首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part C. Journal of mechanical engineering science >Nonlinear vibrations of fluid-filled functionally graded cylindrical shell considering a time-dependent lateral load and static preload
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Nonlinear vibrations of fluid-filled functionally graded cylindrical shell considering a time-dependent lateral load and static preload

机译:考虑时间相关的侧向载荷和静态预载荷的充液功能梯度圆柱壳的非线性振动

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In the recent years, functionally gradient materials (FGMs) have gained considerable attention with possible applications in several engineering fields, especially in a high-temperature or hazardous environment. In this work, the nonlinear vibrations of a simply supported fluid-filled functionally graded cylindrical shell subjected to a lateral time-dependent load and axial static preload are analyzed. To model the shell, the Donnell nonlinear shell theory is used. The fluid is assumed to be incompressible, nonviscous, and irrotational. A new function to describe the variation in the volume fraction of the constituent material through the shell thickness is proposed, extending the concept of sandwich structures to a functionally graded material. Material properties are graded along the shell thickness according to the proposed volume fraction power law distribution. A consistent reduced order model derived from a perturbation technique is used to describe the displacements of the shell and, the Galerkin method is applied to derive a set of coupled nonlinear ordinary differential equations of motion. Results show the influence of the variation of the two constituent materials along the shell thickness, internal fluid, static preload, and shell geometry on the natural frequencies, nonlinear frequency-amplitude relation, resonance curves, and bifurcation scenario of the FG cylindrical shell.
机译:近年来,功能梯度材料(FGM)在许多工程领域,尤其是在高温或危险环境中的可能应用中引起了极大的关注。在这项工作中,分析了承受侧向时间相关载荷和轴向静态预载荷的简单支撑的填充流体的功能梯度圆柱壳的非线性振动。为了建模壳,使用了Donnell非线性壳理论。假定流体不可压缩,无粘性且无旋转。提出了一种新功能来描述组成材料的体积分数随壳厚度的变化,从而将夹心结构的概念扩展到了功能梯度材料上。根据提议的体积分数幂律分布,沿着外壳厚度对材料特性进行分级。从摄动技术导出的一致降阶模型用于描述壳体的位移,而Galerkin方法则用于导出一组耦合的非线性常微分运动方程。结果表明,两种组成材料沿壳体厚度,内部流体,静态预载和壳体几何形状的变化对FG圆柱壳的固有频率,非线性频率-振幅关系,共振曲线和分叉情况的影响。

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