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首页> 外文期刊>Physical review. B, Condensed Matter And Materials Physics >Postbuckling prediction of axially loaded double-walled carbon nanotubes with temperature dependent properties and initial defects
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Postbuckling prediction of axially loaded double-walled carbon nanotubes with temperature dependent properties and initial defects

机译:具有温度依赖性和初始缺陷的轴向加载双壁碳纳米管的屈曲后预测

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Buckling and postbuckling analysis is presented for a double-walled carbon nanotube subjected to axial compression in thermal environments. The analysis is based on a continuum mechanics model in which each tube of a double-walled carbon nanotube is described as an individual orthotropic shell with the presence of van der Waals interaction forces, and the interlayer friction is negligible between the inner and outer tubes. The governing equations are based on higher order shear deformation shell theory with a von Karman-Donnell type of kinematic nonlinearity, and they include thermal effects. Temperature-dependent material properties, which come from molecular dynamics simulations, and initial point defect, which is simulated as a dimple on the tube wall, are both taken into account. A singular perturbation technique is employed to determine the buckling loads and postbuckling equilibrium paths. The numerical illustrations concern the postbuckling response of perfect and imperfect, axially loaded armchair, and zigzag carbon nanotubes under different sets of thermal environments. The results reveal that temperature change has a significant effect on the postbuckling behavior of the single-walled carbon nanotube, but it has a small effect on the postbuckling behavior of the double-walled carbon nanotube. The single-walled carbon nanotube has an unstable postbuckling path, and the structure is imperfection sensitive. In contrast, the double-walled carbon nanotube has a very weak "snap-through" postbuckling path, and the structure is virtually imperfection insensitive.
机译:提出了在热环境下承受轴向压缩的双壁碳纳米管的屈曲和后屈曲分析。该分析基于连续力学模型,其中将双壁碳纳米管的每个管描述为具有范德华相互作用力的单个正交各向异性壳,并且内管和外管之间的层间摩擦可忽略不计。控制方程基于具有非线性运动学von Karman-Donnell类型的高阶剪切变形壳理论,其中包括热效应。都考虑了取决于温度的材料特性,这些特性来自于分子动力学模拟,以及初始点缺陷,该缺陷被模拟为管壁上的凹痕。采用奇异摄动技术确定屈曲载荷和屈曲后的平衡路径。数值说明涉及在不同的热环境下,理想且不完美的轴向加载扶手椅和之字形碳纳米管的屈曲后响应。结果表明,温度变化对单壁碳纳米管的后屈曲行为有显着影响,但对双壁碳纳米管的后屈曲行为影响较小。单壁碳纳米管具有不稳定的后屈曲路径,并且该结构对缺陷很敏感。相比之下,双壁碳纳米管具有非常弱的“搭扣”后屈曲路径,并且该结构实际​​上对缺陷不敏感。

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