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Hydroelastic analysis of oblique irregular waves with a pontoon-type VLFS edged with dual inclined perforated plates

机译:带有双斜孔板的浮船式VLFS斜不规则波的水弹性分析

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摘要

The fluid-structure interaction of oblique irregular waves with a pontoon-type very large floating structure (VLFS) edged with dual horizontal inclined perforated plates has been investigated in the context of the direct time domain modal expansion theory. For the hydroelastic analysis, the boundary element method (BEM) based on time domain Kelvin sources is implemented to establish water wave model including the viscous effect of the perforated plates through the Darcy's law, and the finite element method (FEM) is adopted for solving the deflections of the VLFS modeled as an equivalent Mindlin thick plate. In order to enhance the computing efficiency, the interpolation-tabulation scheme is applied to assess rapidly and accurately the free-surface Green function and its partial derivatives in finite water depth, and the boundary integral equation of a half or quarter VLFS model is further established taking advantage of symmetry of flow field and structure. Also, the numerical solutions are validated against a series of experimental tests. In the comparison, the empirical relationship between the actual porosity and porous parameter is successfully applied. Numerical solutions and model tests are executed to determine the hydroelastic response characteristics of VLFS with an attached anti-motion device. This study examines the effects of porosity, submerged depth, inclined angle and gap distance of such dual perforated anti-motion plates on the hydroelastic response to provide information regarding the optimal design. The effects of oblique wave angle on the performance of anti-motion and hydroelastic behavior of VLFS are also emphatically examined. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在直接时域模态膨胀理论的背景下,研究了斜不规则波与浮船型超大型浮动结构(VLFS)并带有双水平倾斜多孔板的流固耦合。对于水弹性分析,采用基于时域开尔文源的边界元法(BEM),通过达西定律建立了包含多孔板粘性效应的水波模型,并采用有限元法(FEM)求解。 VLFS的挠度建模为等效的Mindlin厚板。为了提高计算效率,采用插值制表法快速准确地评估了有限水深中的自由表面格林函数及其偏导数,并进一步建立了半或四分之一VLFS模型的边界积分方程。利用流场和结构的对称性。此外,数值解经一系列实验验证。在比较中,成功地应用了实际孔隙率和多孔参数之间的经验关系。执行数值解决方案和模型测试,以确定带有连接的防运动装置的VLFS的水弹性响应特性。这项研究检查了孔隙率,浸没深度,倾斜角和间隙距离对这种双重穿孔抗运动板对水弹性响应的影响,以提供有关最佳设计的信息。还着重研究了斜波角对VLFS的抗运动性能和水弹性行为的影响。 (C)2016 Elsevier Ltd.保留所有权利。

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