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A Large-Eddy Simulation Study of the Influence of Subsidence on the Stably Stratified Atmospheric Boundary Layer

机译:沉降对稳定分层大气边界层影响的大涡模拟研究

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摘要

The influence of the large-scale subsidence rate, S, on the stably stratified atmospheric boundary layer (ABL) over the Arctic Ocean snow/ice pack during clear-sky, winter conditions is investigated using a large-eddy simulation model. Simulations of two 24-h periods are conducted while varying S between 0, 0.001 and 0.002 msp#, and the resulting quasi-equilibrium ABL structures and evolutions are examined. Simulations conducted with S = 0 yield a boundary layer that is deeper, more strongly mixed and cools more rapidly than the observations. Simulations conducted with S > 0 yield improved agreement with the observations in the ABL height, potential temperature gradients and bulk heating rates. We also demonstrate that S > 0 limits the continuous growth of the ABL observed during quasi-steady conditions, leading to the formation of a nearly steady ABL of approximately uniform depth and temperature. Subsidence reduces the magnitudes of the stresses, as well as the implied eddy-diffusivity coefficients for momentum and heat, while increasing the vertical heat fluxes considerably. Subsidence is also observed to increases the Richardson number to values in excess of unity well below the ABL top.
机译:使用大涡模拟模型研究了大沉降速率S对晴空冬季条件下北冰洋雪/冰块上稳定分层的大气边界层(ABL)的影响。进行两个24小时周期的模拟,同时在0、0.001和0.002 msp#之间改变S,并检查所得的准平衡ABL结构和演化。在S = 0的情况下进行的模拟产生的边界层比观测值更深,混合更紧密且冷却速度更快。在S> 0的情况下进行的模拟与ABL高度,潜在的温度梯度和整体加热速率的观察结果改善了一致性。我们还证明,S> 0限制了准稳态条件下观察到的ABL的连续增长,从而导致形成深度和温度均一的近乎稳定的ABL。沉降降低了应力的大小,以及动量和热量的隐含涡流扩散系数,同时大大增加了垂直热通量。还观察到沉陷将Richardson数增加到远低于ABL顶部的统一值。

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