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Water Cycle and Microphysical Processes Associated with a Mesoscale Convective Vortex System in the Dabie Mountain Area

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【作者】 汪小康倪允琪徐文慧顾春利邱学兴

【Author】 WANG Xiaokang 1,2,NI Yunqi 3,XU Wenhui 1,GU Chunli 4,and QIU Xuexing 5 1 School of Atmospheric Sciences,Nanjing University,Nanjing 210093 2 Institute of Heavy Rain,China Meteorological Administration,Wuhan 430074 3 State Key Lab of Severe Weather,Chinese Academy of Meteorological Sciences,Beijing 100081 4 Beijing Institute of Applied Meteorology,Beijing 100029 5 Anhui Meteorological Observatory,Hefei 230031

【机构】 School of Atmospheric Sciences,Nanjing UniversityInstitute of Heavy Rain,China Meteorological AdministrationState Key Lab of Severe Weather,Chinese Academy of Meteorological SciencesBeijing Institute of Applied MeteorologyAnhui Meteorological Observatory

【摘要】 The water vapor budget and the cloud microphysical processes associated with a heavy rainfall system in the Dabie Mountain area in June 2008 were analyzed using mesoscale reanalysis data(grid resolution 0.03 × 0.03,22 vertical layers,1-h intervals),generated by amalgamating the local analysis and prediction system(LAPS).The contribution of each term in the water vapor budget formula to precipitation was evaluated.The characteristics of water vapor budget and water substances in various phase states were evaluated and their differences in heavy and weak rainfall areas were compared.The precipitation calculated from the total water vapor budget accounted for 77% of actual precipitation;surface evaporation is another important source of water vapor.Water vapor within the domain of interest mainly came from the lower level along the southern boundary and the lower-middle level along the western boundary.This altitude difference for water vapor flux was caused by different weather systems.The decrease of local water vapor in the middle-lower layer in the troposphere during the system development stage also contributed to precipitation.The strength and the layer thickness of water vapor convergence and the content of various water substances in the heavy rainfall areas were obviously larger than in the weak rainfall areas.The peak values of lower-level water vapor convergence,local water vapor income,and the concentration of cloud ice all preceded the heaviest surface rainfall by a few hours.

【Abstract】 The water vapor budget and the cloud microphysical processes associated with a heavy rainfall system in the Dabie Mountain area in June 2008 were analyzed using mesoscale reanalysis data(grid resolution 0.03 × 0.03,22 vertical layers,1-h intervals),generated by amalgamating the local analysis and prediction system(LAPS).The contribution of each term in the water vapor budget formula to precipitation was evaluated.The characteristics of water vapor budget and water substances in various phase states were evaluated and their differences in heavy and weak rainfall areas were compared.The precipitation calculated from the total water vapor budget accounted for 77% of actual precipitation;surface evaporation is another important source of water vapor.Water vapor within the domain of interest mainly came from the lower level along the southern boundary and the lower-middle level along the western boundary.This altitude difference for water vapor flux was caused by different weather systems.The decrease of local water vapor in the middle-lower layer in the troposphere during the system development stage also contributed to precipitation.The strength and the layer thickness of water vapor convergence and the content of various water substances in the heavy rainfall areas were obviously larger than in the weak rainfall areas.The peak values of lower-level water vapor convergence,local water vapor income,and the concentration of cloud ice all preceded the heaviest surface rainfall by a few hours.

【基金】 supported by the the State’s “973” project“Research on Theories and Methods of Monitoring and Predicting of Heavy Rainfall in South China” (Grant No.2004CB418300);the National Natural Science Foundation of China “Cloud-Resolving Modeling and Observational Studies of Heavy-Rain-Producing Mesoscale Convective Systems (HRPMCSs) in the Yangtze River valley”(Grant No. 40930951)
  • 【文献出处】 Advances in Atmospheric Sciences ,大气科学进展(英文版) , 编辑部邮箱 ,2011年06期
  • 【分类号】P458.121.1
  • 【被引频次】3
  • 【下载频次】39
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