Preisach Modeling of Piezoceramic and Shape Memory Alloy Hysteresis

Abstract: 

Smart materials such as piezoceramics, magnetostrictive materials, and shape memory alloys exhibit hysteresis, and the larger the input signal the larger the effect. Hysteresis can lead to unwanted harmonics, inaccuracy in open loop control, and instability in closed loop control. The Preisach independent domain hysteresis model has been shown to capture the major features of hysteresis arising in ferromagnetic materials. Noting the similarity between the microscopic domain kinematics that generate static hysteresis effects in ferromagnetics, piezoceramics, and shape memory alloys (SMAs), we apply the Preisach model for the hysteresis in piezoceramic and shape memory alloy materials. This paper reviews the basic properties of the Preisach model, discusses control-theoretic issues such as identification, simulation, and inversion, and presents experimental results for piezoceramic sheet actuators bonded to a flexible aluminum beam, and a Nitinol SMA wire muscle that applies a bending force to the end of a beam.

Reference:
D Hughes, J.T. Wen (1997). Preisach Modeling of Piezoceramic and Shape Memory Alloy Hysteresis.

Journal on Smart Materials and Structures, Journal of Smart Materials and Structures, 6, June, 1997, pp. 287-300.

Publication Type: 
Archival Journals