论文标题
在风能条件下表面波的两相流量模拟
Two-Phase Flow Simulations of Surface Waves in Wind-Forced Conditions
论文作者
论文摘要
该论文专门用于两相流量模拟,并研究了扩散界面Cahn-Hilliard模型模型的能力,以捕获与地球物理相关的雷诺数字上空气接口的动力学。它采用混合过滤/平均改进的分离的涡流模拟方法来对湍流进行建模,并利用连续模型来解释如果网格弥漫界面分辨不足,则说明了表面张力。引入了一个数值风波储罐,以限制计算成本,并且与匹配的雷诺数数量的实验数据相比,分析了两种风波条件的结果。比较的重点是时间平均和波连通量,包括压力,速度以及建模和解决的雷诺应力。通常,数值预测与实验测量非常吻合,并重现许多波依赖性流动特征。发现水面附近的雷诺应力在调节临界层高度方面尤为重要。得出的结论是,扩散界面方法被证明是对地球物理相关流中空气接口动力学的未来研究的一种有希望的方法。
The paper is devoted to two-phase flow simulations and investigates the ability of a diffusive interface Cahn-Hilliard Volume-of-Fluid model to capture the dynamics of the air-sea interface at geophysically relevant Reynolds numbers. It employs a hybrid filtered/averaging Improved Detached Eddy Simulation method to model turbulence, and utilizes a continuum model to account for surface tension if the diffuse interface is under-resolved by the grid. A numerical wind-wave tank is introduced to limit computational costs and results obtained for two wind-wave conditions are analyzed in comparison to experimental data at matched Reynolds numbers. The focus of the comparison is on both time-averaged and wave-coherent quantities, and includes pressure, velocity as well as modeled and resolved Reynolds stresses. In general, numerical predictions agree well with the experimental measurements and reproduce many wave-dependent flow features. Reynolds stresses near the water surface are found to be especially important in modulating the critical layer height. It is concluded that the diffusive interface approach proves to be a promising method for future studies of air-sea interface dynamics in geophysically relevant flows.