地形坡度和地表粗糙度变化对夜间稳定边界层湍流产生的影响

IF 3.4 2区 地球科学 Q2 METEOROLOGY & ATMOSPHERIC SCIENCES
Jielun Sun, Sudheer R. Bhimireddy, David A. R. Kristovich, Junming Wang, April L. Hiscox, Larry Mahrt, Grant W. Petty
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引用次数: 0

摘要

在夜间稳定边界层(SBL)中,有上坡和无上坡的地形坡度对下游剪切湍流的影响不同。与平坦地形上的HOST关系相比,这些差异可以通过给定高度湍流和风速之间关系的变化来识别,即曲棍球棒(HOST)过渡。来自高架均匀地形的地面冷空气的输送降低了下游的气温,但空气分层较少。随着地形坡度的增加,冷空气和重气团的增加加剧了下游流体静力不平衡,导致给定风速下湍流度增加。即下坡气流湍流度随风速增加的速率与地形坡度无关。上坡的大表面粗糙度元素增强了垂直湍流混合,将地表冷空气从地形中抬升。这种升高的、寒冷的、湍流的空气层的水平输送降低了下游上层暖空气的温度。得益于SBL中随着高度的增加,下游稳定层积逐渐减少,风切变可以有效地产生强湍流。除了冷下坡气流对湍流度的增强外,湍流度随风速的增加而增加。这项研究展示了由HOST关系捕获的湍流产生的关键物理机制。它还强调了地形特征通过在平坦地形上偏离HOST关系对这些机制的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Impacts of Terrain Slope and Surface Roughness Variations on Turbulence Generation in the Nighttime Stable Boundary Layer

Impacts of Terrain Slope and Surface Roughness Variations on Turbulence Generation in the Nighttime Stable Boundary Layer

Terrain slopes with and without upslope large surface roughness impact downstream shear-generated turbulence differently in the nighttime stable boundary layer (SBL). These differences can be identified through variations in the relationship between turbulence and wind speed at a given height, known as the HOckey STick (HOST) transition, as compared to the HOST relationship over flat terrain. The transport of cold surface air from elevated uniform terrain reduces downstream air temperature not much air stratification. As terrain slope rises, the increasing cold and heavy air enhances downstream hydrostatic imbalance, resulting in increasing turbulence for a given wind speed. That is, the rate of turbulence increase with wind speed from downslope flow is independent of terrain slope. Upslope large surface roughness elements enhance vertical turbulent mixing, elevating cold surface air from the terrain. Horizontal transport of this elevated, cold, turbulent air layer reduces the downstream upper warm air temperature. Benefiting from the progressive reduction of downstream stable stratification with increasing height in the SBL, wind shear can effectively generate strong turbulence. In addition to the turbulence enhancement from the cold downslope flow, the rate of turbulence increase with wind speed is elevated. This study demonstrates key physical mechanisms for turbulence generation captured by the HOST relationship. It also highlights the influence of terrain features on these mechanisms through deviations from the HOST relationship over flat terrain.

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来源期刊
Journal of Geophysical Research: Atmospheres
Journal of Geophysical Research: Atmospheres Earth and Planetary Sciences-Geophysics
CiteScore
7.30
自引率
11.40%
发文量
684
期刊介绍: JGR: Atmospheres publishes articles that advance and improve understanding of atmospheric properties and processes, including the interaction of the atmosphere with other components of the Earth system.
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