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Combining Maxwell's methodology with the BEM for evaluating the two-dimensional effective properties of composite and micro-cracked materials

机译:将Maxwell方法与边界元法相结合,评估复合材料和微裂纹材料的二维有效性能

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摘要

Maxwell's methodology is combined with the boundary element method (BEM) for evaluating the two-dimensional effective elastic properties of composite, porous, and microcracked isotropic materials with periodic or random structure. The approach is based on the idea that the effective properties of the material can be deduced from the effects that a cluster of fibers, pores, or cracks embedded in an infinite matrix has on the far-fields. The fibers, pores, or cracks can have arbitrary shapes, sizes, and elastic properties, provided that the overall behavior is isotropic, and their effects are assumed to be the same as those of an equivalent circular inhomogeneity. The key aspect of the approach is to precisely account for the interactions between all the constituents in the cluster that represent the material in question. This is done by using the complex-variables version of the BEM to solve the problem of a finite cluster of fibers, pores or cracks embedded an infinite isotropic, linearly elastic matrix. The effective properties of the material are evaluated by comparing the far-field solutions for the cluster with that of the equivalent inhomogeneity. It is shown that the model adequately captures the influence of the micro-structure of the material on its overall properties.
机译:Maxwell的方法与边界元法(BEM)相结合,用于评估具有周期性或随机结构的复合材料、多孔材料和微裂纹各向同性材料的二维有效弹性特性。该方法基于这样一种想法,即材料的有效特性可以从嵌入无限基质中的纤维簇、孔隙或裂纹对远场的影响中推断出来。纤维、孔隙或裂纹可以具有任意形状、大小和弹性特性,前提是整体行为是各向同性的,并且假设它们的效果与等效的圆形不均匀性相同。该方法的关键方面是精确地解释代表相关材料的簇中所有成分之间的相互作用。这是通过使用 BEM 的复变量版本来解决嵌入无限各向同性线性弹性基体的有限纤维簇、孔隙或裂纹的问题来完成的。通过将团簇的远场解与等效不均匀性的解进行比较来评估材料的有效性能。结果表明,该模型充分捕捉了材料微观结构对其整体性能的影响。

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