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Numerical simulations of wave interactions with vertical wave barriers using the SPH method

机译:使用SPH方法的垂直波壁与波相互作用的数值模拟

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This paper focuses on the fluid boundary separation problem of the conventional dynamic solid boundary treatment (DSBT) and proposes a modified DSBT (MDSBT). Classic 2D free dam break flows and 3D dam break flows against a rectangular box are used to assess the performance of this MDSBT in free surface flow and violent fluid-structure interaction, respectively. Another test, water column oscillations in a U-tube, is specially designed to reveal the applicability of dealing with two types of particular boundaries: the wet-dry solid boundary and the large-curvature solid boundary. A comparison between the numerical results and the experimental data shows that the MDSBT is capable of eliminating the fluid boundary separation, improving the accuracy of the solid boundary pressure calculations and preventing the unphysical penetration of fluid particles. Using a 2D SPH numerical wave tank with MDSBT, the interactions between regular waves and a simplified vertical wave barrier are simulated. The numerical results reveal that the maximum horizontal force occurs at the endpoint of the vertical board, and with the enlargement of the relative submerged board length, the maximum moment grows linearly; furthermore, the relative average mass transportation under the breakwater initially increases to 11.14 per wave strike but is later reduced. The numerical simulation of a full-scale 3D wave barrier with two vertical boards shows that the wave and structure interactions in the practical project are far more complicated than in the simplified 2D models. The SPH model using the MDSBT is capable of providing a reference for engineering designs.
机译:本文着眼于常规动态固体边界处理(DSBT)的流体边界分离问题,并提出了一种改进的DSBT(MDSBT)。经典的2D自由坝破裂流和3D坝破裂流对着矩形框分别用于评估此MDSBT在自由表面流和剧烈的流固耦合中的性能。另一项测试是U形管中的水柱振荡,它是专门设计用来揭示处理两种类型的特殊边界的适用性:干湿固体边界和大曲率固体边界。数值结果与实验数据之间的比较表明,MDSBT能够消除流体边界分离,提高了固体边界压力计算的准确性,并防止了流体颗粒的非物理渗透。使用带有MDSBT的2D SPH数值波箱,可以模拟规则波与简化的垂直波壁垒之间的相互作用。数值结果表明,最大水平力出现在垂直板的端点,并且随着相对水下板长度的增加,最大弯矩呈线性增长。此外,防波堤下的相对平均质量传输量最初增加至每波冲击11.14,但随后降低。带有两个垂直板的全尺寸3D声波屏障的数值模拟表明,实际项目中的波和结构相互作用要比简化的2D模型复杂得多。使用MDSBT的SPH模型能够为工程设计提供参考。

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