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Numerical analysis on viscoelastic creep responses of aligned short fiber reinforced composites

机译:取向短纤维增强复合材料粘弹性蠕变响应的数值分析

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Micro-mechanics analysis using the Representative Volume Element (RVE) approach implemented with the Finite Element Method has been widely used for computing material properties of unidirectional fibrous polymer matrix composites. However, little attention has been given to viscoelastic RVEs of discontinuous fiber reinforced composites. This paper develops a RVE-based Finite Element algorithm for evaluating the effective viscoelastic creep behaviors of aligned short fiber composites. A parametric study including considerations of fiber volume fraction, fiber aspect ratio and fiber packing geometry is performed through the proposed algorithm. Computed results indicate that increasing the fiber volume fraction decreases the mechanical compliance of the overall compound, and the effect of fiber reinforcements is particularly significant in the direction of fiber alignment. Additionally, increasing the fiber aspect ratio reduces the creep compliance coefficient along the direction of fiber alignment more than coefficients along other directions. The fiber packing geometry affects the values of axial compliance properties at low fiber volume fraction and its impacts become less as the fiber volume fraction increases. We also provide an application to simulate the equivalent viscoelastic creep response out of the RVE approach through ABAQUS user defined material subroutine, and the maximum absolute error between the two sets of data is only 1%.
机译:使用有限元方法实现的具有代表性体积元(RVE)方法的微力学分析已广泛用于计算单向纤维聚合物基复合材料的材料性能。然而,很少有人关注不连续纤维增强复合材料的粘弹性RVE。本文开发了一种基于RVE的有限元算法,用于评估取向短纤维复合材料的有效粘弹性蠕变行为。通过所提出的算法,进行了包括纤维体积分数,纤维长径比和纤维堆积几何形状在内的参数研究。计算结果表明,增加纤维体积分数会降低整个混合物的机械柔韧性,并且纤维增强的作用在纤维排列方向上尤其重要。另外,增加纤维纵横比会比沿其他方向降低更多的沿纤维排列方向的蠕变柔量系数。纤维堆积的几何形状会在低纤维体积分数时影响轴向柔度特性的值,并且随着纤维体积分数的增加,其影响会减小。我们还提供了一个应用程序,可以通过ABAQUS用户定义的材料子例程从RVE方法中模拟出等效的粘弹性蠕变响应,并且两组数据之间的最大绝对误差仅为1%。

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