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A modeling analysis of rainfall and water cycle by the cloud-resolving WRF model over western North Pacific

机译:利用WRF云解析模型对北太平洋西部的降雨和水循环进行建模分析

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This study simulates regional precipitation, especially extreme precipitation events,and the regional hydrologic budgets over the western North Pacific region during the period from May to June 2008 by the high-resolution (4-km grid spacing) Weather Research and Forecast (WRF v3.2.1) model with explicit cloud microphysics. The model initial and boundary conditions are derived from NCEP/DOE R2 reanalysis data.Adopting the retrieved rainfall from Tropical Rainfall Measuring Mission (TRMM)3B42 as a reference for comparison, the WRF simulations reproduce the spatial distributions of time mean precipitation amount and rainy days. But the simulated frequency distributions of rainy days and rainfall amount show overestimated light precipitation, underestimated moderate to heavy precipitation, and well simulated extreme precipitation. The vapor budget analysis shows that the heavy precipitation is contributed mostly by the stronger moisture convergence. However, in less convective periods, the precipitation is more influenced by the surface evaporation. The vapor budget is sensitive to the cloud microphysics scheme that affects the location and strength of atmospheric latent heating and then the large-scale circulation.
机译:本研究通过高分辨率(4 km网格间距)天气研究和预报(WRF v3)模拟了北太平洋西部地区在2008年5月至6月期间的区域降水(尤其是极端降水事件)和区域水文预算。 2.1)具有显式云微观物理学的模型。模型的初始条件和边界条件是从NCEP / DOE R2重新分析数据得出的。 WRF模拟采用了热带雨量测量任务(TRMM)3B42检索到的降雨量作为比较的参考,再现了时间平均降水量和雨天的空间分布。但是,模拟的雨天频率分布和降雨量显示高估了轻度降水,低估了中度到重度降水,并很好地模拟了极端降水。蒸气收支分析表明,强降水主要是由于较强的水分汇聚作用所致。但是,在对流较少的时期,降水受表面蒸发的影响更大。蒸气收支对云的微观物理方案很敏感,后者会影响大气潜热的位置和强度,进而影响大规模的环流。

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