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首页> 外文期刊>European Journal of Mechanics, B. Fluids >The gravity wave momentum flux in hydrostatic flow with directional shear over elliptical mountains
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The gravity wave momentum flux in hydrostatic flow with directional shear over elliptical mountains

机译:椭圆山上定向剪切静水力流中的重力波动量通量

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Semi-analytical expressions for the momentum flux associated with orographic internal gravity waves, and closed analytical expressions for its divergence, are derived for inviscid, stationary, hydrostatic, directionally-sheared flow over mountains with an elliptical horizontal cross-section. These calculations, obtained using linear theory conjugated with a third-order WKB approximation, are valid for relatively slowly-varying, but otherwise generic wind profiles, and given in a form that is straightforward to implement in drag parametrization schemes. When normalized by the surface drag in the absence of shear, a quantity that is calculated routinely in existing drag parametrizations, the momentum flux becomes independent of the detailed shape of the orography. Unlike linear theory in the Ri → ∞ limit, the present calculations account for shear-induced amplification or reduction of the surface drag, and partial absorption of the wave momentum flux at critical levels. Profiles of the normalized momentum fluxes obtained using this model and a linear numerical model without the WKB approximation are evaluated and compared for two idealized wind profiles with directional shear, for different Richardson numbers (Ri). Agreement is found to be excellent for the first wind profile (where one of the wind components varies linearly) down to Ri = 0.5, while not so satisfactory, but still showing a large improvement relative to the Ri → ∞ limit, for the second wind profile (where the wind turns with height at a constant rate keeping a constant magnitude). These results are complementary, in the Ri approx.> O(1) parameter range, to Broad's generalization of the Eliassen-Palm theorem to 3D flow. They should contribute to improve drag parametrizations used in global weather and climate prediction models.
机译:推导了与地形内部重力波相关的动量通量的半解析表达式以及其散度的闭合解析表达式,它们是针对椭圆形水平横截面的山上的不粘,固定,静水,有方向剪切力的流。这些计算是使用结合了三阶WKB逼近的线性理论获得的,对于相对缓慢变化的风有效,但对于一般的风廓线则有效,并且以在阻力参数化方案中易于实现的形式给出。当在不存在剪切力的情况下通过表面阻力归一化(在现有阻力参数设置中常规计算的量)时,动量通量变得与地形的详细形状无关。与Ri→∞极限中的线性理论不同,本计算计算了剪切诱导的表面阻力的放大或减小,以及在临界水平上对波动量通量的部分吸收。使用此模型和没有WKB近似的线性数值模型获得的归一化动量通量的轮廓进行了评估,并针对两个具有方向剪切力的理想化风廓线针对不同的Richardson数(Ri)进行了比较。发现对于第一风剖面(其中一个风分量线性变化)降至Ri = 0.5时,一致性非常好,虽然不尽人意,但相对于Ri→∞极限,对于第二风来说仍显示出很大的改进轮廓(风以恒定的速率随高度旋转并保持恒定的大小)。这些结果在Ri近似> O(1)参数范围内是对Eliassen-Palm定理到3D流的Broad泛化的补充。它们应有助于改善全球天气和气候预测模型中使用的阻力参数设置。

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