On the Key Dynamical Processes Supporting the 21.7 Zhengzhou Record-breaking Hourly Rainfall in China

被引:2
|
作者
Peng WEI [1 ]
Xin XU [1 ]
Ming XUE [1 ,2 ]
Chenyue ZHANG [1 ]
Yuan WANG [1 ]
Kun ZHAO [1 ]
Ang ZHOU [1 ]
Shushi ZHANG [3 ]
Kefeng ZHU [3 ]
机构
[1] Key Laboratory of Mesoscale Severe Weather/Ministry of Education and School of Atmospheric Sciences,Nanjing University
[2] Center for Analysis and Prediction of Storms and School of Meteorology, University of Oklahoma
[3] Key Laboratory of Transportation Meteorology of China Meteorological Administration,Nanjing Joint Institute for Atmospheric Sciences
基金
美国国家科学基金会;
关键词
D O I
暂无
中图分类号
P426.62 [液态降水(降雨)];
学科分类号
摘要
An extremely heavy rainfall event occurred in Zhengzhou, China, on 20 July 2021 and produced an hourly rainfall rate of 201.9 mm, which broke the station record for mainland China. Based on radar observations and a convection-permitting simulation using the WRF-ARW model, this paper investigates the multiscale processes, especially those at the mesoscale,that support the extreme observed hourly rainfall. Results show that the extreme rainfall occurred in an environment characteristic of warm-sector heavy rainfall, with abundant warm moist air transported from the ocean by an abnormally northward-displaced western Pacific subtropical high and Typhoon In-Fa(2021). However, rather than through back building and echo training of convective cells often found in warm-sector heavy rainfall events, this extreme hourly rainfall event was caused by a single, quasi-stationary storm in Zhengzhou. Scale separation analysis reveals that the extreme-rainproducing storm was supported and maintained by the dynamic lifting of low-level converging flows from the north, south,and east of the storm. The low-level northerly flow originated from a mesoscale barrier jet on the eastern slope of the Taihang Mountain due to terrain blocking of large-scale easterly flows, which reached an overall balance with the southerly winds in association with a low-level meso-β-scale vortex located to the west of Zhengzhou. The large-scale easterly inflows that fed the deep convection via transport of thermodynamically unstable air into the storm prevented the eastward propagation of the weak, shallow cold pool. As a result, the convective storm was nearly stationary over Zhengzhou,resulting in record-breaking hourly precipitation.
引用
收藏
页码:337 / 349
页数:13
相关论文
共 50 条
  • [21] The North China record-breaking rainfall in July 2021: the atmospheric influential factors and precursory signal
    Ye, Jiaxin
    Zhao, Ping
    Wen, Zhiping
    Li, Jiao
    ENVIRONMENTAL RESEARCH LETTERS, 2024, 19 (12):
  • [22] Tropical intraseasonal oscillations as key driver and source of predictability for the 2022 Pakistan record-breaking rainfall event
    Xie, Jinhui
    Hsu, Pang-Chi
    Lee, June-Yi
    Wang, Lu
    Turner, Andrew G.
    NPJ CLIMATE AND ATMOSPHERIC SCIENCE, 2024, 7 (01):
  • [23] China builds record-breaking magnet - but it comes with a cost
    Conroy, Gemma
    NATURE, 2024, 634 (8036) : 1030 - 1030
  • [24] Record-breaking daily rainfall in the United Kingdom and the role of anthropogenic forcings
    Christidis, Nikolaos
    McCarthy, Mark
    Cotterill, Daniel
    Stott, Peter A.
    ATMOSPHERIC SCIENCE LETTERS, 2021, 22 (07):
  • [25] Formation Mechanisms of the "5•31"Record-Breaking Extreme Heavy Rainfall Process in South China in 2021
    Chen, Fangli
    Li, Huiqi
    Hu, Sheng
    Jiang, Shuai
    Li, Jiaojiao
    Wu, Ruoting
    ATMOSPHERE, 2023, 14 (05)
  • [26] Meridional circulation dominates the record-breaking "Dragon Boat Water" rainfall over south China in 2022
    Cheng, Jianbo
    Zhao, Yuheng
    Zhi, Rong
    Feng, Guolin
    FRONTIERS IN EARTH SCIENCE, 2023, 10
  • [27] Nocturnal Convection Initiation over Inland South China during a Record-Breaking Heavy Rainfall Event
    Zhang, Sijia
    Liang, Zhaoming
    Wang, Donghai
    Chen, Guixing
    MONTHLY WEATHER REVIEW, 2022, 150 (11) : 2935 - 2957
  • [28] Contribution of local and remote anthropogenic aerosols to a record-breaking torrential rainfall event in Guangdong Province, China
    Liu, Zhen
    Ming, Yi
    Zhao, Chun
    Lau, Ngar Cheung
    Guo, Jianping
    Bollasina, Massimo
    Yim, Steve Hung Lam
    ATMOSPHERIC CHEMISTRY AND PHYSICS, 2020, 20 (01) : 223 - 241
  • [29] Moisture Origins and Transport Processes for the 2020 Yangtze River Valley Record-Breaking Mei-yu Rainfall
    Lixia ZHANG
    Dan ZHAO
    Tianjun ZHOU
    Dongdong PENG
    Chan XIAO
    Advances in Atmospheric Sciences, 2021, 38 (12) : 2125 - 2136
  • [30] Moisture Origins and Transport Processes for the 2020 Yangtze River Valley Record-Breaking Mei-yu Rainfall
    Lixia Zhang
    Dan Zhao
    Tianjun Zhou
    Dongdong Peng
    Chan Xiao
    Advances in Atmospheric Sciences, 2021, 38 : 2125 - 2136