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High-Resolution Mesoscale Analysis Data from the South China Heavy Rainfall Experiment (SCHeREX): Data Generation and Quality Evaluation

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【作者】 倪允琪崔春光李红莉彭菊香邱学兴张艳霞许晓林高梅接连淑张文华

【Author】 NI Yunqi 1, CUI Chunguang 2, LI Hongli 2, PENG Juxiang 2, QIU Xuexing 3, ZHANG Yanxia 4, XU Xiaolin 5, GAO Mei1, JIE Lianshu 1, and ZHANG Wenhua 1 1 Chinese Academy of Meteorological Sciences, China Meteorological Administration (CMA), Beijing 100081 2 Wuhan Institute of Heavy Rain, CMA, Wuhan 430074 3 Guangzhou Institute of Tropical and Marine Meteorology, CMA, Guangzhou 510080 4 Anhui Meteorological Observatory, Hefei 230031 5 Shanghai Typhoon Institute, CMA, Shanghai 230030

【机构】 Chinese Academy of Meteorological Sciences,China Meteorological Administration (CMA)Wuhan Institute of Heavy Rain,CMAGuangzhou Institute of Tropical and Marine Meteorology,CMAAnhui Meteorological ObservatoryShanghai Typhoon Institute,CMA

【摘要】 In this study, the observational data acquired in the South China Heavy Rainfall Experiment (SCHeREX) from May to July 2008 and 2009 were integrated and assimilated with the US National Oceanic and Atmospheric Administration’s (NOAA) Local Analysis and Prediction System (LAPS; information available online at http://laps.fsl.noaa.gov). A high-resolution mesoscale analysis dataset was then generated at a spatial resolution of 5 km and a temporal resolution of 3 h in four observational areas: South China, Central China, Jianghuai area, and Yangtze River Delta area. The quality of this dataset was evaluated as follows. First, the dataset was qualitatively compared with radar reflectivity and TBB image for specific heavy rainfall events so as to examine its capability in reproduction of mesoscale systems. The results show that the SCHeREX analysis dataset has a strong capability in capturing severe mesoscale convective systems. Second, the mean deviation and root mean square error of the SCHeREX mesoscale analysis fields were analyzed and compared with radiosonde data. The results reveal that the errors of geopotential height, temperature, relative humidity, and wind of the SCHeREX analysis were within the acceptable range of observation errors. In particular, the average error was 45 m for geopotential height between 700 and 925 hPa, 1.0-1.1°C for temperature, less than 20% for relative humidity, 1.5-2.0 m s-1 for wind speed, and 20-25° for wind direction. The above results clearly indicate that the SCHeREX mesoscale analysis dataset is of high quality and sufficient reliability, and it is applicable to refined mesoscale weather studies.

【Abstract】 In this study, the observational data acquired in the South China Heavy Rainfall Experiment (SCHeREX) from May to July 2008 and 2009 were integrated and assimilated with the US National Oceanic and Atmospheric Administration’s (NOAA) Local Analysis and Prediction System (LAPS; information available online at http://laps.fsl.noaa.gov). A high-resolution mesoscale analysis dataset was then generated at a spatial resolution of 5 km and a temporal resolution of 3 h in four observational areas: South China, Central China, Jianghuai area, and Yangtze River Delta area. The quality of this dataset was evaluated as follows. First, the dataset was qualitatively compared with radar reflectivity and TBB image for specific heavy rainfall events so as to examine its capability in reproduction of mesoscale systems. The results show that the SCHeREX analysis dataset has a strong capability in capturing severe mesoscale convective systems. Second, the mean deviation and root mean square error of the SCHeREX mesoscale analysis fields were analyzed and compared with radiosonde data. The results reveal that the errors of geopotential height, temperature, relative humidity, and wind of the SCHeREX analysis were within the acceptable range of observation errors. In particular, the average error was 45 m for geopotential height between 700 and 925 hPa, 1.0–1.1°C for temperature, less than 20% for relative humidity, 1.5–2.0 m s-1 for wind speed, and 20–25° for wind direction. The above results clearly indicate that the SCHeREX mesoscale analysis dataset is of high quality and sufficient reliability, and it is applicable to refined mesoscale weather studies.

【基金】 Supported by the National Key Basic Research and Development (973) Program of China (2004CB418307);Special Public Welfare Research Fund for Meteorological Profession of Ministry of Science and Technology (GYHY200706012 and GYHY200906010);National Natural Science Foundation of China (40930951);Special Project of Scientific Research of Wuhan Institute of Heavy Rain(1011);New Technology Promotion Project of China Meteorological Administration (CMATG2008Z08)
  • 【文献出处】 Acta Meteorologica Sinica ,气象学报(英文版) , 编辑部邮箱 ,2011年04期
  • 【分类号】P458.121.1
  • 【被引频次】9
  • 【下载频次】45
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