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A multiscale model to study the enhancement in the compressive strength of multi-walled CNT sheet overwrapped carbon fiber composites

机译:研究多壁碳纳米管片材包覆碳纤维复合材料抗压强度提高的多尺度模型

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The high tensile strength of polymer matrix composites is derived primarily from the high strength of the carbon fibers embedded in the polymer matrix. However, their compressive strength is generally much lower due to the fact that under compression, the fibers tend to fail through micro-buckling well before compressive fracture occurs. In this work, we consider multi-walled carbon nanotube (MWNT) sheets wrapped around carbon fiber at room temperature to improve fiber/matrix interfacial properties which, in turn, influences compressive strength of the composite. To investigate the effect of the wrapping of MWNT sheet on composite strength, Molecular Dynamics simulations were performed on an atomistic model of the interface region between the epoxy, carbon fiber and the scrolled MWNT sheets. The compressive strength of the unidirectional composite was computed using a novel hierarchical multi-scale model comprising of the rule of mixtures at the microscale, and the modified Argon's formula for composites at the macroscale. Model predictions were benchmarked through comparison with experimental data for different volume fractions of MWNT sheet.
机译:聚合物基体复合材料的高拉伸强度主要源自嵌入在聚合物基体中的碳纤维的高强度。然而,由于在压缩下,纤维倾向于在发生压缩断裂之前通过微屈曲而容易断裂,因此它们的抗压强度通常要低得多。在这项工作中,我们考虑在室温下将多壁碳纳米管(MWNT)板包裹在碳纤维周围,以改善纤维/基体的界面性能,进而影响复合材料的抗压强度。为了研究MWNT片材的包裹对复合强度的影响,在环氧,碳纤维和滚动MWNT片材之间的界面区域的原子模型上进行了分子动力学模拟。使用新型分层多尺度模型计算单向复合材料的抗压强度,该模型包括微观尺度上的混合规则和宏观尺度下复合材料的改良Argon公式。通过与不同体积分数的MWNT薄板的实验数据进行比较,对模型预测进行基准测试。

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