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Vibration of fluid-conveying nanotubes subjected to magnetic field based on the thin-walled Timoshenko beam theory

机译:基于薄壁季莫申​​科束理论的流体传输纳米管在磁场中的振动

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摘要

In this article, the flutter vibrations of fluid-conveying thin-walled nanotubes subjected to magnetic field is investigated. For modeling fluid structure interaction, the nonlocal strain gradient thin-walled Timoshenko beam model, Knudsen number and magnetic nanoflow are assumed. The Knudsen number is considered to analyze the slip boundary conditions between the fluid-flow and the nanotube's wall, and the average velocity correction parameter is utilized to earn the modified flow velocity of nano-flow. Based on the extended Hamilton's principle, the size-dependent governing equations and associated boundary conditions are derived. The coupled equations of motion are transformed to a general eigenvalue problem by applying extended Galerkin technique under the cantilever end conditions. The influences of nonlocal parameter, strain gradient length scale, magnetic nanoflow, longitudinal magnetic field, Knudsen number on the eigenvalues and critical flutter velocity of the nanotubes are studied.
机译:在本文中,研究了在磁场作用下流体输送的薄壁纳米管的颤动振动。为了模拟流体结构相互作用,假定非局部应变梯度薄壁Timoshenko束模型,克努森数和磁纳流。考虑努氏数来分析流体与纳米管壁之间的滑移边界条件,并利用平均速度校正参数来获得修正的纳米流流速。基于扩展的汉密尔顿原理,推导了尺寸相关的控制方程和相关的边界条件。通过在悬臂端条件下应用扩展的Galerkin技术,将耦合的运动方程式转换为一般的特征值问题。研究了非局部参数,应变梯度长度尺度,磁纳米流,纵向磁场,克努森数对纳米管的特征值和临界扑动速度的影响。

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