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首页> 外文期刊>SOLA: Scientific Online Letters on the Atmosphere >Performance of Dynamic Downscaling for Extreme Weather Event in Eastern Mongolia: Case Study of Severe Windstorm on 26 May 2008
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Performance of Dynamic Downscaling for Extreme Weather Event in Eastern Mongolia: Case Study of Severe Windstorm on 26 May 2008

机译:蒙古东部极端天气事件的动态降尺度性能:以2008年5月26日的强风暴为例

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References(17) Cited-By(2) Supplementary materials(3) Global weather forecasts do not have sufficient performance to predict the local severe weather events that are accompanied with cyclones and cold fronts due to their coarse horizontal resolution. This study investigated the performance of dynamical downscaling (DD) using mesoscale model to simulate the severe windstorm in eastern Mongolia which occurred on 26-27 May 2008.Our results revealed that the DD experiments were successful in capturing the general features of the windstorm in terms of wind and temperature patterns. The timing and amplitude of drastic changes in the simulated temperature and wind speed were very similar to that observed than that obtained from the global atmospheric data, suggesting that DD is capable of predicting extreme wind storm events in Mongolia. Analyses on the nested domains indicate that the DD has crucial impact on the performance for simulating severe storm even with a moderate resolution (27 km), and further nesting (9 and 3 km) plays a role to improve it. Furthermore, the maximum wind speed approaches the observed value more closely as the horizontal resolution increases, although it still underestimates the observed wind speed even in the 3 km mesh domain. On the other hand, the abrupt temperature change is captured well even in the low-resolution domain, suggesting a difference in necessary horizontal resolution for temperature change and maximum wind speed.
机译:参考文献(17)被引用的补充文献(2)补充材料(3)全球天气预报由于其水平分辨率较粗糙,因此不足以预测伴随飓风和冷锋而发生的局部恶劣天气事件。本研究使用中尺度模型研究了动态降尺度(DD)的性能,以模拟2008年5月26日至27日发生在蒙古东部的严重暴风雨。我们的结果表明DD实验成功地捕获了暴风雨的一般特征和温度模式的变化。与从全球大气数据获得的数据相比,模拟温度和风速急剧变化的时间和幅度与观测到的非常相似,这表明DD能够预测蒙古的极端风暴事件。对嵌套域的分析表明,即使在中等分辨率(27 km)下,DD对模拟强风暴的性能也具有至关重要的影响,而进一步嵌套(9 km和3 km)则起到了改善其作用。此外,最大风速随着水平分辨率的提高而更加接近观测值,尽管即使在3 km网格域中,它仍然低估了观测风速。另一方面,即使在低分辨率域中也能很好地捕获突然的温度变化,这表明温度变化和最大风速在必要的水平分辨率上存在差异。

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