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Generalization of the micromechanics multi-coating approach to coupled fields composite materials with eigenfields: Effective properties

机译:具有本征场的耦合场复合材料微力学多层涂覆方法的推广:有效性能

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摘要

A generalization of the micromechanics multi-coating scheme to coupled fields composite materials with eigenfields is presented in this work. The key ingredients required to succeed in this generalization are: (i) the use of pseudo-tensors to represent the properties of the composite material phases and the proper handling of the induced pseudo-tensorial relations, (ii) the introduction of eigenfields, and (iii) the derivation of the interfacial operators for coupled fields material with eigenfields to account for the jump of the gradient of the potential fields. The model is used to compute the thermo-magneto-electro-elastic effective properties of piezomagnetic composite material and the results agree well with numerical predictions reported in the literature. This general framework may be useful to compute the effective properties of composite materials containing functionally graded inhomogeneities or composite materials with inhomogeneous interphases. The use of this micromechanics scheme for optimal design of such smart composite materials will be discussed elsewhere.
机译:在这项工作中,将微机械多层涂覆方案推广到将复合材料与本征场耦合的领域。要使这种概括成功,关键要素是:(i)使用伪张量来表示复合材料相的特性以及对诱导的伪张量关系的正确处理;(ii)本征场的引入;以及(iii)导出具有本征场的耦合场材料的界面算子,以解决势场梯度的跃迁。该模型用于计算压电复合材料的热磁电弹性有效特性,其结果与文献报道的数值预测非常吻合。该通用框架可用于计算包含功能梯度不均匀性的复合材料或具有不均匀相间复合材料的有效性能。将在其他地方讨论这种微机械方案对此类智能复合材料的最佳设计的使用。

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