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A novel coupling algorithm for the electric field-structure interaction using a transformation method between solid and shell elements in a thin piezoelectric bimorph plate analysis

机译:一种新型耦合算法在薄压电双芯板分析中使用固体和壳体元件之间的变换方法的电场结构相互作用

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摘要

Thin piezoelectric bimorph cantilever is increasingly employed throughout the field of actuator and sensor applications in the microelectromechanical system (MEMS). Generally for finite element analysis of piezoelectric bimorph cantilever, three-dimensional (3D) solid element can accurately takes into account a linear or quadratic distribution of electric potential over the thickness for various electric configurations of the actuator and sensor applications. As the MEMS structures usually are quite thin and undergo large deformations, shell elements are very well suited for the structural discretization. This paper is focused on the development of a novel coupled algorithm to analyze the electromechanical coupling in a piezoelectric bimorph actuator and sensor using the shell and solid elements to simulate the structural and electric fields, respectively. The electric force induced by the inverse piezoelectric effect is transformed from the solid elements to the shell elements as an equivalent external force and moment, and the resultant displacements are transformed from the shell elements to the solid elements to evaluate the direct piezoelectric effect. Two different approaches were developed to analyze the electric field-structure interaction. In the first approach, for each block Gauss-Seidel (BGS) iteration, multiple full Newton-Raphson (N-R) iterations are executed until the tolerance criteria are satisfied. In the second approach, the BGS and N-R loops are unified into a single loop. A piezoelectric bimorph actuator and sensor were analyzed for various electrical configurations to demonstrate the accuracy of the proposed method.
机译:在微机电系统(MEMS)中,致动器和传感器应用的整个领域越来越多地采用薄压电双臂悬臂。通常,对于压电双芯片悬臂的有限元分析,三维(3D)固体元件可以精确地考虑在致动器和传感器应用的各种电幂上的电位线性或二次分布。由于MEMS结构通常非常薄并且经历大变形,壳体元件非常适合于结构离散化。本文专注于开发新颖的耦合算法,分析压电双丝体致动器和传感器中的机电耦合,使用壳体和固体元素分别模拟结构和电场。由逆压电效应引起的电力从固体元件转换为壳体元件作为等效外力和时刻,并且所得位移从壳元件转换为固体元件以评估直接压电效应。开发了两种不同的方法来分析电场结构相互作用。在第一种方法中,对于每个块高斯-Seidel(BGS)迭代,执行多个完整的牛顿 - 拉文申(N-R)迭代,直到满足公差标准。在第二种方法中,BGS和N-R循环统一到单个循环中。分析了压电双丝体致动器和传感器以用于各种电气配置,以证明所提出的方法的精度。

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