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Toward a K-Profile Parameterization of Langmuir Turbulence in Shallow Coastal Shelves

机译:浅海沿海货架Langmuir湍流的K剖面参数化

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摘要

Interaction between the wind-driven shear current and the Stokes drift velocity induced by surface gravity waves gives rise to Langmuir turbulence in the upper ocean. Langmuir turbulence consists of Langmuir circulation (LC) characterized by a wide range of scales. In unstratified shallow water, the largest scales of Langmuir turbulence engulf the entire water column and thus are referred to as full-depth LC. Large-eddy simulations (LESs) of Langmuir turbulence with full-depth LC in a wind-driven shear current have revealed that vertical mixing due to LC erodes the bottom log-law velocity profile, inducing a profile resembling a wake law. Furthermore, in the interior of the water column, two sources of Reynolds shear stress, turbulent (nonlocal) transport and local Stokes drift shear production, can combine to lead to negative mean velocity shear. Meanwhile, near the surface, Stokes drift shear serves to intensify small-scale eddies leading to enhanced vertical mixing and disruption of the surface log law. A K-profile parameterization (KPP) of the Reynolds shear stress comprising local and nonlocal components is introduced, capturing these basic mechanisms by which Langmuir turbulence in unstratified shallow water impacts the vertical mixing of momentum. Single-water-column, Reynolds-averaged Navier-Stokes simulations with the new parameterization are presented, showing good agreement with LES in terms of mean velocity. Results show that coefficients in the KPP may be parameterized based on attributes of the full-depth LC.
机译:风力剪切流与表面重力波引起的斯托克斯漂移速度之间的相互作用导致了上层海洋的朗缪尔湍流。 Langmuir湍流由Langmuir循环(LC)组成,其特征是范围广泛。在未分层的浅水中,最大规模的朗缪尔湍流吞没了整个水柱,因此被称为全深度液相色谱。在风切变流中具有全深度LC的Langmuir湍流的大涡模拟(LESs)表明,由于LC引起的垂直混合会腐蚀底部的对数律速度剖面,从而产生类似于尾流定律的剖面。此外,在水柱内部,雷诺剪切应力的两个来源,湍流(非局部)传输和局部斯托克斯漂移剪切产生,可以组合成负平均速度剪切。同时,在地表附近,斯托克斯漂移剪切机用于增强小规模的涡流,从而导致垂直混合增加和破坏地表对数律。引入包括局部和非局部分量的雷诺剪切应力的K轮廓参数化(KPP),捕捉了这些基本机制,未分层浅水中的朗缪尔湍流通过这些基本机制影响动量的垂直混合。提出了具有新参数化的单水柱雷诺平均Navier-Stokes模拟,在平均速度方面与LES表现出良好的一致性。结果表明,可以基于全深度LC的属性对KPP中的系数进行参数化。

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