Atmospheric rivers associated with summer heavy rainfall over the Yangtze Plain

Atmospheric rivers (ARs) are long, narrow bands of enhanced water vapour transport in the low atmosphere, mainly from the tropics into the midlatitudes. However, it is still unclear how ARs act on different timescales during the boreal summer when frequent heavy precipitation events take place in Ea...

Full description

Bibliographic Details
Main Authors: Yue Ma, Mei Zhao, Huqiang Zhang, Guangtao Dong, Ping Liang
Format: Article
Language:English
Published: CSIRO Publishing 2020-01-01
Series:Journal of Southern Hemisphere Earth Systems Science
Subjects:
Online Access:https://www.publish.csiro.au/es/pdf/ES19028
id doaj-2f598f92b298413a9284d14f388ea953
record_format Article
spelling doaj-2f598f92b298413a9284d14f388ea9532021-05-26T04:33:19ZengCSIRO PublishingJournal of Southern Hemisphere Earth Systems Science2206-58652020-01-017015469ES19028Atmospheric rivers associated with summer heavy rainfall over the Yangtze PlainYue Ma0Mei Zhao1Huqiang Zhang2Guangtao Dong3Ping Liang4Key Laboratory of Cities' Mitigation and Adaptation to Climate Change in Shanghai, Shanghai Regional Climate Center, CMA, Shanghai, China.Bureau of Meteorology, Melbourne, Australia.Bureau of Meteorology, Melbourne, Australia.Key Laboratory of Cities' Mitigation and Adaptation to Climate Change in Shanghai, Shanghai Regional Climate Center, CMA, Shanghai, China.Key Laboratory of Cities' Mitigation and Adaptation to Climate Change in Shanghai, Shanghai Regional Climate Center, CMA, Shanghai, China; and The Institute of Climate and Application Research, Nanjing University of Information Science and Technology, Nanjing, China; and Corresponding author. Email: liangping1107@163.comAtmospheric rivers (ARs) are long, narrow bands of enhanced water vapour transport in the low atmosphere, mainly from the tropics into the midlatitudes. However, it is still unclear how ARs act on different timescales during the boreal summer when frequent heavy precipitation events take place in East Asia, often resulting in severe flood that impacts property and human lives. In this study, we investigated climatological ARs, and their evolution on both synoptic and subseasonal timescales, associated with heavy rainfall events over the Yangtze Plain in China. Furthermore, their predictability was assessed by examining hindcast skills from an operational coupled seasonal forecast system of the Australian Bureau of Meteorology named ACCESS-S1. Results showed that ARs embedded within the South Asian monsoon and Somali cross-equatorial flow provide a favourable background for steady moisture supply of summer rainfall into East Asia. We call this favourable background a ‘climatological East Asian AR', which has close connections with seasonal cycles and climatological intraseasonal oscillation of rainfall in the Yangtze Plain during its Meiyu season. The East Asian AR was also influenced by anomalous anticyclonic circulations over the tropical West Pacific when heavy rainfall events occurred over the Yangtze Plain. Different from orography-induced precipitation, ARs that led to heavy rainfall over the Yangtze Plain were linked with the intrusions of cold air from the north. The major source of ARs responsible for heavy precipitation events over the Yangtze Plain appeared to originate from the tropical West Pacific on both synoptic and subseasonal timescales. In 23-year hindcasts for May-June-July the current model, ACCESS-S1, had skillful rainfall forecasts at a lead time of 0 month, but the skill degraded significantly with longer lead times. Nevertheless, the model showed skills in predicting the variations of low-level moisture transport affecting the Yangtze River at longer lead time, suggesting that the ARs influencing summer monsoon rainfall in the East Asian region are likely to be more predictable than rainfall itself. There is potential in using AR predictions from the coupled forecast system to guide rainfall forecasts in the East Asian summer season at longer lead time, which can contribute to disaster prevention and reduction in East Asia.https://www.publish.csiro.au/es/pdf/ES19028atmospheric riversEast Asiaheavy rainfallintraseasonal oscillationmonsoonpredictability
