Simulation of the Dynamic and Thermodynamic Structure and Microphysical Evolution of a Squall Line in South China
A squall line that occurred in south China on 31 March 2014 was simulated with the Weather Research and Forecasting model. The microphysical processes had an important influence on the dynamic and thermodynamic structure of the squall line. The process of water vapor condensation (PCC+) provided hea...
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doaj-f26352b2e2444e0792b4e8e0881c283f2021-09-25T23:43:52ZengMDPI AGAtmosphere2073-44332021-09-01121187118710.3390/atmos12091187Simulation of the Dynamic and Thermodynamic Structure and Microphysical Evolution of a Squall Line in South ChinaJingyuan Li0Yang Su1Fan Ping2Jiahui Tang3Laboratory of Cloud-Precipitation Physics and Severe Storms (LACS), Institute of Atmospheric Physics, Chinese Academy of Sciences, Beijing 100029, ChinaLaboratory of Cloud-Precipitation Physics and Severe Storms (LACS), Institute of Atmospheric Physics, Chinese Academy of Sciences, Beijing 100029, ChinaLaboratory of Cloud-Precipitation Physics and Severe Storms (LACS), Institute of Atmospheric Physics, Chinese Academy of Sciences, Beijing 100029, ChinaCollege of Atmospheric Sciences, Nanjing University of Information Science and Technology, Nanjing 210044, ChinaA squall line that occurred in south China on 31 March 2014 was simulated with the Weather Research and Forecasting model. The microphysical processes had an important influence on the dynamic and thermodynamic structure of the squall line. The process of water vapor condensation (PCC+) provided heat for the ascending movement inside the squall line. The forward movement of the heating area of PCC+ was an important reason for the squall line’s tilting. The convergence of the outflow of the cold pool and the warm and wet air constantly triggered new convection cells in the front of the cold pool, which made the squall line propagate forwards. The cooling process of graupel melting into rain corresponded closely with the rear inflow jet. During the mature period of the squall line, the effect of cooling strengthened the rear inflow jet. This promoted low-layer inflow and a convective ascending motion, thus further promoting the development of the squall line system. During the decay period, the strong backflow center of the stratospheric region cut off the forward inflow of the middle and low layer towards the high layer, and cooperated with the cold pool to cut off the warm and wet air transport of the low layer, making the system decline gradually.https://www.mdpi.com/2073-4433/12/9/1187squall linecold poolrear inflow jetmicrophysical processes |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Jingyuan Li Yang Su Fan Ping Jiahui Tang |
spellingShingle |
Jingyuan Li Yang Su Fan Ping Jiahui Tang Simulation of the Dynamic and Thermodynamic Structure and Microphysical Evolution of a Squall Line in South China Atmosphere squall line cold pool rear inflow jet microphysical processes |
author_facet |
Jingyuan Li Yang Su Fan Ping Jiahui Tang |
author_sort |
Jingyuan Li |
title |
Simulation of the Dynamic and Thermodynamic Structure and Microphysical Evolution of a Squall Line in South China |
title_short |
Simulation of the Dynamic and Thermodynamic Structure and Microphysical Evolution of a Squall Line in South China |
title_full |
Simulation of the Dynamic and Thermodynamic Structure and Microphysical Evolution of a Squall Line in South China |
title_fullStr |
Simulation of the Dynamic and Thermodynamic Structure and Microphysical Evolution of a Squall Line in South China |
title_full_unstemmed |
Simulation of the Dynamic and Thermodynamic Structure and Microphysical Evolution of a Squall Line in South China |
title_sort |
simulation of the dynamic and thermodynamic structure and microphysical evolution of a squall line in south china |
publisher |
MDPI AG |
series |
Atmosphere |
issn |
2073-4433 |
publishDate |
2021-09-01 |
description |
A squall line that occurred in south China on 31 March 2014 was simulated with the Weather Research and Forecasting model. The microphysical processes had an important influence on the dynamic and thermodynamic structure of the squall line. The process of water vapor condensation (PCC+) provided heat for the ascending movement inside the squall line. The forward movement of the heating area of PCC+ was an important reason for the squall line’s tilting. The convergence of the outflow of the cold pool and the warm and wet air constantly triggered new convection cells in the front of the cold pool, which made the squall line propagate forwards. The cooling process of graupel melting into rain corresponded closely with the rear inflow jet. During the mature period of the squall line, the effect of cooling strengthened the rear inflow jet. This promoted low-layer inflow and a convective ascending motion, thus further promoting the development of the squall line system. During the decay period, the strong backflow center of the stratospheric region cut off the forward inflow of the middle and low layer towards the high layer, and cooperated with the cold pool to cut off the warm and wet air transport of the low layer, making the system decline gradually. |
topic |
squall line cold pool rear inflow jet microphysical processes |
url |
https://www.mdpi.com/2073-4433/12/9/1187 |
work_keys_str_mv |
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1717368235578359808 |