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Micromechanical modeling of unidirectional composites with random fiber and interphase thickness distributions

机译:具有随机纤维和相间厚度分布的单向复合材料的微力学建模

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摘要

Unidirectional composites having random fiber and interphase thickness distributions are considered, and the corresponding transverse effective mechanical properties are determined by the computational homogenization method developed based on linear elastic equilibrium relationship in multi-phase composite. The micromechanical unit cell model including random coated fibers is generated by a simple and efficient algorithm, and the periodic displacement constraints are applied on the cell boundary to keep the cell edges straight after deformation. Then, the effective transverse elastic properties of composites are determined numerically by the present computational model, which is validated through a comparison against available experimental and analyticalumerical results. Finally, the influences of micromechanical parameters on composites are investigated. It is observed that the nonuniformity of interphase thickness has little influence to the overall material properties of composites, which are significantly affected by the interphase thickness and elastic modulus, especially for the case of high fiber volume content.
机译:考虑具有随机纤维和相间厚度分布的单向复合材料,并通过基于线性弹性平衡关系的多相复合材料开发的计算均化方法确定相应的横向有效力学性能。通过简单有效的算法生成包含随机涂层纤维的微机械单元模型,并在单元边界上应用周期性位移约束以保持单元边缘在变形后保持笔直。然后,通过现有的计算模型对复合材料的有效横向弹性特性进行数值确定,该模型通过与可用的实验和分析/数值结果进行比较来验证。最后,研究了微机械参数对复合材料的影响。可以看出,相间厚度的不均匀性对复合材料的整体材料性能影响很小,而相间厚度和弹性模量对复合材料的整体材料性能影响显着,特别是对于高纤维体积含量的情况。

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