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Nonlinear vibration and stability of FG nanotubes conveying fluid via nonlocal strain gradient theory

机译:通过非本体应变梯度理论输送流体的非线性振动和稳定性

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In this work, a model of a functionally graded (FG) nanotube conveying fluid embedded in an elastic medium is developed based on the nonlocal strain gradient theory (NSGT) in conjunction with Euler-Bernoulli beam theory (EBT). The main objective of this research is to investigate the nonlinear vibration and stability analysis of fluid-conveying nanotubes. The governing equations of motion are derived by means of Hamiltonian principle. The analytical expressions of nonlinear frequencies and critical flow velocities for two different types of boundary conditions including pinned-pinned (P-P) and clamped-clamped (C-C) conditions are obtained by employing Galerkin method as well as Hamiltonian Approach (HA). Comparison of the obtained results with the published works show the acceptable accuracy of the current solutions. The effects of the power-law index, the nonlocal and material length scale parameters and the elastic medium on the stability and nonlinear responses of FG nanotubes are thoroughly investigated and discussed.
机译:在这项工作中,基于与Euler-Bernoulli光束理论(EBT)结合非本质应变梯度理论(NSGT)开发了嵌入弹性介质中的功能上分级(FG)纳米管传送流体的模型。本研究的主要目的是研究流体输送纳米管的非线性振动和稳定性分析。通过Hamiltonian原则来源的运动方程。通过采用Galerkin方法以及Hamiltonian方法(HA),获得包括固定钉扎(P-P)和夹紧夹紧(C-C)条件的两种不同类型边界条件的非线性频率和临界流速的分析表达。与已发布的作品的获得结果的比较显示了当前解决方案的可接受准确性。彻底研究并讨论了电力法指数,非局部和材料长度参数和弹性介质对FG纳米管的稳定性和非线性响应的影响。

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