collection DOAJ
language English
format Article
sources DOAJ
author Yue Ma
Mei Zhao
Huqiang Zhang
Guangtao Dong
Ping Liang
spellingShingle Yue Ma
Mei Zhao
Huqiang Zhang
Guangtao Dong
Ping Liang
Atmospheric rivers associated with summer heavy rainfall over the Yangtze Plain
Journal of Southern Hemisphere Earth Systems Science
atmospheric rivers
East Asia
heavy rainfall
intraseasonal oscillation
monsoon
predictability
author_facet Yue Ma
Mei Zhao
Huqiang Zhang
Guangtao Dong
Ping Liang
author_sort Yue Ma
title Atmospheric rivers associated with summer heavy rainfall over the Yangtze Plain
title_short Atmospheric rivers associated with summer heavy rainfall over the Yangtze Plain
title_full Atmospheric rivers associated with summer heavy rainfall over the Yangtze Plain
title_fullStr Atmospheric rivers associated with summer heavy rainfall over the Yangtze Plain
title_full_unstemmed Atmospheric rivers associated with summer heavy rainfall over the Yangtze Plain
title_sort atmospheric rivers associated with summer heavy rainfall over the yangtze plain
publisher CSIRO Publishing
series Journal of Southern Hemisphere Earth Systems Science
issn 2206-5865
publishDate 2020-01-01
description Atmospheric rivers (ARs) are long, narrow bands of enhanced water vapour transport in the low atmosphere, mainly from the tropics into the midlatitudes. However, it is still unclear how ARs act on different timescales during the boreal summer when frequent heavy precipitation events take place in East Asia, often resulting in severe flood that impacts property and human lives. In this study, we investigated climatological ARs, and their evolution on both synoptic and subseasonal timescales, associated with heavy rainfall events over the Yangtze Plain in China. Furthermore, their predictability was assessed by examining hindcast skills from an operational coupled seasonal forecast system of the Australian Bureau of Meteorology named ACCESS-S1. Results showed that ARs embedded within the South Asian monsoon and Somali cross-equatorial flow provide a favourable background for steady moisture supply of summer rainfall into East Asia. We call this favourable background a ‘climatological East Asian AR', which has close connections with seasonal cycles and climatological intraseasonal oscillation of rainfall in the Yangtze Plain during its Meiyu season. The East Asian AR was also influenced by anomalous anticyclonic circulations over the tropical West Pacific when heavy rainfall events occurred over the Yangtze Plain. Different from orography-induced precipitation, ARs that led to heavy rainfall over the Yangtze Plain were linked with the intrusions of cold air from the north. The major source of ARs responsible for heavy precipitation events over the Yangtze Plain appeared to originate from the tropical West Pacific on both synoptic and subseasonal timescales. In 23-year hindcasts for May-June-July the current model, ACCESS-S1, had skillful rainfall forecasts at a lead time of 0 month, but the skill degraded significantly with longer lead times. Nevertheless, the model showed skills in predicting the variations of low-level moisture transport affecting the Yangtze River at longer lead time, suggesting that the ARs influencing summer monsoon rainfall in the East Asian region are likely to be more predictable than rainfall itself. There is potential in using AR predictions from the coupled forecast system to guide rainfall forecasts in the East Asian summer season at longer lead time, which can contribute to disaster prevention and reduction in East Asia.
topic atmospheric rivers
East Asia
heavy rainfall
intraseasonal oscillation
monsoon
predictability
url https://www.publish.csiro.au/es/pdf/ES19028
work_keys_str_mv AT yuema atmosphericriversassociatedwithsummerheavyrainfallovertheyangtzeplain
AT meizhao atmosphericriversassociatedwithsummerheavyrainfallovertheyangtzeplain
AT huqiangzhang atmosphericriversassociatedwithsummerheavyrainfallovertheyangtzeplain
AT guangtaodong atmosphericriversassociatedwithsummerheavyrainfallovertheyangtzeplain
AT pingliang atmosphericriversassociatedwithsummerheavyrainfallovertheyangtzeplain
_version_ 1721426497230602240