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COMPARISONS BETWEEN DOPPLER AND SIMULATED FEATURES OF A SUPERCELL

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【作者】 胡胜于华英胡东明蔡安安伍志方

【Author】 HU Sheng 1, YU Hua-ying 2, HU Dong-ming 1, CAI An-an 1, WU Zhi-fang1 (1. Guangzhou Central Meteorological Observatory, Guangzhou 510080 China; 2. Nanjing University of Information Science & Technology, Nanjing 210044 China)

【机构】 Guangzhou Central Meteorological ObservatoryNanjing University of Information Science & TechnologyGuangzhou Central Meteorological Observatory Guangzhou 510080 ChinaNanjing 210044 ChinaGuangzhou 510080 China

【摘要】 Firstly, typical features of a supercell, which occurred in Guangzhou on August 11, 2004, are discussed by using the new generation weather radar data. V-notch, finger-echo, weak echo region, overhang and echo-wall are observed from reflectivity products. A vertical cross section of the radial velocity is made along the direction of the low-level inflow and across the maximum reflectivity core, which displays a part of strong updraft and downdraft. Secondly, a 3-D convective storm model is used to simulate the supercell. The maximum reflectivity and the core thickness of the simulated radar echo are 75 dBz and 14km, respectively. These values are more than the counterparts that are detected by radar. The reason is that attenuation is not calculated in the model. The wind field structure is also given when the storm is the strongest. Divergence, caused by thunderstorm outflow, is in the low level. In the middle and high level, convergence is dominant, but the plume is not simulated at the top. Finally, the evolution of the simulated vertical motion is documented. The interaction between the environmental wind and the updraft, which is formed by the convergence on the ground at the beginning, makes the storm stronger. Then, downdraft occurs and grows. When it becomes dominant, the supercell collapses.

【Abstract】 Firstly, typical features of a supercell, which occurred in Guangzhou on August 11, 2004, are discussed by using the new generation weather radar data. V-notch, finger-echo, weak echo region, overhang and echo-wall are observed from reflectivity products. A vertical cross section of the radial velocity is made along the direction of the low-level inflow and across the maximum reflectivity core, which displays a part of strong updraft and downdraft. Secondly, a 3-D convective storm model is used to simulate the supercell. The maximum reflectivity and the core thickness of the simulated radar echo are 75 dBz and 14km, respectively. These values are more than the counterparts that are detected by radar. The reason is that attenuation is not calculated in the model. The wind field structure is also given when the storm is the strongest. Divergence, caused by thunderstorm outflow, is in the low level. In the middle and high level, convergence is dominant, but the plume is not simulated at the top. Finally, the evolution of the simulated vertical motion is documented. The interaction between the environmental wind and the updraft, which is formed by the convergence on the ground at the beginning, makes the storm stronger. Then, downdraft occurs and grows. When it becomes dominant, the supercell collapses.

【基金】 Scientific Plan Project for Guangdong Province (2004B32601007);Key Scientific Project forGuangzhou (06A13043333)
  • 【文献出处】 Journal of Tropical Meteorology ,热带气象学报(英文版) , 编辑部邮箱 ,2007年01期
  • 【分类号】P444
  • 【下载频次】25
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