Citation: | Chen Xunlai, Xu Ting, Wang Rui, et al. Fine observation characteristics and causes of "9·7" extreme heavy rainstorm over Pearl River Delta, China. J Appl Meteor Sci, 2024, 35(1): 1-16. DOI: 10.11898/1001-7313.20240101. |
[1] |
He L F, Chen T, Kong Q. A review of studies on prefrontal torrential rain in South China. J Appl Meteor Sci, 2016, 27(5): 559-569. doi: 10.11898/1001-7313.20160505
|
[2] |
Zhai P M, Li L, Zhou B Q, et al. Progress on mechanism and prediction methods for persistent extreme precipitation in the Yangtze-Huai River Valley. J Appl Meteor Sci, 2016, 27(5): 631-640. doi: 10.11898/1001-7313.20160511
|
[3] |
Wu H Y, Zou Y, Liu W. Quantitative assessment of regional heavy rainfall process in Guangdong and its climatological characteristics. J Appl Meteor Sci, 2019, 30(2): 233-244. doi: 10.11898/1001-7313.20190210
|
[4] |
Wang Y J, Zhou B T, Qin D H, et al. Changes in mean and extreme temperature and precipitation over the arid region of northwestern China: Observation and projection. Adv Atmos Sci, 2017, 34(3): 289-305. doi: 10.1007/s00376-016-6160-5
|
[5] |
Liu F F, Zheng Y G, Luo Q, et al. Comparison of characteristics of light precipitation and short-time heavy precipitation over Beijing, Tianjin, Hebei and neighbouring areas. J Appl Meteor Sci, 2023, 34(5): 619-629. doi: 10.11898/1001-7313.20230510
|
[6] |
Chen Y, Sun J, Xu J, et al. Analysis and thinking on the extremes of the 21 July 2012 torrential rain in Beijing part Ⅰ: Observation and thinking. Meteor Mon, 2012, 38(10): 1255-1266.
|
[7] |
Bao X H, Xia R D, Luo Y L, et al. Comparative analysis on meteorological and hydrological rain gauge observations of the extreme heavy rainfall event in Henan Province during July 2021. J Appl Meteor Sci, 2022, 33(6): 668-681. doi: 10.11898/1001-7313.20220603
|
[8] |
Tian F Y, Zheng Y G, Zhang X L, et al. Structure, triggering and maintenance mechanism of convective systems during the Guangzhou extreme rainfall on 7 May 2017. Meteor Mon, 2018, 44(4): 469-484.
|
[9] |
Chyi D, He L F, Wang X M, et al. Fine observation characteristics and thermodynamic mechanisms of extreme heavy rainfall in Henan on 20 July 2021. J Appl Meteor Sci, 2022, 33(1): 1-15. doi: 10.11898/1001-7313.20220101
|
[10] |
Duan T, Chen Q L, Liao Y J. Analysis of "21. 7" extreme rainstorm formation process and disaster mechanism in Zhengzhou. J Meteor Sci, 2022, 42(2): 152-161.
|
[11] |
Bao M. The statistical analysis of the persistent heavy rain in the last 50 years over China and their backgrounds on the large scale circulation. Chinese J Atmos Sci, 2007, 31(5): 779-792.
|
[12] |
Sun J C, Guan Z Y, Li M G, et al. Anomalous circulation patterns in association with two types of regional daily precipitation extremes over South China from July to October. Acta Meteor Sinica, 2019, 77(1): 43-57.
|
[13] |
Fu J L, Ma X K, Chen T, et al. Characteristics and synoptic mechanism of the July 2016 extreme precipitation event in North China. Meteor Mon, 2017, 43(5): 528-539.
|
[14] |
Fang C, Mao D Y, Zhang X W, et al. Analysis on the mesoscale convective conditions and characteristics of an extreme torrential rain in Beijing on 21 July 2012. Meteor Mon, 2012, 38(10): 1278-1287.
|
[15] |
Yang S N, Lu Y X, Zhang F H, et al. Analysis on causes of persistent heavy rainfall brought by tropical storm Ewiniar. Meteor Mon, 2021, 47(1): 106-116.
|
[16] |
Lin L X, Liang Q Q, Huang Z. Analysis of circulation pattern of rapidly intensified offshore tropical cyclones of South China. Meteor Mon, 2006, 32(2): 14-18.
|
[17] |
Chen L S, Ding Y H. Introduction to Typhoons in the Western Pacific. Beijing: Science Press, 1979.
|
[18] |
Lin W, Lin C C, Li B L, et al. Rainfall intensity and raindrop spectrum for different parts in landing Typhoon Matmo. J Appl Meteor Sci, 2016, 27(2): 239-248. doi: 10.11898/1001-7313.20160212
|
[19] |
Huang Y Y, Meng W G, Feng Y R, et al. Problems in asymmetry and sustainability of landfalling typhoon precipitation over South China. Meteor Mon, 2023, 49(4): 385-399.
