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Assimilation and Simulation of Typhoon Rusa (2002) Using the WRF System
作者姓名:GU Jianfeng  Qingnong XIAO  Ying-Hwa KUO  Dale M. BARKER  XUE Jishan  MA Xiaoxing
作者单位:[1]ChineseAcademyofMeteorologicalSciences,Beijing100081//NationalCenterforAtmosphericResearch,Boulder,Colorado80307,USA [2]NationalCenterforAtmosphericResearch,Boulder,Colorado80307,USA [3]ChineseAcademyofMeteorologicalSciences,Beijing100081 [4]ShanghaiWeatherForecastCenter,Shanghai200030
摘    要:Using the recently developed Weather Research and Forecasting (WRF) 3DVAR and the WRF model, numerical experiments are conducted for the initialization and simulation of typhoon Rusa (2002).The observational data used in the WRF 3DVAR are conventional Global Telecommunications System (GTS) data and Korean Automatic Weather Station (AWS) surface observations. The Background Error Statistics (BES) via the National Meteorological Center (NMC) method has two different resolutions, that is, a 210-km horizontal grid space from the NCEP global model and a 10-km horizontal resolution from Korean operational forecasts. To improve the performance of the WRF simulation initialized from the WRF 3DVAR analyses, the scale-lengths used in the horizontal background error covariances via recursive filter are tuned in terms of the WRF 3DVAR control variables, streamfunction, velocity potential, unbalanced pressure and specific humidity. The experiments with respect to different background error statistics and different observational data indicate that the subsequent 24-h the WRF model forecasts of typhoon Rusa‘s track and precipitation are significantly impacted upon the initial fields. Assimilation of the AWS data with the tuned background error statistics obtains improved predictions of the typhoon track and its precipitation.

关 键 词:天气搜索预报系统  数值仿真  背景误差估计  台风  3DVAR

Assimilation and simulation of typhoon Rusa (2002) using the WRF system
GU Jianfeng,Qingnong XIAO,Ying-Hwa KUO,Dale M. BARKER,XUE Jishan,MA Xiaoxing.Assimilation and simulation of typhoon Rusa (2002) using the WRF system[J].Advances in Atmospheric Sciences,2005,22(3):415-427.
Authors:Gu Jianfeng  Qingnong Xiao  Ying-Hwa Kuo  Dale M Barker  Xue Jishan  Ma Xiaoxing
Institution:Chinese Academy of Meteorological Sciences, Beijing 100081;National Center for Atmospheric Research, Boulder, Colorado 80307, USA;Shanghai Weather Forecast Center, Shanghai 200030,National Center for Atmospheric Research, Boulder, Colorado 80307, USA,National Center for Atmospheric Research, Boulder, Colorado 80307, USA,National Center for Atmospheric Research, Boulder, Colorado 80307, USA,Chinese Academy of Meteorological Sciences, Beijing 100081,Shanghai Weather Forecast Center, Shanghai 200030
Abstract:Using the recently developed Weather Research and Forecasting (WRF) 3DVAR and the WRF model, numerical experiments are conducted for the initialization and simulation of typhoon Rusa (2002).The observational data used in the WRF 3DVAR are conventional Global Telecommunications System (GTS) data and Korean Automatic Weather Station (AWS) surface observations. The Background Error Statistics (BES) via the National Meteorological Center (NMC) method has two different resolutions, that is, a 210-km horizontal grid space from the NCEP global model and a 10-kn horizontal resolution from Korean operational forecasts. To improve the performance of the WRF simulation initialized from the WRF 3DVAR analyses, the scale-lengths used in the horizontal background error covariances via recursive filter are tuned in terms of the WRF 3DVAR control variables, streamfunction, velocity potential, unbalanced pressure and specific humidity. The experiments with respect to different background error statistics and different observational data indicate that the subsequent 24-h the WRF model forecasts of typhoon Rusa's track and precipitation are significantly impacted upon the initial fields. Assimilation of the AWS data with the tuned background error statistics obtains improved predictions of the typhoon track and its precipitation.
Keywords:3DVAR  data assimilation  background error statistics  numerical simulation  typhoon
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