Fracture Mechanics of Magnetoelectroelastic Materials and Structures: State of the Art and Prospects

IF 12.2 1区 工程技术 Q1 MECHANICS Applied Mechanics Reviews Pub Date : 2024-07-20 DOI:10.1115/1.4066020
Wenjie Feng, Zhen Yan, Peng Ma, Chaofeng Lv, Chuanzeng Zhang
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Abstract

Magnetoelectroelastic (MEE) materials and structures have been extensively applied in MEE devices such as sensors and transducers, microelectromechanical systems (MEMS) and smart structures. In order to assess the strength and durability of such materials and structures, exhaustive theoretical and numerical investigations have been conducted over the past two decades. The main purpose of this paper is to present a state-of-the-art review and a critical discussion on the research of the MEE fracture mechanics. Following an introduction, the basic theory of the fracture mechanics in the linear magnetoelectroelasticity is explained with special emphasis on the constitutive equations related to different fracture modes, magnetoelectrical (ME) crack-face boundary conditions and fracture parameters for 2D plane problems. Then, the state of the art of the research on the fracture mechanics of the MEE materials and structures is reviewed and summarized, including 2D anti-plane and in-plane as well as 3D analyses under both static and dynamic loadings. The ME effects on the fracture parameters are revealed and discussed. Moreover, numerical investigations based on the finite element method (FEM), boundary element method (BEM), meshless methods and other novel methods are also reviewed for MEE fracture problems. Finally, some conclusions are drawn with several prospects to open questions and demanding future research topics. In particular, experimental observations are urgently needed to verify the validity of the theoretical predictions of the various fracture criteria. Another great challenge is to tackle the non-linear phenomena and domain switching in the fracture process zone.
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磁电弹性材料和结构的断裂力学:技术现状与前景
磁电弹性(MEE)材料和结构已广泛应用于传感器和传感器、微机电系统(MEMS)和智能结构等 MEE 设备中。为了评估这类材料和结构的强度和耐久性,过去二十年来进行了详尽的理论和数值研究。本文的主要目的是对 MEE 断裂力学研究的最新进展进行回顾和批判性讨论。在引言之后,解释了线性磁电弹性断裂力学的基本理论,特别强调了与不同断裂模式相关的构成方程、磁电(ME)裂纹面边界条件和二维平面问题的断裂参数。然后,回顾并总结了磁电材料和结构的断裂力学研究现状,包括二维反平面和平面内以及静态和动态载荷下的三维分析。揭示并讨论了 ME 对断裂参数的影响。此外,还综述了基于有限元法(FEM)、边界元法(BEM)、无网格法和其他新型方法的 MEE 断裂问题数值研究。最后,得出了一些结论,并展望了一些有待解决的问题和未来需要研究的课题。特别是,迫切需要进行实验观察,以验证各种断裂标准理论预测的有效性。另一个巨大挑战是解决断裂过程区的非线性现象和域切换问题。
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来源期刊
CiteScore
28.20
自引率
0.70%
发文量
13
审稿时长
>12 weeks
期刊介绍: Applied Mechanics Reviews (AMR) is an international review journal that serves as a premier venue for dissemination of material across all subdisciplines of applied mechanics and engineering science, including fluid and solid mechanics, heat transfer, dynamics and vibration, and applications.AMR provides an archival repository for state-of-the-art and retrospective survey articles and reviews of research areas and curricular developments. The journal invites commentary on research and education policy in different countries. The journal also invites original tutorial and educational material in applied mechanics targeting non-specialist audiences, including undergraduate and K-12 students.
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