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Modelling of stress transfer in double-walled carbon nanotube-reinforced composites

机译:双壁碳纳米管增强复合材料中应力转移的建模

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Carbon nanotubes with excellent mechanical properties can be utilised as nanoscale reinforcement to carry loads in composite structures. External loads are transferred to carbon nanotubes via the surrounding matrix, through the interfacial shear stress. In this work, the interaction and stress transfer in double-walled carbon nanotube- reinforced composites are investigated. A cylindrical representative element volume containing the double-walled carbon nanotubes and matrix is employed to determine the interfacial shear stress and longitudinal axial stress in the double-walled carbon nanotube. The theoretical predictions of the interfacial shear stress and longitudinal axial stress are verified with the finite element results. The effects of the aspect ratio and volume fraction on the stress transfer are investigated through a parametric study. Numerical results show that stresses transferred to double- walled carbon nanotubes are increasing with the increases of the volume fraction and aspect ratio. It demonstrates that a better load transfer efficiency can be achieved with larger volume fraction and aspect ratio.
机译:具有优异机械性能的碳纳米管可用作纳米级增强材料,以在复合结构中承受载荷。通过界面剪切应力,外部负载通过周围的基质传递到碳纳米管。在这项工作中,研究了双壁碳纳米管增强复合材料的相互作用和应力传递。包含双壁碳纳米管和基体的圆柱代表元素体积用于确定双壁碳纳米管的界面剪切应力和纵向轴向应力。有限元结果验证了界面剪切应力和纵向轴向应力的理论预测。通过参数研究研究了纵横比和体积分数对应力传递的影响。数值结果表明,随着体积分数和长径比的增加,转移至双壁碳纳米管的应力增加。它表明,更大的体积分数和长宽比可以实现更好的负载转移效率。

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