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Simultaneous optimization of piezoelectric actuator topology and polarization

机译:电压执行器拓扑和极化的同时优化

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This article addresses the problem of piezoelectric actuator design for active structural vibration control. The topology optimization method using the Piezoelectric Material with Penalization and Polarization (PEMAP-P) model is employed in this work to find the optimum actuator layout and polarization profile simultaneously. A coupled finite element model of the structure is derived assuming a two-phase material, and this structural model is written into the state-space representation. The proposed optimization formulation aims to determine the distribution of piezoelectric material which maximizes the controllability for a given vibration mode. The optimization of the layout and poling direction of embedded in-plane piezoelectric actuators are carried out using a Sequential Linear Programming (SLP) algorithm. Numerical examples are presented considering the control of the bending vibration modes for a cantilever and a fixed beam. A Linear-Quadratic Regulator (LQR) is synthesized for each case of controlled structure in order to compare the influence of the polarization profile.
机译:本文介绍了用于主动结构振动控制的压电执行器设计的问题。使用压电材料与惩罚和偏振(PEMAP-P)模型的拓扑优化方法在这项工作中采用了同时找到最佳致动器布局和偏振曲线。假设两相材料得出结构的耦合有限元模型,并且该结构模型被写入状态空间表示。所提出的优化制剂旨在确定压电材料的分布,其最大化给定振动模式的可控性。使用顺序线性编程(SLP)算法来执行嵌入式内压电致动器的布局和极化方向的优化。考虑到控制悬臂和固定光束的弯曲振动模式的控制提出了数值示例。为每种受控结构的情况合成线性二次调节器(LQR),以比较偏振曲线的影响。

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