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Micropolar In-Plane Shear and Rotation Moduli of Unidirectional Fiber Composites with Fiber-Matrix Interfacial Debonding

机译:纤维-基质界面剥离的单向纤维复合材料的微极面内剪切和旋转模量

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摘要

The mechanical properties of fiber-reinforced composites are sig-nificantly affected by the bond between the fiber and the matrix. The objective of this research is to determine the micropolar in-plane shear and rotation moduli of unidirectional brittle matrix composites with fiber-matrix interfacial debonding. Traction and displacement continuity conditions are imposed along the boundary of adjacent representative elements. In addition to a shear test (i.e., symmetric shear loading) for classical in-plane shear modulus, a center rotation test of a nione-cell model is proposed to introduce the asymmetric shear loading and numerically determine the micropolar in-plane shear and rotation moduli by means of finite element analysis. A doubly symmetric fiber-matrix interfacial debonding is utilized in this study. For the shear test, the composites are modeled using a quarter cell; whereas for the rotation test, a nine-cell model is proposed to simulate the non-symmetric nature of micropolar theory. The cell boundaries, in general, do not remain straight for the composites under loading. Parametric studies assessing the effects of debonding angle and the fivber volume fraction on the micropolar in-plane shear and rotation moduli of unidirectional composites are presented, and some basic characteristics of the moduli with interfacial debonding are discussed. Due to matrix domination in determining the shear properties of composites, the effects of an increase in interfacial debonding and fiber volume fraction are notably identified by the reduction of properties under both symmetric and asymmetric shear loading.
机译:纤维增强复合材料的机械性能受到纤维与基体之间粘结的显着影响。这项研究的目的是确定纤维-基体界面脱粘的单向脆性基体复合材料的微极面内剪切和旋转模量。沿相邻代表性元素的边界施加了牵引力和位移连续性条件。除了经典面内剪切模量的剪切试验(即对称剪切载荷)外,还提出了一种Nione-cell模型的中心旋转试验,以引入非对称剪切载荷并数值确定微极面内剪切和旋转通过有限元分析求模。在这项研究中使用了双对称的纤维-基体界面剥离。对于剪切测试,使用四分之一单元对复合材料进行建模。对于旋转测试,提出了一个九单元模型来模拟微极性理论的非对称性质。通常,在加载下,复合材料的晶胞边界不会保持直线。提出了评估脱胶角度和纤维体积分数对单向复合材料微极性面内剪切和旋转模量的影响的参数研究,并讨论了界面脱胶时模量的一些基本特性。由于在确定复合材料的剪切性能时基体占主导地位,界面剥离和纤维体积分数增加的影响通过对称和不对称剪切载荷下的性能下降而得到明显的识别。

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