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首页> 外文期刊>International Journal of Pressure Vessels and Piping >Three-dimensional transient analysis of functionally graded truncated conical shells with variable thickness subjected to an asymmetric dynamic pressure
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Three-dimensional transient analysis of functionally graded truncated conical shells with variable thickness subjected to an asymmetric dynamic pressure

机译:非对称动压作用下具有可变厚度的功能梯度截顶圆锥壳的三维瞬态分析

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摘要

A hybrid method based on the three-dimensional (3-D) elasticity theory is developed for transient analysis of functionally graded (FG) truncated conical shell with variable thickness, subjected to asymmetric dynamic pressure. The FG shell is functionally graded in the radial direction. A hybrid method composed of the layerwise theory, differential quadrature method (DQM), and Fourier series expansion is employed. A Fourier series expansion is used for the displacement components and dynamic pressure in the circumferential direction. Then the layerwise theory across the thickness direction in conjunction with Hamilton's principle is employed to obtain equations of motion and boundary conditions. Eventually, the DQM is implemented to discretize the governing equations in both spatial and time domains. This research shows some interesting results that can be helpful for design of FG conical shells.
机译:提出了一种基于三维(3-D)弹性理论的混合方法,用于瞬变分析功能梯度(FG)截顶圆锥壳,其厚度可变,承受不对称动压力。 FG外壳在径向上按功能分级。采用了一种由分层理论,差分正交方法(DQM)和傅立叶级数展开组成的混合方法。使用傅里叶级数展开表示圆周方向上的位移分量和动压力。然后,结合汉密尔顿原理,采用沿厚度方向的分层理论来获得运动方程和边界条件方程。最终,实现了DQM,以在空间和时域中离散控制方程。这项研究显示了一些有趣的结果,这些结果可能对FG圆锥壳的设计有所帮助。

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