Optimal Placement of Piezoelectric Element on a Plate Interacting With a Fluid Layer

Dmitrii A. Oshmarin, Sergey V. Lekomtsev, Natalya V. Sevodina
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Abstract

In this paper, we determine the optimal location of the piezoelectric element on the upper surface of a plate, interacting with a layer of a quiescent fluid of finite size. As a quantity, allowing us to evaluate the operating efficiency of a piezoelectric element in damping a single specified mode of structure vibrations, we take the electromechanical coupling coefficient. It is calculated based on the values of the natural frequencies of the system, obtained for the two characteristic performance modes of an electric circuit (open and short circuit modes). The behavior of the piezoelectric element is described by the equations of electrodynamics of deformable electroelastic media in the framework of the quasi-static approximation. The motion of an ideal fluid in the case of small perturbations is considered in the framework of the acoustic approximation. Small strains in a thin plate are determined using the Reissner – Mindlin theory. The numerical implementation of the problem is carried out using the finite element method. The obtained results made it possible to identify situations, where the optimal location of the piezoelectric element can be determined without considering the effect of the fluid.
压电元件在与流体层相互作用的平板上的最佳放置
在本文中,我们确定了压电元件在板的上表面与有限尺寸的静态流体层相互作用的最佳位置。我们取机电耦合系数作为一个量,使我们能够评价压电元件在阻尼单一特定模态结构振动方面的工作效率。它是根据系统的固有频率值计算的,该固有频率值是由电路的两种特征性能模式(开路模式和短路模式)获得的。在准静态近似的框架下,用可变形电弹性介质的电动力学方程来描述压电元件的行为。在声学近似的框架内考虑了理想流体在小扰动情况下的运动。薄板上的小应变是用赖斯纳-明德林理论测定的。采用有限元法对该问题进行了数值求解。所获得的结果使得可以确定在不考虑流体影响的情况下确定压电元件的最佳位置。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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