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General higher-order shear deformation theories for the free vibration analysis of completely doubly-curved laminated shells and panels

机译:完全双重弯曲的叠层壳体和面板自由振动分析的通用高阶剪切变形理论

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The main aim of this paper is to provide a general framework for the formulation and the dynamic analysis computations of moderately thick laminated doubly-curved shells and panels. A 2D higher-order shear deformation theory is also proposed and the differential geometry is used to define the arbitrary shape of the middle surface of shells and panels with different curvatures. A generalized nine-parameter displacement field suitable to represent in a unified form most of the kinematical hypothesis presented in literature has been introduced. Formal comparison among various theories have been performed in order to show the differences between the well-known First-order Shear Deformation Theory (FSDT) and several Higher-order Shear Deformation Theories (HSDTs). The 2D free vibration shell problems have been solved numerically using the Generalized Differential Quadrature (GDQ) technique. The GDQ rule has been also used to perform the numerical evaluation of the derivatives of the quantities involved by the differential geometry to completely describe the reference surfaces of doubly-curved shell structures. Numerical investigations concerning four types of shell structures have been carried out. GDQ results are compared with those presented in literature and the ones obtained using commercial programs such as Abaqus. Very good agreement is observed.
机译:本文的主要目的是为中等厚度的叠层双曲线壳和面板的配方和动力分析计算提供一个通用框架。还提出了二维高阶剪切变形理论,并使用微分几何来定义具有不同曲率的壳和面板的中间表面的任意形状。引入了一个广义的九参数位移场,该场适于以统一的形式表示文献中提出的大多数运动学假设。为了表明著名的一阶剪切变形理论(FSDT)与几种高阶剪切变形理论(HSDT)之间的差异,已经进行了各种理论之间的形式比较。二维自由振动壳问题已使用广义差分正交(GDQ)技术以数值方式解决。 GDQ规则也已用于对微分几何涉及的量的导数进行数值评估,以完整描述双曲壳结构的参考曲面。已经进行了关于四种类型的壳结构的数值研究。将GDQ结果与文献中的结果以及使用商业程序(例如Abaqus)获得的结果进行比较。观察到非常好的一致性。

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