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首页> 外文期刊>Applied Mathematical Modelling >Free vibration analysis of FGM cylindrical shells surrounded by Pasternak elastic foundation in thermal environment considering fluid-structure interaction
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Free vibration analysis of FGM cylindrical shells surrounded by Pasternak elastic foundation in thermal environment considering fluid-structure interaction

机译:考虑流固耦合的热环境下帕斯捷尔纳克弹性地基环绕的FGM圆柱壳自由振动分析

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摘要

This paper presents an investigation on partially fluid-filled cylindrical shells made of functionally graded materials (FGM) surrounded by elastic foundations (Pasternak elastic foundation) in thermal environment. Material properties are assumed to be temperature dependent and radially variable in terms of volume fraction of ceramic and metal according to a simple power law distribution. The shells are reinforced by stiffeners attached to their inside and outside in which the material properties of shell and the stiffeners are assumed to be continuously graded in the thickness direction. The formulations are derived based on smeared stiffeners technique and classical shell theory using higher-order shear deformation theory which accounts for shear flexibility through shell's thickness. Displacements and rotations of the shell middle surface are approximated by combining polynomial functions in the meridian direction and truncated Fourier series with an appropriate number of harmonic terms in the circumferential direction. The governing equations of liquid motion are derived using a finite strip element formulation of incompressible inviscid potential flow. The dynamic pressure of the fluid is expanded as a power series in the radial direction. Moreover, the quiescent liquid free surface is modeled by concentric annular rings. A detailed numerical study is carried out to investigate the effects of power-law index of functional graded material, fluid depth, stiffeners, boundary conditions, temperature and geometry of the shell on the natural frequency of eccentrically stiffened functionally graded shell surrounded by Pasternak foundations. (C) 2019 Elsevier Inc. All rights reserved.
机译:本文介绍了在热环境中由功能梯度材料(FGM)制成的部分充满流体的圆柱壳的研究,该壳被弹性基础(Pasternak弹性基础)包围。根据简单的幂定律分布,假定材料特性与温度有关,并且在陶瓷和金属的体积分数方面径向变化。壳体通过附着在其内部和外部的加强筋进行加强,其中,假定壳体和加强筋的材料特性在厚度方向上连续分级。这些公式是基于涂抹加劲肋技术和经典壳理论,使用高阶剪切变形理论得出的,该理论考虑了整个壳厚度的剪切挠性。通过将多项式函数沿子午线方向和截短的傅立叶级数相结合,并在圆周方向上使用适当数量的谐波项,可以估算出壳中间表面的位移和旋转。液体运动的控制方程是使用不可压缩的无粘性势流的有限条形单元公式导出的。流体的动态压力在径向上作为幂级数扩展。此外,静止的无液表面由同心圆环建模。进行了详细的数值研究,以研究功能梯度材料的幂律指数,流体深度,加劲肋,边界条件,壳体的温度和几何形状对被Pasternak基础包围的偏心刚性功能梯度壳体的固有频率的影响。 (C)2019 Elsevier Inc.保留所有权利。

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