数值波的鉴定标准和验证:第2部分:基于cfd的数值波槽

B. Bouscasse, A. Califano, Young-Myung Choi, Xu Haihua, Jang-Whan Kim, Young Jun Kim, Sang Hun Lee, H. Lim, Dong-Min Park, M. Peric, Zhi-rong Shen, S. Yeon
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引用次数: 4

摘要

人们对数值波浪模拟越来越感兴趣,将其作为设计海上结构的工具,特别是用于预测随机非线性波浪荷载,如与气隙和波浪冲击有关的波浪荷载。虽然模拟不能取代所有的实验,但它们在一些主题上是有竞争力的,比如风和电流系数的计算。为了进一步进行,有必要改进程序,以考虑另一个复杂的环境因素,即波动。本文讨论了一项工业合作,以开发用于海上应用的基于cfd的数值波浪槽的建模实践和资格标准。作为在“可重复的海上CFD JIP”框架内开发可靠的数值波浪模拟实践的一部分,本工作的第1部分为基于势流的代码生成的波浪解制定了资格标准。第2部分首先给出了一组解决方案,用于在CFD域中强制使用势码获得的合格波。这些解决方案遵循JIP框架中先前提出的一组耦合协议。结合两种势能代码和两种CFD解算器,描述了四种可能的产生波和模态的方法。考虑了两种不同的电位模型,一种是采用数值波槽的高阶谱法(HOS-NWT),另一种是在水平方向上采用有限元法,在垂直方向上采用sigma变换后的模态展开(求解器称为TPNWT)。两艘船都配备了一个断裂模型来产生极端的海况。测试的两个CFD求解器是Simcenter STAR-CCM+和OpenFOAM。提出了两个软件的仿真设置。本文介绍了来自8个学术或工业合作伙伴的两组深水二维测试案例的模拟结果,一组是规则波,一组是不规则波,两组都有一个非常陡峭的条件(规则波的波高/波长比为10%,墨西哥湾不规则波的波高/波长比为1000年)。采用随机方法模拟了10组3小时的不规则波,以验证数值域内产生的波的质量。重点考虑了波峰分布的谱和集合概率,它们都是由区域中心的波高程得到的。
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Qualification Criteria and the Verification of Numerical Waves: Part 2: CFD-Based Numerical Wave Tank
There is increasing interest in numerical wave simulations as a tool to design offshore structures, especially for the prediction of stochastic nonlinear wave loads like those related to air-gap and wave impact. Though the simulations cannot replace all experiments, they are now competitive on some topics such as the computations of wind and current coefficients. To proceed further it is necessary to improve the procedure to account for another complex environmental factor, wave motion. This paper addresses an industrial collaboration to develop modeling practices and qualification criteria of CFD-based numerical wave tank for offshore applications. As a part of the effort to develop reliable numerical wave modeling practices in the framework of the “Reproducible Offshore CFD JIP”, qualification criteria are formulated for the wave solutions generated from either potential-flow based codes in Part 1 of this work. Part 2 presents first a set of solutions for forcing the qualified waves obtained with the potential codes in the CFD domain. Those solutions follow a set of coupling protocols previously proposed in the JIP framework. Two potential codes and two CFD solvers are combined, so that four possible methods of generating waves and modalities are described. Two different potential models are considered, one using the higher order spectral method for numerical wave tank (HOS-NWT), and another using the finite-element method in the horizontal direction and a modal expansion after a sigma transform in the vertical direction (solver is called TPNWT). Both are equipped with a breaking model to generate extreme sea states. The two CFD solvers tested are Simcenter STAR-CCM+ and OpenFOAM. Simulation setups are proposed for both software. Simulation results from eight academic or industrial partners are presented for two sets of 2D test cases in deep water, one with regular waves and one with irregular waves, both with one very steep condition (ratio of wave height over wavelength of 10% for regular waves and 1000 year return period for Gulf of Mexico for irregular waves). The irregular waves are simulated for 10 sets of 3 hours to apply a stochastic approach to verify the quality of the waves generated in the numerical domain. Attention is given to the wave spectrum and the ensemble probability of the crest distribution, both obtained from the wave elevation at the center of the domain.
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