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Prediction of mechanical properties of three-dimensional fabric composites reinforced by transversely isotropic carbon fibers

机译:横观各向同性碳纤维增强的三维织物复合材料的力学性能预测

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Three-dimensional fabric composites have evolved as an attractive structural material for multi-directional load bearing and impact application. However, research on prediction of their behavior before being fabricated is inadequate. This article reports a two-step modeling approach for predicting the effective mechanical properties of three-dimensional fabric carbon fiber-reinforced composites. In step one, the micro-heterostructural composites were represented by microscale cylindrical, square, or hexagonal prismatic representative volume elements, containing a long carbon fiber surrounded by polymer matrix, taking into account the transversely isotropic properties of carbon fibers. The mechanical properties of each representative volume element were extracted from the modeling results of uniaxial tensile, lateral expansion, and transverse shear tests, using appropriately derived formulae, and averaged as the equivalent mechanical properties of the micro-heterostructures. In step two, a three-dimensional fabric composite unit cell was represented by a three-dimensional finite element model, taking into account the fiber orientations and fabric architecture. A three-dimensional orthogonal fabric carbon fiber-reinforced epoxy composite was selected as the case study material. The overall orthotropic mechanical properties of the composites were predicted by conducting tensile and shear tests on the unit cell. The modeling results show that the Young's moduli in fiber oriented directions and shear moduli are significantly higher than those of the matrix. The shear moduli of shearing fiber cross-sections are even much higher than that of shearing along fiber longitudinal direction. Carbon fiber can improve structural stability by lowering the Poisson's ratios of the composites. The modeling results were compared with and validated by the experimental tests.
机译:三维织物复合材料已经发展成为一种有吸引力的结构材料,可用于多方向负荷和冲击应用。但是,关于在制造它们之前的行为的预测的研究是不充分的。本文报告了一种两步建模方法,用于预测三维织物碳纤维增强复合材料的有效机械性能。在第一步中,考虑到碳纤维的横向各向同性特性,以微观圆柱,方形或六边形的代表性体积元素表示微异质结构复合材料,其中包含被聚合物基质包围的长碳纤维。使用适当推导的公式,从单轴拉伸,横向膨胀和横向剪切试验的建模结果中提取每个代表性体积元素的机械性能,并将其平均化为微异质结构的等效机械性能。在第二步中,考虑到纤维取向和织物结构,用三维有限元模型表示三维织物复合单元。选择三维正交织物碳纤维增强环氧复合材料作为案例研究材料。通过在晶胞上进行拉伸和剪切测试,可以预测复合材料的整体正交各向异性机械性能。模拟结果表明,纤维取向方向的杨氏模量和剪切模量明显高于基体。剪切纤维横截面的剪切模量甚至比沿纤维纵向剪切的剪切模量高得多。碳纤维可以通过降低复合材料的泊松比来提高结构稳定性。将建模结果与实验测试进行比较并验证。

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