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Longitudinal and transverse wave propagation analysis of stationary and axially moving carbon nanotubes conveying nano-fluid

机译:固定和轴向移动的纳米管输送纳米流体的纵向和横向波传播分析

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In this study, the longitudinal and transverse wave propagation of the stationary and the axially moving carbon nanotubes (CNTs) with and without inside flowing fluid are investigated and analyzed. For this purpose, the nano-rod model for the longitudinal vibration and the Euler-Bernoulli beam model for the transverse vibration are utilized in order to modeling of the stationary CNT. Furthermore, the Rayleigh beam model is employed for modeling the axially moving CNT. In addition, for considering the nano-scale effects of the structure and fluid flowing through carbon nanotubes, the nonlocal elasticity theory and the Knudsen number are utilized, respectively, and their effects on the system wave frequency and phase velocity are investigated. Moreover, complex-valued wave dispersion relations and corresponding characteristic equations are derived according to the wave frequency, phase velocity, and the wave number. The results show that the axial velocity of the CNT has more effective role than the flowing fluid velocity for dispersed wave magnitude and intensification of the frequency, especially for the longitudinal dispersion. It is observed that the phase velocity is decreased by increasing the wave number on both longitudinal and transverse wave propagation. (C) 2018 Elsevier Inc. All rights reserved.
机译:在这项研究中,研究了在有内部流动流体和没有内部流动流体的情况下,固定和轴向移动的碳纳米管(CNT)的纵向和横向波传播。为此,利用了用于纵向振动的纳米棒模型和用于横向振动的欧拉-伯努利梁模型,以便对固定的CNT进行建模。此外,使用瑞利光束模型来建模轴向移动的CNT。此外,考虑到结构和流过碳纳米管的流体的纳米尺度效应,分别利用了非局部弹性理论和克努森数,研究了它们对系统波频率和相速度的影响。此外,根据波的频率,相速度和波数,推导了复数值波的色散关系和相应的特征方程。结果表明,碳纳米管的轴向速度比流动的流体速度对分散波的幅度和频率的增强,特别是对纵向分散的影响更有效。观察到,通过增加纵向和横向波传播上的波数,相速度会降低。 (C)2018 Elsevier Inc.保留所有权利。

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