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首页> 外文期刊>Microfluidics and nanofluidics >Size-dependent effects on critical flow velocity of a SWCNT conveying viscous fluid based on nonlocal strain gradient cylindrical shell model
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Size-dependent effects on critical flow velocity of a SWCNT conveying viscous fluid based on nonlocal strain gradient cylindrical shell model

机译:基于非局部应变梯度圆柱壳模型的尺寸对SWCNT输送粘性流体临界流速的影响

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摘要

This article investigates vibration and instability analysis of a single-walled carbon nanotube (SWCNT) conveying viscous fluid flow. For this purpose, the first-order shear deformation shell model is developed in the framework of nonlocal strain gradient theory (NSGT) for the first time. The proposed model is a conveying viscous fluid in which the external force of fluid flow is applied by the modified Navier-Stokes relation and considering slip boundary condition and Knudsen number. The NSGT can be reduced to the nonlocal elasticity theory, strain gradient theory or the classical elasticity theory by inserting their specific nonlocal parameters and material length scale parameters into the governing equations. Comparison of above-mentioned theories suggests that the NSGT predicts the greatest critical fluid flow velocity and stability region. The governing equations of motion and corresponding boundary conditions are discretized using the generalized differential quadrature method. Furthermore, the effects of the material length scale, nonlocal parameter, Winkler elastic foundation and Pasternak elastic foundation on vibration behavior and instability of a SWCNT conveying viscous fluid flow with simply supported and clamped-clamped boundary conditions are investigated.
机译:本文研究了输送粘性流体的单壁碳纳米管(SWCNT)的振动和不稳定性分析。为此,首次在非局部应变梯度理论(NSGT)的框架内建立了一阶剪切变形壳模型。所提出的模型是一种输送粘性流体,其中通过修改的Navier-Stokes关系并考虑滑移边界条件和Knudsen数来施加流体流的外力。通过将NSGT的特定非局部参数和材料长度尺度参数插入控制方程,可以简化为非局部弹性理论,应变梯度理论或经典弹性理论。上述理论的比较表明,NSGT预测最大的临界流体流速和稳定性区域。运动的控制方程和相应的边界条件使用广义微分正交方法离散化。此外,研究了材料长度尺度,非局部参数,Winkler弹性地基和Pasternak弹性地基对在简单支撑和夹紧边界条件下输送粘性流体的SWCNT的振动行为和不稳定性的影响。

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