Analysis of Coupled Nonlinear Radial-Axial Vibration of Single-Walled Carbon Nanotubes Using Numerical Methods

A. Fatahi‐Vajari, Z. Azimzadeh
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Abstract

This paper investigates the nonlinear coupled radial-axial vibration of single-walled carbon nanotubes (SWCNTs) based on numerical methods. Two coupled partial differential equations that govern the nonlinear coupled radial-axial vibration for such nanotube are derived using nonlocal doublet mechanics (DM) theory. To obtain the nonlinear natural frequencies in coupled radial-axial vibration mode, these equations are solved using Homotopy perturbation method (HPM). It is found that the coupled radial-axial vibrational frequencies are complicated due to coupling between two vibration modes. The influences of some commonly used boundary conditions, changes in vibration modes and variations of the nanotubes geometrical parameters on the nonlinear coupled radial-axial vibration characteristics of SWCNTs are discussed. It was shown that boundary conditions and maximum vibration velocity play significant roles in the nonlinear coupled radial-axial vibration response of SWCNTs. It was shown that unlike the linear one, the nonlinear natural frequencies are dependent to maximum vibration velocity. Increasing the maximum vibration velocity increases the natural frequency of vibration compared to the prediction of the linear model. However, with increase in tube length, the effect of the maximum vibration velocity on the natural frequencies decreases. It was also shown that the amount and variation of nonlinear natural frequencies are more apparent in higher vibration modes and two clamped boundary conditions. To show the accuracy and capability of this method, the results obtained herein are compared with the fourth order Runge-Kuta numerical results and also with the other available results and good agreement is observed. It is notable that the results generated herein are new and can be served as a benchmark for future works.
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单壁碳纳米管径向-轴向耦合非线性振动数值分析
基于数值方法研究了单壁碳纳米管(SWCNTs)径向-轴向非线性耦合振动。利用非局部双重态力学理论,推导了纳米管径向-轴向非线性耦合振动的两个耦合偏微分方程。为了得到径向-轴向耦合振动模式下的非线性固有频率,采用同伦摄动法求解了这些方程。研究发现,由于两种振动模式之间的耦合,耦合的径向-轴向振动频率变得复杂。讨论了一些常用的边界条件、振动模式的变化和纳米管几何参数的变化对SWCNTs径向-轴向非线性耦合振动特性的影响。结果表明,边界条件和最大振动速度对SWCNTs径向-轴向非线性耦合振动响应有重要影响。结果表明,与线性频率不同,非线性固有频率与最大振动速度有关。与线性模型的预测结果相比,增大最大振动速度可以提高振动的固有频率。随着管长的增加,最大振动速度对固有频率的影响减小。在高振动模态和两种固载边界条件下,非线性固有频率的数量和变化更为明显。为了证明该方法的准确性和能力,将所得结果与四阶龙格-库塔数值结果以及其他已有结果进行了比较,结果表明两者吻合较好。值得注意的是,这里产生的结果是新的,可以作为未来工作的基准。
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