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Micromechanics models for the effective nonlinear electro-mechanical responses of piezoelectric composites

机译:压电复合材料有效非线性机电响应的微力学模型

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摘要

The nonlinear behavior of piezoelectric composites becomes prominent when the composites are subjected to high electric fields, which is often the case in actuator applications. Understanding the nonlinear behavior of piezoelectric composites is crucial in designing structures comprising of these materials. This study presents micromechanics models for predicting nonlinear electro-mechanical responses of polarized piezoelectric composites, comprising of a linear non-piezoelectric homogeneous medium (matrix) reinforced by either nonlinear piezoelectric fibers or particles, subjected to high electric fields. The maximum electric field applied is within the coercive electric field limit. The constitutive relations for the polarized piezoelectric inclusions consist of the third- and fourth-order electro-mechanical coupling tensors and the second- and third-order electric permeability tensors. The Mori-Tanaka micromechanics and simplified unit-cell micromechanics models are formulated to predict the effective nonlinear electro-mechanical responses of piezoelectric fiber reinforced and particle reinforced composites, respectively. Linearized micromechanical relations are first used to provide trial solutions followed by iterative schemes in order to correct errors from linearizing the nonlinear responses. Numerical results are presented to illustrate the performance of each micromechanics model.
机译:当压电复合材料经受高电场时,压电复合材料的非线性行为将变得很突出,这在执行器应用中通常是这种情况。在设计包含这些材料的结构时,了解压电复合材料的非线性行为至关重要。这项研究提出了用于预测极化压电复合材料的非线性机电响应的微力学模型,该复合材料包括由非线性压电纤维或颗粒增强的线性非压电均质介质(矩阵),承受高电场。施加的最大电场在矫顽电场极限内。极化压电夹杂物的本构关系由三阶和四阶机电耦合张量以及二阶和三阶电导率张量组成。建立了Mori-Tanaka微力学模型和简化的单胞微力学模型,分别预测压电纤维增强和颗粒增强复合材料的有效非线性机电响应。线性化的微机械关系首先用于提供试验解决方案,其次是迭代方案,以校正线性化非线性响应的误差。数值结果表明了每个微力学模型的性能。

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