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Plane stress analysis of magnetoelectric composite and reinforced plates: Micromechanical modeling and application to laminated structures

机译:磁电复合材料和增强板的平面应力分析:微机械建模与层压结构的应用

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A new comprehensive micromechanical model for the analysis of thin smart composite and reinforced piezo-magnetothermo- elastic plates is developed in the present paper. The model is developed on the basis of asymptotic homogenization utilizing dynamic force and thermal balance and the time-varying form of Maxwell's equations. Once the governing equations are determined, a set of twenty unit cell problems is extracted from which the effective coefficients of the homogenized structure can be obtained in a closed-form design-oriented format. Unlike previous models, it is discovered in this work that the effective coefficients are not constants, but rather functions of time. Consequently, the dependent field variables (mechanical stress, electric and magnetic fields, heat flux, and others) are also functions of time and the homogenized structure exhibits memory-like behavior. Of particular interest in this work is the development of general expressions pertaining to the so-called product properties which are manifested in the macroscopic composite plate via the interaction of the different phases but may be absent from some individual constituents of the composite. Examples of product properties are the magnetoelectric, pyroelectric and pyromagnetic coefficients. The developed model however also extracts an interesting newset of product properties relating current density tomechanical deformation, magnetic field and temperature change. It is shown in this paper that other previously derived models can be viewed as particular special cases of the model developed here when electrical conductivity is ignored and all pertinent quantities are time-averaged by integrating them over the entire time spectrum. Collectively, the results presented here represent a significant refinement of previously established results. The work is illustrated by means of a thin laminated piezo-magneto-thermo-elastic composite plates with orthotropic constituents.
机译:本文开发了一种新的综合微机械模型,用于分析薄智能复合材料和增强压电 - 磁热弹性板。该模型是在利用动态力和热平衡的渐近均匀化和麦克斯韦方程的时变形式的基础开发。一旦确定控制方程,就提取了一组20个单元小区问题,从中可以以闭合形式的设计形式获得均质结构的有效系数。与以前的模型不同,在这项工作中发现了有效系数不是常数,而是时间的功能。因此,依赖性场变量(机械应力,电源和磁场,热通量等)也是时间的函数,均质结构表现出类似的记忆等行为。特别涉及这项工作的是通过不同阶段的相互作用在宏观复合板中表现出的所谓产品性质的一般表达的发展,但是可以不存在来自复合材料的一些单独的组成部分。产品特性的实例是磁电,热电和偏磁系数。然而,开发的模型还提取了产品性质的有趣新闻新闻,这些新闻中心有关当前密度的自由变形,磁场和温度变化。在本文中示出了,当忽略导电性并且通过将它们集成在整个时间范围内时,可以将其他先前推导的模型视为在此开发的模型的特定特殊情况。统称,这里提出的结果代表了先前建立的结果的显着改进。通过具有具有正交成分的薄层压压 - 磁热弹性复合板来说明该工作。

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