Title :
Partial and full inverse compensation for hysteresis in smart material systems
Author :
Smith, Ralph C. ; Bouron, C. ; Zrostlik, Rick
Author_Institution :
Center for Res. in Sci. Comput., North Carolina State Univ., Raleigh, NC, USA
Abstract :
Smart material transducers employing piezoceramic or magnetostrictive drive components typically exhibit constitutive nonlinearities and hysteresis at moderate to high drive levels. In this paper, we discuss two techniques to compensate for hysteresis in high performance transducers. The first is based on a complete transducer model, and the resulting compensator accommodates both the constitutive nonlinearities and hysteresis inherent to the smart material components. The second technique employs a partial inverse compensator based on anhysteretic models for the material behavior. This accommodates the constitutive nonlinearities but does not incorporate the hysteresis; the latter phenomenon is then addressed through the inclusion of a feedback loop in the controller. The performance of the partial inverse compensator is illustrated in the context of a high force Terfenol-D transducer
Keywords :
compensation; feedback; intelligent sensors; magnetic hysteresis; magnetoresistive devices; piezoelectric transducers; anhysteretic models; constitutive nonlinearities; feedback; hysteresis; inverse compensation; magnetostrictive transducers; piezoceramic transducers; smart material transducers; Control design; Feedback loop; Ferroelectric materials; Linear approximation; Magnetic hysteresis; Magnetic materials; Magnetostriction; Piezoelectric materials; Saturation magnetization; Transducers;
Conference_Titel :
American Control Conference, 2000. Proceedings of the 2000
Conference_Location :
Chicago, IL
Print_ISBN :
0-7803-5519-9
DOI :
10.1109/ACC.2000.878710