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Vertical elastic dynamic impedance of a large diameter and thin-walled cylindrical shell type foundation

机译:大直径薄壁圆柱壳型基础的竖向弹性动阻抗

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This paper studies the vertical vibration of a large diameter and thin-walled cylindrical shell type foundation embedded in a fully saturated porous seabed in contact with a seawater half-space. The solution of the coupled fluid-shell foundation-soil vibration problem is obtained using the ring-load Green's functions for both the shell and the layered fluid-seabed half-space. By considering the fully coupled boundary conditions at the shell-soil interface, the shell vibration problem is reduced to Fredholm integral equations. Through an analysis of the corresponding Cauchy singular equations, the intrinsic singular characteristics of the problem are rendered explicit. With the singularities clear, an effective numerical method involving the Gauss-Chebyshev method is developed to solve the governing Fredholm equations. Selected numerical results for the dynamic contact load distributions, displacements, and dynamic impedance functions are examined based on different shell lengths, soil materials, shell properties, and frequencies of excitation. Moreover, the results are analysed for cases in which there is and is no fluid overlying seabed to examine the effect of fluid.
机译:本文研究了大直径薄壁圆柱壳型地基的垂直振动,该地基埋置在与海水半空间接触的完全饱和的多孔海床上。使用壳体和层状流体-海底半空间的环荷格林函数,可以得到耦合的流体-壳体基础-土壤振动问题的解决方案。通过考虑壳-土界面处的完全耦合边界条件,将壳振动问题简化为Fredholm积分方程。通过分析相应的柯西奇异方程,可以使问题的固有奇异特性明确。在明确奇点的基础上,开发了一种涉及高斯-切比雪夫方法的有效数值方法来求解控制弗雷德霍尔姆方程。根据不同的壳体长度,土壤材料,壳体特性和激励频率,检查了动态接触载荷分布,位移和动态阻抗函数的选定数值结果。此外,分析了在海床上方没有流体的情况下的结果,以检查流体的影响。

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