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Axially Compressive Deformation Mechanisms of Single- and Multi-Walled Carbon Nanotubes via Finite Element Analysis

机译:单壁和多壁碳纳米管的轴向压缩变形机理的有限元分析

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摘要

A modified finite element method is presented and finite element simulations are performed on single-, double- and multi-walled carbon nanotubes to investigate their axially compressive buckling behaviors. The dependence of carbon nanotubes' axial buckling behaviors with respect to their physical dimensions is investigated by prescribing the relations of the critical buckling load and strain to the diameter, length of carbon nanotubes. In addition, the postbuckling responses are obtained for various carbon nanotubes. The simulation results show that larger tube diameter leads to higher buckling load until a stable value is reached, whereas larger tube length and length-to-radius ratio lead to lower buckling axial strains. At the same time, the applicability of the present modified finite element method to carbon nanotubes with various length-to-radius ratios is examined. The more extensive applicability of finite element method is revealed by comparing with the classical elastic shell theory, Euler column buckling theory and molecular dynamics simulation. And finally, the effects of numbers of layers on the buckling loads and axial strains of multi-walled carbon nanotubes are also examined. It is shown that the more layers multi-walled carbon nanotubes have, the higher buckling load is required while the smaller critical axial strain is demanded.
机译:提出了一种改进的有限元方法,并对单壁,双壁和多壁碳纳米管进行了有限元模拟,以研究其轴向压缩屈曲行为。通过规定临界屈曲载荷和应变与碳纳米管的直径,长度的关系,研究了碳纳米管的轴向屈曲行为对其物理尺寸的依赖性。此外,获得了各种碳纳米管的屈曲后响应。仿真结果表明,较大的管直径导致较高的屈曲载荷,直到达到稳定值为止,而较大的管长度和长度与半径的比将导致较低的屈曲轴向应变。同时,研究了本改进的有限元方法对具有各种长径比的碳纳米管的适用性。通过与经典弹性壳理论,欧拉列屈曲理论和分子动力学模拟的比较,揭示了有限元方法的更广泛的适用性。最后,还研究了层数对多壁碳纳米管的屈曲载荷和轴向应变的影响。结果表明,多壁碳纳米管的层数越多,要求的屈曲载荷就越大,而所需的临界轴向应变越小。

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