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Various gradient elasticity theories in predicting vibrational response of single-walled carbon nanotubes with arbitrary boundary conditions

机译:任意边界条件下单壁碳纳米管振动响应的各种梯度弹性理论

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This article deals with the development and use of different gradient beam theories in order to predict the vibrational behavior of single-walled carbon nanotubes (SWCNTs). To address the problem of free vibration, the Euler-Bernoulli and Timoshenko beam theories in conjunction with the gradient elasticity theories including stress, strain and combined strain/inertia are implemented. The generalized differential quadrature method is employed to numerically solve the problem which can treat various boundary conditions. The results generated from the present gradient models are compared with those from molecular dynamics simulations as a benchmark of good accuracy and the proper values of small length scales used in the gradient models are proposed. This study shows prominent differences between various gradient models when the nanotube becomes very short (for aspect ratios of approximately lower than six). It is indicated that applying the strain gradient elasticity by incorporation of inertia gradients yields more reliable results especially for shorter length SWCNTs on account of two small-scale factors related to the inertia and strain gradients. Moreover, since with the reduction in the aspect ratio of nanotubes the effects of boundary conditions become dominant, a discussion is given to investigate the influence of end conditions on the vibrational characteristics of SWCNTs.
机译:本文讨论了不同梯度束理论的发展和使用,以预测单壁碳纳米管(SWCNT)的振动行为。为了解决自由振动的问题,将Euler-Bernoulli和Timoshenko梁理论与包括应力,应变和组合应变/惯性在内的梯度弹性理论结合起来实施。采用广义微分求积法数值求解了可以处理各种边界条件的问题。将当前梯度模型产生的结果与分子动力学模拟的结果进行比较,以作为良好精度的基准,并提出了梯度模型中使用的小长度标度的适当值。这项研究表明,当纳米管变得非常短时(对于纵横比大约低于6),各种梯度模型之间存在显着差异。结果表明,由于两个与惯性和应变梯度有关的小尺度因素,通过结合惯性梯度来应用应变梯度弹性可产生更可靠的结果,尤其是对于较短长度的SWCNT。此外,由于随着纳米管长径比的减小,边界条件的影响变得占主导,因此进行了讨论以研究端部条件对SWCNT的振动特性的影响。

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