Nonlinear Optimal Control Techniques for Vibration Attenuation Using Magnetostrictive Actuators

Author:

Oates William S.1,Smith Ralph C.2

Affiliation:

1. Center for Research in Scientific Computation, Department of Mathematics North Carolina State University, Raleigh, NC 27695, USA,

2. Center for Research in Scientific Computation, Department of Mathematics North Carolina State University, Raleigh, NC 27695, USA

Abstract

This article addresses the development of a nonlinear control design for attenuating structural vibrations using magnetostrictive transducers operating in nonlinear and highly hysteretic operating regimes. We consider as a prototype a thin plate subjected to exogenous pressure waves and controlled via Terfenol-D transducers at the plate edges; however, the methodology is sufficiently general to encompass a wide range of structures and magnetic transducer designs. Hysteresis inherent to the transducer materials is quantified using a homogenized energy framework and the resulting nonlinear constitutive relations are used to construct a PDE representation and corresponding finite dimensional model of the structural system. We employ optimal control theory to construct nonlinear open loop control inputs which accommodate the hysteresis inherent to the transducers but are not robust with regard to unmodeled dynamics or disturbances. Robustness is incorporated by employing perturbation techniques to provide linear feedback laws acting on measured disturbances. As illustrated via numerical examples, the resulting hybrid control design provides excellent control authority and robustness for transducers operating in hysteretic and nonlinear regimes.

Publisher

SAGE Publications

Subject

Mechanical Engineering,General Materials Science

Reference41 articles.

1. Bittanti, S., Locatelli, A. and Maffezzoni, C. 1972. ``Periodic Optimization under Small Perturbations ,'' In: Marzollo, A. (ed.), Periodic Optimization, Vol. II, pp. 183—231, Udine, Springer-Verlag, New York.

2. Audio Range Dynamic Models and Controllability of Linear Motion Terfenol Actuators

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