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Continuum Shell Model for Buckling of Single-Walled Carbon Nanotubes with Different Chiral Angles

机译:具有不同手征角的单壁碳纳米管屈曲的连续壳模型

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摘要

In this paper, an equivalent thick cylindrical shell model is proposed for the buckling analysis of short single-walled carbon nanotubes (SWCNTs) with allowance for different chiral angles. Extensive, molecular dynamics (MD) simulations are first performed using the adaptive intermolecular reactive bond order potential to determine the critical buckling loads/strains. The MD simulations buckling results are then used as reference solutions to calibrate the properties of the thick cylindrical shell model. Central to this development is the establishment of an empirical expression for the Young's modulus that is a function of both the diameter and the chiral angle of the SWCNT. For the shell model, we have assumed that the Poisson ratio v= 0:19 and the shell thickness h = 0:066 nm. It will be shown that the proposed shell model furnishes good estimates of the critical buckling loads for SWCNTs with different chiral angles. The critical buckling strains are also evaluated from the critical buckling load with the aid of the stress-strain relation of SWCNTs.
机译:本文提出了一种等效的厚圆柱壳模型,用于考虑到不同手性角的短单壁碳纳米管(SWCNT)的屈曲分析。首先,使用自适应分子间反应性键序势来进行广泛的分子动力学(MD)模拟,以确定临界屈曲载荷/应变。然后将MD模拟屈曲结果用作参考解决方案,以校准厚圆柱壳模型的特性。这一发展的中心是建立杨氏模量的经验表达式,该经验表达式是SWCNT的直径和手性角的函数。对于壳模型,我们假设泊松比v = 0:19,壳厚度h = 0:066 nm。结果表明,所提出的壳模型可以很好地估计不同手征角的SWCNT的临界屈曲载荷。借助于SWCNT的应力-应变关系,还可以从临界屈曲载荷来评估临界屈曲应变。

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