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首页> 外文期刊>Atmospheric Chemistry and Physics Discussions >Large-eddy simulation of radiation fog with comprehensive two-moment bulk microphysics: impact of different aerosol activation and condensation parameterizations
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Large-eddy simulation of radiation fog with comprehensive two-moment bulk microphysics: impact of different aerosol activation and condensation parameterizations

机译:具有全面的两步体微观物理学的辐射雾大涡模拟:不同气溶胶活化和凝结参数化的影响

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In this paper we study the influence of the cloud microphysical parameterization, namely the effect of different methods for calculating the supersaturation and aerosol activation, on the structure and life cycle of radiation fog in large-eddy simulations. For this purpose we investigate a well-documented deep fog case as observed at Cabauw (the Netherlands) using high-resolution large-eddy simulations with a comprehensive bulk cloud microphysics scheme. By comparing saturation adjustment with a diagnostic and a prognostic method for calculating supersaturation (while neglecting the activation process), we find that, even though assumptions for saturation adjustment are violated, the expected overestimation of the liquid water mixing ratio is negligible. By additionally considering activation, however, our results indicate that saturation adjustment, due to approximating the underlying supersaturation, leads to a higher droplet concentration and hence significantly higher liquid water content in the fog layer, while diagnostic and prognostic methods yield comparable results. Furthermore, the effect of different droplet number concentrations is investigated, induced by using different common activation schemes. We find, in line with previous studies, a positive feedback between the droplet number concentration (as a consequence of the applied activation schemes) and strength of the fog layer (defined by its vertical extent and amount of liquid water). Furthermore, we perform an explicit analysis of the budgets of condensation, evaporation, sedimentation and advection in order to assess the height-dependent contribution of the individual processes on the development phases.
机译:在本文中,我们研究了大涡模拟中云微物理参数化的影响,即计算过饱和度和气溶胶活化的不同方法对辐射雾的结构和寿命周期的影响。为此,我们使用高分辨率的大涡模拟和综合的整体云微物理方案,研究了在卡博(荷兰)观察到的有据可查的深雾情况。通过将饱和度调整与用于计算过饱和度的诊断和预后方法进行比较(而忽略激活过程),我们发现,即使违反了饱和度调整的假设,对液态水混合比的预期高估也可以忽略不计。然而,通过额外考虑激活,我们的结果表明,由于近似于基础过饱和而导致的饱和度调整会导致较高的液滴浓度,因此雾层中的液态水含量明显较高,而诊断和预后方法则得出可比的结果。此外,研究了通过使用不同的常见激活方案诱导的不同液滴数浓度的影响。根据先前的研究,我们发现液滴数量浓度(由于应用激活方案)与雾层强度(由其垂直范围和液态水量定义)之间存在正反馈。此外,我们对凝结,蒸发,沉淀和对流的预算进行了明确的分析,以评估各个过程对开发阶段的高度依赖性贡献。

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