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Modelling the Interaction Between a River Surface and the Atmosphere at the Bottom of a Valley

机译:模拟河谷和山谷底部大气之间的相互作用

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摘要

The role of a river of small dimensions in driving the surface exchange of sensible and latent heat fluxes at the bottom of a valley is investigated using large-eddy simulation (LES). Simulations were performed using different valley topographies, river widths and large-scale wind speed and direction. In all cases, the river acted as a sink of both sensible and latent heat during daytime. Despite the general agreement concerning the flux direction above the river surface, specific differences exist between the simulations. The topography enhances the wind divergence caused by the river, and the larger negative surface fluxes above the river occur when there are no slopes, a consequence of larger wind speeds above the river. For large-scale winds aligned with the valley axis, the surface fluxes depend on the large-scale wind speed, but this dependence is reduced if the large-scale wind is perpendicular to the valley axis. There is a minimum of temperature and a maximum of specific humidity above the river surface. The scalar budgets show that sensible heat flux converges above the river, being balanced by the warm air subsidence at the centre of the valley. Latent heat fluxes, on the other hand, converge above the river surface, and they are balanced by the horizontal advection of humidity towards the river margins.
机译:使用大涡模拟(LES)研究了小尺寸河流在驱动谷底感热和潜热通量的表面交换中的作用。使用不同的山谷地形,河流宽度以及大规模风速和风向进行了模拟。在所有情况下,河流在白天都充当着感热和潜热的汇。尽管就河流表面以上的通量方向达成了普遍共识,但模拟之间存在特定差异。地形增强了河流引起的风向扩散,当没有坡度时,河流上方的较大负表面通量就会发生,这是河流上方较大风速的结果。对于与谷轴对齐的大规模风,表面通量取决于大规模风速,但是如果大规模风垂直于谷轴,则这种依赖性会减小。河面以上温度最低且比湿最高。标量预算显示,合理的热通量收敛于河流上方,并由山谷中心的热空气沉降所平衡。另一方面,潜热通量汇聚在河面之上,并且通过湿度向河边缘的水平对流来平衡。

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