Propagation of Steep and Breaking Short-Crested Waves: A Comparison of CFD Codes

Øystein Lande, T. B. Johannessen
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引用次数: 1

Abstract

Using the computational fluid domain for propagation of ocean waves have become an important tool for the calculation of highly nonlinear wave loading on offshore structures such as run-up, wave slamming and non-linear breaking wave kinematics. At present, there are many computational fluid dynamics (CFD) codes available which can be employed to calculate water wave propagation and wave induced loading on structures. For practical reasons, however, the use of these codes is often limited to the propagation of regular uni-directional waves initiated very close to the structure, or to investigating the properties and loading due to measured waves by fitting a numerical wave to a measured wave profile. The present paper focuses on the propagation of steep irregular and short crested wave groups up to the point of breaking. Indeed, this is challenging because of the highly nonlinear behavior of irregular wave groups as steepness increases and they approach the point of breaking. The complexity further increases with the introduction of short-crestedness requiring computation in a large 3-dimentional domain. Two CFD codes are used in this comparison study which are believed to be well conditioned for wave propagation, the commercial code ComFLOW (available through the ComFLOW JIP project) and the open-source code BASILISK. The primary objective of this paper to show the two CFD codes capability of recreating measured irregular wave groups, using the known linear wave components from the model test as input to fluid domain. Wave elevation is measured at several locations in the close vicinity of the focus point. The comparison is carried out for a selection of events with variation in steepness, wave spreading and wave spectrum.
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陡峰和破峰短峰波的传播:CFD代码的比较
利用计算流体域计算海浪的传播已成为计算海上结构高度非线性波浪载荷的重要工具,如爬升、撞波和非线性破碎波运动学。目前,已有许多计算流体力学(CFD)程序可用于计算水波传播和结构上的波浪诱导荷载。然而,由于实际原因,这些代码的使用通常仅限于非常接近结构的规则单向波的传播,或者通过将数值波拟合到测量波剖面来研究由测量波引起的特性和载荷。本文主要研究陡波、不规则波和短峰波群在破碎点处的传播。事实上,这是具有挑战性的,因为不规则波群的高度非线性行为随着陡度的增加而接近破裂点。随着需要在大的三维域中计算的短冠性的引入,复杂性进一步增加。在这个比较研究中使用了两种CFD代码,商业代码ComFLOW(可通过ComFLOW JIP项目获得)和开源代码BASILISK,这两种代码被认为对波浪传播有很好的条件。本文的主要目的是利用模型试验中已知的线性波分量作为流体域的输入,展示两种CFD代码重建测量不规则波群的能力。在焦点附近的几个地点测量波浪高程。选取坡度、波幅和波谱变化的事件进行比较。
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