DocumentCode :
788756
Title :
Construction and Experimental Implementation of a Model-Based Inverse Filter to Attenuate Hysteresis in Ferroelectric Transducers
Author :
Hatch, Andrew G. ; Smith, Ralph C. ; De, Tathagata ; Salapaka, Murti V.
Author_Institution :
Dept. of Math., North Carolina State Univ., Raleigh, NC
Volume :
14
Issue :
6
fYear :
2006
Firstpage :
1058
Lastpage :
1069
Abstract :
Hysteresis and constitutive nonlinearities are inherent properties of ferroelectric transducer materials due to the noncentrosymmetric nature of the compounds. In certain regimes, these effects can be mitigated through restricted input fields, charge- or current-controlled amplifiers, or feedback designs. For general operating conditions, however, these properties must be accommodated in models, transducer designs, and model-based control algorithms to achieve the novel capabilities provided by the compounds. In this paper, we illustrate the construction of inverse filters, based on homogenized energy models, which can be used to approximately linearize the piezoceramic transducer behavior for linear design and control implementation. Attributes of the inverse filters are illustrated through numerical examples and experimental open loop control implementation for an atomic force microscope stage
Keywords :
control nonlinearities; electron microscopes; ferroelectric devices; hysteresis; linear systems; linearisation techniques; open loop systems; piezoelectric transducers; position control; approximate linearization; atomic force microscope stage; constitutive nonlinearities; experimental open loop control implementation; ferroelectric transducers; homogenized energy models; hysteresis attenuation; inverse filters; linear control; linear design; model-based control algorithms; noncentrosymmetricity; piezoceramic transducer behavior; Algorithm design and analysis; Atomic force microscopy; Feedback; Ferroelectric materials; Hysteresis; Inverse problems; Linear approximation; Nonlinear filters; Open loop systems; Transducers; Atomic force microscopy (AFM); control systems; dielectric hysteresis; ferroelectric devices; modeling;
fLanguage :
English
Journal_Title :
Control Systems Technology, IEEE Transactions on
Publisher :
ieee
ISSN :
1063-6536
Type :
jour
DOI :
10.1109/TCST.2006.883195
Filename :
1709930
Link To Document :
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