Modeling and related results for current-actuated piezoelectric beams by including magnetic effects
Kirsten A. Morris, Ahmet Ozkan Ozer

TL;DR
This paper derives and analyzes a mathematical model for current-actuated piezoelectric beams including magnetic effects, demonstrating well-posedness and stabilizability, and comparing it with voltage-based actuation models.
Contribution
It introduces a novel model for current-controlled piezoelectric beams with magnetic effects, including decoupled PDE systems and a stability analysis.
Findings
The model includes magnetic effects and decouples stretching and bending motions.
The Cauchy problem is proven to be well-posed using a semigroup approach.
Current actuation yields a bounded control operator in the energy space.
Abstract
Piezo-electric material can be controlled with current as the electrical variable, instead of voltage. The main purpose of this paper is to derive the governing equations for a current-controlled piezo-electric beam and to investigate stabilizability. Besides the consideration of current control, there are several new aspects to the model here. Most significantly, magnetic effects are included. For the electromagnetic part of the model, electrical potential and magnetic vector potential are chosen to be quadratic-through thickness to include the induced effects of the electromagnetic field. Two sets of decoupled system of partial differential equations are obtained; one for stretching motion and another one for bending motion. Hamilton's principle is used to derive a boundary value problem that models a single piezo-electric beam actuated by a charge (or current) source at the…
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Taxonomy
TopicsAeroelasticity and Vibration Control · Piezoelectric Actuators and Control · Stability and Controllability of Differential Equations
