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Coupled Boundary Element And Finite Element Model For Fluid-filled Membrane In Gravity Waves

机译:重力波作用下充液膜的边界元和有限元耦合模型

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This paper describes a three-dimensional, coupled boundary element and finite element model for dynamic analysis of a fluid-filled membrane in gravity waves. The model consists of three components, describing respectively, the membrane deflection and the motions of fluids inside and outside the membrane. Small amplitude assumptions of the surface waves and membrane deflection lead to linearization of the mathematical problem and an efficient solution in the frequency domain. A finite element model, based on the membrane theory of shells, relates the membrane deflection to the internal and external fluid pressure. Two boundary element models, which describe the potential flows inside and outside the membrane, are coupled to the finite element model through the kinematic and dynamic boundary conditions on the membrane. As a demonstration, the resulting model is applied to evaluate the dynamic response of a bottom-mounted fluid-filled membrane in a wave flume. Previous two-dimensional numerical model results and three-dimensional laboratory data verify and validate the present three-dimensional model. Analysis of the computed membrane response and surface wave pattern reveals intricate resonance characteristics that explain the discrepancies between the numerical model results and the laboratory data.
机译:本文描述了一个三维耦合边界元和有限元模型,用于在重力波中动态分析充液膜。该模型由三个部分组成,分别描述了膜的挠度以及膜内部和外部的流体运动。表面波和膜片偏转的小幅度假设导致数学问题的线性化和频域的有效解决方案。基于壳膜理论的有限元模型将膜挠度与内部和外部流体压力相关联。通过描述膜的运动和动态边界条件,将两个描述膜内部和外部的潜在流动的边界元模型耦合到有限元模型。作为演示,将所得模型应用于评估波浪形水槽中底部安装的流体填充膜的动态响应。先前的二维数值模型结果和三维实验室数据验证并验证了当前的三维模型。对计算出的膜响应和表面波型的分析显示出复杂的共振特征,这些特征解释了数值模型结果与实验室数据之间的差异。

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