle, Callaghan, NSW
Abstract :
The design, identification, and control of a novel, flexure-based, piezoelectric stack-actuated XY nanopositioning stage are presented in this paper. The main goal of the design is to combine the ability to scan over a relatively large range (25times25 mum) with high scanning speed. Consequently, the stage is designed to have its first dominant mode at 2.7 kHz. Cross-coupling between the two axes is kept to -35 dB, low enough to utilize single-input--single-output control strategies for tracking. Finite-element analysis (FEA) is used during the design process to analyze the mechanical resonance frequencies, travel range, and cross-coupling between the X- and Y-axes of the stage. Nonlinearities such as hysteresis are present in such stages. These effects, which exist due to the use of piezoelectric stacks for actuation, are minimized using charge actuation. The integral resonant control method is applied in conjunction with feedforward inversion technique to achieve high-speed and accurate scanning performances, up to 400 Hz.
Keywords :
finite element analysis; nanopositioning; piezoelectric actuators; charge actuation; design; fast nanoscale positioning; finite-element analysis; flexure-based XY stage; frequency 2.7 kHz; high scanning speed; identification; integral resonant control method; piezoelectric stacks; Feedforward inversion; integral resonant control (IRC); mechanical design; nanopositioning stage;
Journal_Title :
Nanotechnology, IEEE Transactions on
DOI :
10.1109/TNANO.2008.2005829