A Controllability-Based TO Approach for the Piezoelectric Actuator Design Considering Multimodal Vibration Control

Author:

Gonçalves Juliano F.1,Silva Emílio C. N.1,De Leon Daniel M.2,Perondi Eduardo A.2

Affiliation:

1. Department of Mechatronics and Mechanical System Engineering, Politechnique School of University of São Paulo, Av. Professor Mello de Morais, 2231, São Paulo, SP 05508-030, Brazil

2. Department of Mechanical Engineering, Federal University of Rio Grande do Sul, R. Sarmento Leite, 425, Porto Alegre, RS 90050-170, Brazil

Abstract

This paper addresses the design problem of piezoelectric actuators for multimodal active vibration control. The design process is carried out by a topology optimization procedure which aims at maximizing a control performance index written in terms of the controllability Gramian, which is a measure that describes the ability of the actuator to move the structure from an initial condition to a desired final state in a finite time interval. The main work contribution is that independent sets of design variables are associated with each modal controllability index, then the multi-objective problem can be split into independent single-objective problems. Thus, no weighting factors are required to be tuned to give each vibration mode a suitable relevance in the optimization problem. A material interpolation scheme based on the Solid Isotropic Material with Penalization (SIMP) and the Piezoelectric Material with Penalization (PEMAP) models is employed to consider the different sets of design variables and the sensitivity analysis is carried out analytically. Numerical examples are presented by considering the design and vibration control for a cantilever beam and a beam fixed at both ends to show the efficacy of the proposed formulation. The control performance of the optimized actuators is analyzed using a Linear-Quadratic Regulator (LQR) simulation.

Publisher

World Scientific Pub Co Pte Lt

Subject

Applied Mathematics,Mechanical Engineering,Ocean Engineering,Aerospace Engineering,Building and Construction,Civil and Structural Engineering

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