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A scaled boundary finite element method for static and dynamic analyses of cylindrical shells

机译:圆柱壳静,动力分析的比例边界有限元方法

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A modeling technique based on the scaled boundary finite element method is developed for both static and dynamic analyses of cylindrical shells. A new scaling strategy is employed to ensure that the shell boundaries and the cross sections at the element inferfaces are accurately represented through the scaling process. The formulation starts directly from the three-dimensional linear elasticity theory for cylindrical shells. The principle of virtual work involving the inertial force is applied to derive the scaled boundary finite element equation. Only the in-plane dimensions of the structure are discretized with finite elements while the solution through the thickness is expressed analytically as a Padé expansion. A variable transformation procedure facilitates the development of the dynamic stiffness matrix, which leads to the static stiffness matrix and mass matrix naturally. A laminate model with arbitrary number of layers can readily be constructed. Numerical examples demonstrate the accuracy, applicability and efficiency of the two-layer model.
机译:针对圆柱壳的静态和动态分析,开发了基于比例边界有限元方法的建模技术。采用了一种新的缩放策略,以确保通过缩放过程可以准确地表示壳体边界和元素界面处的横截面。该公式直接从圆柱壳的三维线性弹性理论开始。应用涉及惯性力的虚拟功原理推导了比例边界有限元方程。通过有限元离散化结构的平面尺寸,而将通过厚度的解解析地表示为Padé展开。可变的变换过程有助于动态刚度矩阵的发展,从而自然产生静态刚度矩阵和质量矩阵。可以轻松构建具有任意数量层的层压模型。数值算例表明了该两层模型的准确性,适用性和有效性。

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