|
[20] |
Mao Z Y, Fu D H, Huang Y B, et al. Peripheral cloud system structure and precipitation characteristics of Typhoon Bebinca(1816). J Appl Meteor Sci, 2022, 33(5): 604-616. doi: 10.11898/1001-7313.20220508
|
[21] |
Yan L, Zhou Y S, Wang Y Q. Analysis on different characteristics and causes of precipitation distribution during the landing of Typhoon "Soudelor"(1513) and Typhoon "Matmo" (1410) with similar tracks. Chinese J Atmos Sci, 2019, 43(2): 297-310.
|
[22] |
Lu S, Wang L J, Guan Z Y, et al. Comparison of impacts of low-latitude monsoon surge on the enhanced rainstorm from landing typhoons Durian and Bilis. Trans Atmos Sci, 2012, 35(2): 175-185.
|
[23] |
He L F, Chen S, Guo Y Q. Observation characteristics and synoptic mechanisms of Typhoon Lekima extreme rainfall in 2019. J Appl Meteor Sci, 2020, 31(5): 513-526. doi: 10.11898/1001-7313.20200501
|
[24] |
Qin H, Zheng F Q, Wu L Q. The interaction between intensity and rainfall of Typhoon Rammasun(1409). J Appl Meteor Sci, 2022, 33(4): 477-488. doi: 10.11898/1001-7313.20220408
|
[25] |
Ye C Z, Li Y Y. A numerical study of the characteristics of strong moisture transport as a result of the interaction of tropical storm Bilis with the South China Sea monsoon. Acta Meteor Sinica, 2011, 69(3): 496-507.
|
[26] |
Cheng Z Q, Lin L X, Yang G J, et al. Rapid intensification and associated large-scale circulation of super Typhoon Rammasun in 2014. J Appl Meteor Sci, 2017, 28(3): 318-326. doi: 10.11898/1001-7313.20170306
|
[27] |
Liu S Y, Zheng Y G, Tao Z Y. The analysis of the relationship between pulse of LLJ and heavy rain using wind profiler data. J Trop Meteor, 2003, 19(3): 285-290.
|
[28] |
McAnelly R L, Cotton W R. Meso-β-scale characteristics of an episode of meso-α-scale convective complexes. Mon Wea Rev, 1986, 114(9): 1740-1770. doi: 10.1175/1520-0493(1986)114<1740:MSCOAE>2.0.CO;2
|
[29] |
Doswell C A III, Brooks H E, Maddox R A. Flash flood forecasting: An ingredients-based methodology. Wea Forecasting, 1996, 11(4): 560-581. doi: 10.1175/1520-0434(1996)011<0560:FFFAIB>2.0.CO;2
|
[30] |
Yu X D, Zhou X G, Wang X M. The advances in the nowcasting techniques on thunderstorms and severe convection. Acta Meteor Sinica, 2012, 70(3): 311-337.
|
[31] |
Zhu H F, Wang D Y, Yang Z X, et al. Analysis of raindrop spectrum characteristics for a heavy rain event caused by Typhoon Haikui(No. 1211) in Anhui. Torrential Rain Disasters, 2020, 39(2): 167-175.
|
[32] |
Yu X D. Nowcasting thinking and method of flash heavy rain. Torrential Rain Disasters, 2013, 32(3): 202-209.
|
[33] |
Zheng Y G, Zhou K H, Sheng J, et al. Advances in techniques of monitoring, forecasting and warning of severe convective weather. J Appl Meteor Sci, 2015, 26(6): 641-657. doi: 10.11898/1001-7313.20150601
|
[34] |
Gao Y, Cai M, Cao Z Q, et al. Environmental conditions and cloud macro and micro features of "21·7" extreme heavy rainfall in Henan Province. J Appl Meteor Sci, 2022, 33(6): 682-695. doi: 10.11898/1001-7313.20220604
|
[35] |
Chen G, Zhao K, Lu Y, et al. Variability of microphysical characteristics in the "21·7" Henan extremely heavy rainfall event. Sci China(Earth Sci), 2022, 65(10): 1861-1878.
|
[36] |
Zhang Z, Qi Y C, Li D H, et al. Raindrop size distribution characteristics of the extreme rainstorm event in Zhengzhou 20 July, 2021 and its impacts on radar quantitative precipitation estimation. Chinese J Atmos Sci, 2022, 46(4): 1002-1016.
|
[37] |
Bringi V N, Chandrasekar V. Polarimetric Doppler Weather Radar. Cambridge: Cambridge University Press, 2001.
|
[38] |
Ma Y, Ni G H, Chandra C V, et al. Statistical characteristics of raindrop size distribution during rainy seasons in the Beijing urban area and implications for radar rainfall estimation. Hydrol Earth Syst Sci, 2019, 23(10): 4153-4170.
|
[39] |
Gou A N, Wu C H, Wang Y J, et al. Meso and small-scale characteristics of heavy rain during Meiyu period in Hubei based on wind profile radar. J Arid Meteor, 2022, 40(1): 84-94.
|
[40] |
Liao F, Deng H, Hou L. The effect assessment of wind field inversion based on WPR in precipitation. J Trop Meteor, 2016, 32(5): 588-595.
|