An Electro-Elastic Coupling Model for Piezoelectric Composites Based on the Voronoi Cell Finite Element Method

IF 2.7 3区 工程技术 Q1 ENGINEERING, MULTIDISCIPLINARY
Huan Li, Nan Yang, Ran Guo
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引用次数: 0

Abstract

The Voronoi cell finite element method (VCFEM) has successfully characterized the linear elastic behavior of the composites. This study is dedicated to develop an electro-elastic coupling VCFEM model mimicking the fully-coupled electro-elastic behavior of piezoelectric composites. For fiber-reinforced piezoelectric composites considering interfacial cracks, the interface traction reciprocity, the interface charge density reciprocity on bonded interfaces and the interface traction-free, the interface charge density-free on debonded interfaces are comprised in the new assumed stress and electric displacement hybrid variational functional. The new variational functional is derived on the base of the element multifield energy functionals. Independent stress/electric displacement fields are respectively assumed within the two-phase material domain. Several numerical examples considering perfectly-bonded interface and partially cracked interface were used to demonstrate the accuracy of the proposed method by comparing the piezoelectric Voronoi element model results with those obtained by ABAQUS. Then this model is used to study the effect of several microscopic details, such as the property ratio of fiber to matrix, volume fraction, interfacial crack length and polarization direction on macroscopic equivalent physical and mechanical properties, as well as local stress/electric displacement fields. It is clear that the proposed model is suitable for analyzing piezoelectric composites containing many microstructures with bonded interface or debonded interface.

基于Voronoi细胞有限元法的压电复合材料电弹耦合模型
Voronoi单元有限元法(VCFEM)成功地表征了复合材料的线弹性行为。本研究致力于建立一个模拟压电复合材料电弹性全耦合行为的电弹性耦合VCFEM模型。对于考虑界面裂纹的纤维增强压电复合材料,界面牵引互易性、粘结界面电荷密度互易性以及无牵引、无剥离界面电荷密度互易性由新的假设应力-电位移混合变分泛函构成。在单元多场能量泛函的基础上,导出了新的变分泛函。在两相材料域中分别假设独立的应力场和电场。通过将压电Voronoi单元模型与ABAQUS计算结果进行比较,验证了该方法的准确性。然后利用该模型研究了纤维与基体性能比、体积分数、界面裂纹长度和极化方向等微观细节对宏观等效物理力学性能以及局部应力场/电位移场的影响。结果表明,该模型适用于分析具有粘结界面和脱粘界面的多种微观结构的压电复合材料。
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来源期刊
CiteScore
5.70
自引率
6.90%
发文量
276
审稿时长
5.3 months
期刊介绍: The International Journal for Numerical Methods in Engineering publishes original papers describing significant, novel developments in numerical methods that are applicable to engineering problems. The Journal is known for welcoming contributions in a wide range of areas in computational engineering, including computational issues in model reduction, uncertainty quantification, verification and validation, inverse analysis and stochastic methods, optimisation, element technology, solution techniques and parallel computing, damage and fracture, mechanics at micro and nano-scales, low-speed fluid dynamics, fluid-structure interaction, electromagnetics, coupled diffusion phenomena, and error estimation and mesh generation. It is emphasized that this is by no means an exhaustive list, and particularly papers on multi-scale, multi-physics or multi-disciplinary problems, and on new, emerging topics are welcome.
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