湍流参数化对复杂地形雾模拟的影响

IF 3.4 2区 地球科学 Q2 METEOROLOGY & ATMOSPHERIC SCIENCES
Shweta Singh, Juerg Schmidli, Ivan Bašták Ďurán, Stephanie Westerhuis
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引用次数: 0

摘要

辐射雾的数值天气预报(NWP)仍然是一个艰巨的挑战,特别是在复杂地形。许多可操作的NWP模式经常与日落后缓慢或不形成雾以及早晨消散过快的情况作斗争。本研究探讨了大气边界层(ABL)中的物理过程在形成icoshedral Nonhydrostatic (ICON)模式中雾和低层表征的限制中的作用。具体地说,它评估了湍流参数化和垂直分辨率对雾模拟的影响。ICON模拟是针对瑞士高原上持续辐射雾、夜间雾、低层和高污染物浓度的冬季进行的。模拟采用了ICON-TKE格式和ICON-2TE格式的不同配置。利用ABL剖面仪和瑞士Payerne气象站的地面观测资料对这些模式配置的性能进行了评估。结果表明,与ICON-TKE相比,ICON-2TE具有精确的湍流表示,可以使雾持续更长时间,并且与观测结果更接近。这种改进归功于ICON-2TE方案中对稳定性依赖和湍流长度尺度的更复杂处理。值得注意的是,在ICON-2TE方案中,垂直分辨率的增加改善了雾的表现,而在ICON-TKE方案中几乎没有效果。ICON-TKE缺乏改进可能是由于对湍流混合的高估,它忽略了垂直分辨率变化的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Impact of the Turbulence Parameterization on Simulations of Fog Over Complex Terrain

Impact of the Turbulence Parameterization on Simulations of Fog Over Complex Terrain

Numerical weather prediction (NWP) of radiation fog, particularly over complex terrain, remains a formidable challenge. Many operational NWP models often struggle with slow or no fog formation after sunset and too rapid dissipation in the morning. This study investigates the role of physical processes in the atmospheric boundary layer (ABL) in shaping the limitations of fog and low stratus representation within the operational ICOsahedral Nonhydrostatic (ICON) model. Specifically, it evaluates the effects of turbulence parameterizations and vertical resolution on fog simulations. ICON simulations were conducted for selected winter periods characterized by persistent radiation fog, nocturnal fog, low stratus, and high pollutant concentrations over the Swiss Plateau. The simulations involved different configurations of the operational turbulence scheme (ICON-TKE) and the newly developed two-energies turbulence scheme (ICON-2TE). The performance of these model configurations was assessed using an ABL profiler and surface observations from the Payerne weather station in Switzerland. The results indicate that ICON-2TE, with its refined turbulence representation, allows fog to persist longer and aligns more closely with observations than ICON-TKE. This improvement is attributed to a more sophisticated treatment of stability dependence and turbulence length scale in the ICON-2TE scheme. Notably, an increase in vertical resolution improves fog representation in the ICON-2TE scheme, while it shows almost no effect in the ICON-TKE scheme. The lack of improvement in ICON-TKE is likely due to an overestimation of turbulence mixing, which overrides the effect of changes in vertical resolution.

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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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