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Micromechanics of fibrous composites subjected to combined shear and thermal loading using a truly meshless method

机译:纤维复合材料的微力学作用是采用真正的无网格方法进行组合的剪切和热负荷

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摘要

In this study, a micromechanical model is presented to study the combined normal, shear and thermal loading of unidirectional (UD) fiber reinforced composites. An appropriate truly meshless method based on the integral form of equilibrium equations is also developed. This meshless method formulated for the generalized plane strain assumption and employed for solution of the governing partial differential equations of the problem. The solution domain includes a representative volume element (RVE) consists of a fiber surrounded by corresponding matrix in a square array arrangement. A direct interpolation method is employed to enforce the appropriate periodic boundary conditions for the combined thermal, transverse shear and normal loading. The fully bonded fiber–matrix interface condition is considered and the displacement continuity and traction reciprocity are imposed to the fiber–matrix interface. Predictions show excellent agreement with the available experimental, analytical and finite element studies. Comparison of the CPU time between presented method and the conventional meshless local Petrov–Galerkin (MLPG) shows significant reduction of the computational time. The results of this study also revealed that the presented model could provide highly accurate predictions with relatively small number of nodes and less computational time without the complexity of mesh generation.
机译:在这项研究中,提出了一种微力学模型来研究单向(UD)纤维增强复合材料的法向,剪切和热负荷的组合。还开发了一种基于平衡方程积分形式的真正无网格方法。这种无网格方法是为广义平面应变假设制定的,并用于解决该问题的主导偏微分方程。溶液域包括一个代表性的体积元素(RVE),该体积元素由被正方形阵列排列的相应矩阵包围的纤维组成。采用直接插值法对组合的热,横向剪力和法向载荷施加适当的周期性边界条件。考虑了完全粘结的纤维-基体界面条件,并且对纤维-基体界面施加了位移连续性和牵引互易性。预测结果与可用的实验,分析和有限元研究非常吻合。所介绍的方法与传统的无网格本地Petrov-Galerkin(MLPG)之间的CPU时间比较表明,计算时间显着减少。这项研究的结果还表明,所提出的模型可以在节点数量相对较少且计算时间较少的情况下提供高度准确的预测,而不会产生网格生成的复杂性。

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