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A novel method for studying the buckling of nanotubes considering geometrical imperfections

机译:考虑几何缺陷的研究纳米管屈曲的新方法

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摘要

Buckling of nanotubes has been studied using many methods such as molecular dynamics (MD), molecular mechanics, and continuum-based shell theories. In MD, motion of the individual atoms is tracked under applied temperature and pressure, ensuring a reliable estimate of the material response. The response thus simulated varies for individual nanotubes and is only as accurate as the force field used to model the atomic interactions. On the other hand, there exists a rich literature on the understanding of continuum mechanics-based shell theories. Based on the observations on the behavior of nanotubes, there have been a number of shell theory-based approaches to study the buckling of nanotubes. Although some of these methods yield a reasonable estimate of the buckling stress, investigation and comparison of buckled mode shapes obtained from continuum analysis and MD are sparse. Previous studies show that the direct application of shell theories to study nanotube buckling often leads to erroneous results. The present study reveals that a major source of this error can be attributed to the departure of the shape of the nanotube from a perfect cylindrical shell. Analogous to the shell buckling in the macro-scale, in this work, the nanotube is modeled as a thin-shell with initial imperfection. Then, a nonlinear buckling analysis is carried out using the Riks method. It is observed that this proposed approach yields significantly improved estimate of the buckling stress and mode shapes. It is also shown that the present method can account for the variation of buckling stress as a function of the temperature considered. Hence, this can prove to be a robust method for a continuum analysis of nanosystems taking in the effect of variation of temperature as well.
机译:已经使用许多方法研究了纳米管的屈曲,例如分子动力学(MD),分子力学和基于连续体的壳理论。在MD中,在施加的温度和压力下跟踪单个原子的运动,从而确保对材料响应的可靠估计。如此模拟的响应随单个纳米管而变化,并且仅与用于模拟原子相互作用的力场一样准确。另一方面,关于基于连续体力学的壳理论的理解存在丰富的文献。基于对纳米管行为的观察,已经有许多基于壳理论的方法来研究纳米管的屈曲。尽管这些方法中的一些方法可以合理估计屈曲应力,但从连续分析和MD获得的屈曲模态形状的研究和比较很少。先前的研究表明,直接将壳理论应用于纳米管屈曲研究通常会导致错误的结果。本研究表明,该误差的主要来源可归因于纳米管形状与理想的圆柱壳的偏离。类似于宏观尺度上的壳屈曲,在这项工作中,纳米管被建模为具有初始缺陷的薄壳。然后,使用Riks方法进行非线性屈曲分析。观察到,该提出的方法可显着改善屈曲应力和模态形状的估计。还表明,本方法可以考虑屈曲应力随所考虑温度的变化。因此,在考虑温度变化的影响下,这可以证明是一种用于纳米系统连续分析的可靠方法。

著录项

  • 来源
    《Applied Physics》 |2014年第2期|945-953|共9页
  • 作者单位

    Department of Civil Engineering, Indian Institute of Science, Bangalore 560012, India;

    Department of Civil Engineering, Indian Institute of Science, Bangalore 560012, India;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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