This study investigates the sensitivity of a high-resolution mesoscale atmospheric model in the model reproduction of thermally induced local wind (i.e., se'/> Interaction of Sea Breeze and Deep Convection over the Northeastern Adriatic Coast: An Analysis of Sensitivity Experiments Using a High-Resolution Mesoscale Model
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Interaction of Sea Breeze and Deep Convection over the Northeastern Adriatic Coast: An Analysis of Sensitivity Experiments Using a High-Resolution Mesoscale Model

机译:海风互动与东北亚得里亚海海岸的深入对流:利用高分辨率迈空模型分析敏感性实验

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AbstractThis study investigates the sensitivity of a high-resolution mesoscale atmospheric model in the model reproduction of thermally induced local wind (i.e., sea breezes, SB) on the development of deep convection (Cb). The three chosen cases are simulated by the Weather and Research Forecasting (WRF-ARW) model at three (nested) model domains, whereas the area of the interest is Istria (peninsula in the northeastern Adriatic). The sensitivity tests are accomplished by modifying (1) the model setup, (2) the model topography and (3) the sea surface temperature (SST) distribution. The first set of simulations (over the three 1.5-day periods during summer) is conducted by modifying the model setup, i.e., microphysics and the boundary layer parameterizations. The same events are simulated with the modified topography where the mountain heights in Istria are reduced to 30% of their initial height. The SST distribution has two representations in the model: a constant SST field from the ECMWF skin temperature analysis and a varying SST field, which is provided by hourly geostationary satellite data. A comprehensive set of numerical experiments is statistically analyzed through several different approaches (i.e., the standard statistical measures, the spectral method and the image moment analysis). The overall model evaluation of each model setup revealed certain advantages of one model setup over the others. The numerical tests with the modified topography showed the influence of reducing the mountains heights on the pre-thunderstorm characteristics due to: (1) decrease of sensible heat flux and mid-tropospheric moisture and (2) change of slope-SB wind system. They consequently affect the evolution and dimensions of SBs and the features of the thunderstorm itself: timing, location and intensity (weaker storm). The implementation of the varying SST field in the model have an impact on the characteristics and dynamics of the SB and finally on the accuracy of Cb evolution, duration and the intensity. SST variations emphasized the importance of the phase matching in both daytime cycles of SB and Cb due to their extremely strong nonlinear relationship.
机译:<标题>抽象 ara id =“par1”>本研究调查了高分辨率Mescle大气模型在热诱导的当地风(即海风,SB)的模型再现中的敏感性深对流(CB)。三种选择的病例由三个(嵌套)模型域的天气和研究预测(WRF-ARW)模型进行模拟,而兴趣的区域是istria(东北亚得里亚人的半岛)。灵敏度测试是通过修改(1)模型设置,(2)模型地形和(3)海表面温度(SST)分布来完成的。通过修改模型设置,即微专家和边界层参数化进行第一组模拟(在夏季期间的三个1.5天)。通过修改的地形模拟了相同的事件,其中istria中的山地高度减少到初始高度的30%。 SST分布在模型中有两个表示:来自ECMWF皮肤温度分析的恒定SST场和变化的SST场,由每小时地静止卫星数据提供。通过几种不同的方法(即标准统计措施,光谱法和图像时刻分析,统计分析了一系列综合数值实验。每个模型设置的整体模型评估显示了一个模型设置对其他模型设置的某些优点。具有改进的地形的数值测试表明,由于:(1)降低可明智的热通量和中层水分的降低和斜坡-SB风系统的变化(1)降低了对雷暴预测特性的影响。因此,它们影响SBS的演变和尺寸以及雷暴本身的特征:时序,位置和强度(风暴较弱)。该模型中变化的SST字段的实现对SB的特性和动态产生了影响,最后关于CB演化,持续时间和强度的准确性。 SST变化强调了由于其极强的非线性关系而强调了SB和CB的白天循环中的相位匹配。

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