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An overlapping domain decomposition based near-far field coupling method for wave structure interaction simulations

机译:基于重叠域分解的近场耦合波结构相互作用仿真方法

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摘要

This paper presents a newly developed Overlapping Domain Decomposition (ODD) method, which forms the basis of a near-far field coupling solver for a wide range of wave-structure interaction problems. In this method, the computational domain is decomposed into near and far fields which are then modeled separately by solving the viscous Navier-Stokes equations (NSE) and the Potential Laplacian equation (PLE) respectively. A Finite volume method (FVM) is adopted to discretize both the NS and PL equations. The free surface problem is solved in both domains but using totally different strategies. In the potential domain, a moving mesh free surface tracking method is adopted where arbitrary polyhedral mesh adapts to the time-varying shape of the interface using vertex-based automatic mesh motion solver. Meanwhile, at the free surface, the boundary conditions are formulated using an ordinary differential equation (ODE) derived from the Bernoulli's equation. In the viscous domain, however, the volume of fluid (VOF) method is used to predict the location of free surface. The novelty of the reported method lies in two-folds. First, the introduction of the so called overlapped buffer zone eliminates the need of performing time costing iterative schemes in the non-overlapping domain decomposition methods to ensure the matching of free surface elevation at the domain boundaries. The concept of a buffer zone is borrowed from the relaxation zone technique which is commonly used near the inlet to ensure a stable wave generation or near the outlet to absorb the reflected waves in numerical wave simulations. Second, an in-house developed OVERSET method is adopted for the viscous domain solver to handle large object displacement in the case of an extreme event. The proposed method has been implemented in the OpenFOAM platform (foam-extend-3.1). To validate the method, the propagation of a solitary wave is first simulated and the resulting wave parameters are compared with the corresponding analytical, as well as pure VOF solution. Meanwhile, a comparison of the CPU time between the single domain approach and the current method has been provided. Next, the measured wave impact loading for a single body which is partially submerged will be used to further test the method. Last but not least, the method is applied to simulate the spilling wave breaking near the beach. Various numerical examples presented in the paper demonstrate the accuracy and efficiency of the proposed method. Towards the end, computation of a sinking semi-submersible platform will be presented to demonstrate further the capability of the method.
机译:本文提出了一种新开发的重叠域分解(ODD)方法,该方法构成了解决近距离场耦合问题的近场耦合问题的基础。在这种方法中,将计算域分解为近场和远场,然后分别通过求解粘性的Navier-Stokes方程(NSE)和潜在的Laplacian方程(PLE)分别进行建模。采用有限体积法(FVM)离散化NS和PL方程。自由表面问题在两个领域都得到了解决,但是使用了完全不同的策略。在势域中,采用移动网格自由表面跟踪方法,其中任意多面网格使用基于顶点的自动网格运动求解器来适应界面的时变形状。同时,在自由表面上,使用从伯努利方程导出的常微分方程(ODE)来制定边界条件。但是,在粘性域中,流体体积(VOF)方法用于预测自由表面的位置。报道的方法的新颖性在于两个方面。首先,所谓的重叠缓冲区的引入消除了在非重叠域分解方法中执行耗时的迭代方案以确保在域边界处自由表面高程匹配的需求。缓冲区的概念是从松弛区技术中借用的,松弛区技术通常在入口附近使用以确保产生稳定的波,或在出口附近使用以吸收数值波模拟中的反射波。其次,内部开发的OVERSET方法用于粘性域求解器,以应对极端事件下的大对象位移。所提出的方法已在OpenFOAM平台(foam-extend-3.1)中实现。为了验证该方法,首先模拟了孤立波的传播,并将生成的波参数与相应的解析以及纯VOF解决方案进行了比较。同时,已经提供了单域方法与当前方法之间的CPU时间的比较。接下来,部分淹没的单个物体的波浪冲击载荷将用于进一步测试该方法。最后但并非最不重要的一点是,该方法被应用于模拟海滩附近的溢出波。本文提供的各种数值示例证明了该方法的准确性和有效性。最后,将介绍沉没式半潜水平台的计算,以进一步证明该方法的能力。

著录项

  • 来源
    《Coastal engineering》 |2017年第8期|37-50|共14页
  • 作者单位

    ASTAR, Inst High Performance Comp, Fluid Dynam Dept, Singapore, Singapore;

    ASTAR, Inst High Performance Comp, Fluid Dynam Dept, Singapore, Singapore;

    ASTAR, Inst High Performance Comp, Fluid Dynam Dept, Singapore, Singapore;

    ASTAR, Inst High Performance Comp, Fluid Dynam Dept, Singapore, Singapore;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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