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Nonlinear vibration and instability of fluid-conveying DWBNNT embedded in a visco-Pasternak medium using modified couple stress theory

机译:修正耦合应力理论在黏性帕斯滕纳克介质中的流体输送DWBNNT的非线性振动和不稳定性

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摘要

Nonlinear free vibration and instability of fluid-conveying double-walled boron nitride nanotubes (DWBNNTs) embedded in viscoelastic medium are studied in this paper. The effects of the transverse shear deformation and rotary inertia are considered by utilizing the Timoshenko beam theory. The size effect is applied by the modified couple stress theory and considering a material length scale parameter for beam model. The nonlinear effect is considered by the Von Karman type geometric nonlinearity. The electromechanical coupling and charge equation are employed to consider the piezoelectric effect. The surrounding viscoelastic medium is described as the linear visco-Pasternak foundation model characterized by the spring and damper. Hamilton's principle is used to derive the governing equations and boundary conditions. The differential quadrature method (DQM) is employed to discretize the nonlinear higher-order governing equations, which are then solved by a direct iterative method to obtain the nonlinear vibration frequency and critical fluid velocity of fluid-conveying DWBNNTs with clamped-clamped (C-C) boundary conditions. A detailed parametric study is conducted to elucidate the influences of the small scale coefficient, spring and damping constants of surrounding viscoelastic medium and fluid velocity on the nonlinear free vibration, instability and electric potential distribution of DWBNNTs. This study might be useful for the design and smart control of nano devices.
机译:研究了嵌入粘弹性介质中的流体传输双壁氮化硼纳米管(DWBNNTs)的非线性自由振动和不稳定性。利用Timoshenko梁理论来考虑横向剪切变形和旋转惯性的影响。尺寸效应是通过改进的耦合应力理论应用的,并考虑了梁模型的材料长度比例参数。 Von Karman型几何非线性考虑了非线性效应。机电耦合和电荷方程用于考虑压电效应。周围的粘弹性介质被描述为线性粘滞Pasternak基础模型,其特征是弹簧和阻尼器。汉密尔顿原理用于导出控制方程和边界条件。采用微分求积法(DQM)离散非线性高阶控制方程,然后通过直接迭代法求解,以获得带夹持的流体输送DWBNNT的非线性振动频率和临界流体速度边界条件。进行了详细的参数研究,以阐明小尺度系数,周围粘弹性介质的弹簧和阻尼常数以及流体速度对DWBNNTs的非线性自由振动,不稳定性和电势分布的影响。这项研究可能对纳米设备的设计和智能控制很有用。

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