Chen Yuhang, Zhang Maomao, Su Yaxuan, Zhou Zhidong
Fujian Provincial Key Laboratory of Advanced Materials, College of Materials, Xiamen University, Xiamen 361005, China.
Chengyi University College, Jimei University, Xiamen 361021, China.
Micromachines (Basel). 2021 May 21;12(6):595. doi: 10.3390/mi12060595.
The flexoelectric effect has a significant influence on the electro-mechanical coupling of micro-nano devices. This paper studies the mechanical and electrical properties of functionally graded flexo-piezoelectric beams under different electrical boundary conditions. The generalized variational principle and Euler-Bernoulli beam theory are employed to deduce the governing equations and corresponding electro-mechanical boundary conditions of the beam model. The deflection and induced electric potential are given as analytical expressions for the functionally graded cantilever beam. The numerical results show that the flexoelectric effect, piezoelectric effect, and gradient distribution have considerable influences on the electro-mechanical performance of the functionally graded beams. Moreover, the nonuniform piezoelectricity and polarization direction will play a leading role in the induced electric potential at a large scale. The flexoelectric effect will dominate the induced electric potential as the beam thickness decreases. This work provides helpful guidance to resolve the application of flexoelectric and piezoelectric effects in functionally graded materials, especially on micro-nano devices.
挠曲电效应对微纳器件的机电耦合有显著影响。本文研究了不同电边界条件下功能梯度挠曲 - 压电梁的力学和电学性能。采用广义变分原理和欧拉 - 伯努利梁理论推导梁模型的控制方程和相应的机电边界条件。给出了功能梯度悬臂梁挠度和感应电势的解析表达式。数值结果表明,挠曲电效应、压电效应和梯度分布对功能梯度梁的机电性能有相当大的影响。此外,非均匀压电性和极化方向在大尺度上对感应电势起主导作用。随着梁厚度减小,挠曲电效应将主导感应电势。这项工作为解决挠曲电效应和压电效应在功能梯度材料中的应用提供了有益的指导,特别是在微纳器件方面。