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Three-dimensional numerical simulation on the interaction of solitary waves and porous breakwaters

机译:孤波与多孔防波堤相互作用的三维数值模拟

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A three-dimensional (3D) large-eddy-simulation model with macroscopic model equations of porous flow is proposed to investigate solitary waves interacting with permeable breakwaters. The major objective of this paper is twofold. First, we seek to evaluate the present model through the comparison with available simulated and measured data in the literature. The second aim, given the 3D nature of flow past a permeable breakwater, the variations of permeable breakwater modeled on both macroscopic and microscopic scales are examined. First validation is carried out with experiments on solitary wave propagation in a 3D wave basin and then runup on a vertical permeable breakwater with a gap in the lateral direction. A satisfactory agreement on the free surface elevation time series is obtained between model and measured results. Second, we replicate the experiments on a solitary wave interaction with a submerged permeable breakwater in a two-dimensional narrow wave flume. The porous medium is composed of spheres with a uniform size and arranged in a non-staggered regular pattern such that the porous medium can thus be modeled on macroscopic and microscopic scales. The numerical calculations indicate that the results obtained with macroscopic and microscopic modeling both fit the measurements fairly well in terms of the free surface elevations and velocity fields. Specifically, the microscopic modeling better simulates detailed phenomena such as flow injection from the porous medium and the initial stage of the formation of the main vortex in the leeward face of the obstacle. After the solitary wave completely propagates over the permeable object, the discrepancies between macroscopic and microscopic model results are insignificant. More accurate 3D results are used to determine the trajectories of fluid particles around the porous object to help understand the possible sediment movements in suspensions.
机译:为了研究孤立波与渗透性防波堤的相互作用,提出了一种具有宏观模型方程的三维三维大涡模拟模型。本文的主要目的是双重的。首先,我们寻求通过与文献中可用的模拟和测量数据进行比较来评估当前模型。第二个目标是,考虑到流过可渗透防波堤的3D性质,研究了在宏观和微观尺度上建模的可渗透防波堤的变化。首先通过在3D波浪盆地中进行孤波传播的实验进行验证,然后在横向上有缝隙的垂直可渗透防波堤上加速运行。在模型和测量结果之间获得了关于自由表面高程时间序列的令人满意的协议。其次,我们在二维窄波水槽中复制了与水下可渗透防波堤的孤立波相互作用的实验。多孔介质由尺寸均匀的球组成,并以无交错规则的图案排列,因此可以在宏观和微观尺度上对多孔介质进行建模。数值计算表明,通过宏观和微观建模获得的结果在自由表面标高和速度场方面都非常适合测量。具体而言,微观建模可以更好地模拟详细现象,例如从多孔介质中注入流体以及障碍物背风面主旋涡形成的初始阶段。在孤波完全传播到可渗透物体上之后,宏观和微观模型结果之间的差异不明显。更准确的3D结果用于确定多孔物体周围的流体颗粒轨迹,以帮助了解悬浮物中可能的沉积物运动。

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