A micromechanical model for the determination of nonlinear coupled electro-magneto-thermo-elastic effects on magnetoelectric composites

IF 7.1 2区 材料科学 Q1 MATERIALS SCIENCE, COMPOSITES Composite Structures Pub Date : 2025-04-01 Epub Date: 2025-03-04 DOI:10.1016/j.compstruct.2025.119017
Ziwei Li , Junjie Ye , Lu Liu , Yiwei Wang , Yang Li , Yang Shi , Dianzi Liu
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Abstract

Magnetoelectric (ME) composites composed of piezoelectric and magnetostrictive materials have excellent energy conversion properties. In this paper, a novel micromechanical modeling framework is proposed to study the effective material properties and nonlinear electro-magneto-elastic behaviors of magnetoelectric composites under multiple physical fields. Initially, a fully coupled nonlinear electro-magneto-thermo-elastic constitutive relationship is established. Based on finite volume direct averaging micromechanics (FVDAM), the local stress, electric displacement and magnetic flux density distribution of discrete elements are obtained by constructing the generalized local stiffness matrix and assembling the global stiffness matrix. The equivalent material coefficients of the magnetoelectric composite are obtained by employing the homogenization technique. Results of the numerical model are compared with different discrete elements and experimental data to verify the convergence and effectiveness of the developed algorithm. Moreover, effects of external prestress, ambient temperature, microscopic structure and applied magnetic field intensity on material properties such as magnetoelectric and piezomagnetic coefficients are investigated. Finally, the influences of initial damage and constituent phase volume fraction on the equivalent material coefficient and local mechanical response are discussed. The promising results provide a solid foundation for theoretical study and useful insight into the optimal design of high-performance ME composites.
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磁电复合材料非线性耦合电-磁-热弹性效应的微观力学模型
由压电材料和磁致伸缩材料组成的磁电复合材料具有优异的能量转换性能。本文提出了一种新的微力学建模框架,用于研究多物理场作用下磁电复合材料的有效材料性能和非线性电磁弹性行为。首先建立了完全耦合的非线性电磁-热弹性本构关系。基于有限体积直接平均细观力学(FVDAM),通过构造广义局部刚度矩阵和组合全局刚度矩阵,得到离散单元的局部应力、电位移和磁通密度分布。采用均质化技术得到了磁电复合材料的等效材料系数。将数值模型的计算结果与不同离散单元和实验数据进行了比较,验证了算法的收敛性和有效性。此外,还研究了外部预应力、环境温度、微观结构和外加磁场强度对材料磁电系数和压磁系数等性能的影响。最后讨论了初始损伤和组成相体积分数对等效材料系数和局部力学响应的影响。研究结果为高性能ME复合材料的理论研究和优化设计提供了坚实的基础。
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来源期刊
Composite Structures
Composite Structures 工程技术-材料科学:复合
CiteScore
12.00
自引率
12.70%
发文量
1246
审稿时长
78 days
期刊介绍: The past few decades have seen outstanding advances in the use of composite materials in structural applications. There can be little doubt that, within engineering circles, composites have revolutionised traditional design concepts and made possible an unparalleled range of new and exciting possibilities as viable materials for construction. Composite Structures, an International Journal, disseminates knowledge between users, manufacturers, designers and researchers involved in structures or structural components manufactured using composite materials. The journal publishes papers which contribute to knowledge in the use of composite materials in engineering structures. Papers deal with design, research and development studies, experimental investigations, theoretical analysis and fabrication techniques relevant to the application of composites in load-bearing components for assemblies, ranging from individual components such as plates and shells to complete composite structures.
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