4.7 Article

Aerosol forcing of extreme summer drought over North China

期刊

ENVIRONMENTAL RESEARCH LETTERS
卷 12, 期 3, 页码 -

出版社

IOP PUBLISHING LTD
DOI: 10.1088/1748-9326/aa5fb3

关键词

drought; anthropogenic forcing; attribution; climate change

资金

  1. National Natural Science Foundation of China [41305072, 41675076, 41330423]
  2. Special Fund for Public Welfare Industry (meteorology) [GYHY201506012]
  3. UK-China Research & Innovation Partnership through the Met Office Climate Science for Service Partnership (CSSP) China as part of the Newton Fund

向作者/读者索取更多资源

The frequency of extreme summer drought has been increasing in North China during the past sixty years, which has caused serious water shortages. It remains unclear whether anthropogenic forcing has contributed to the increasing extreme droughts. Using the National Centers for Environmental Prediction and the National Center for Atmospheric Research (NCEP/NCAR) re-analysis data and Coupled Model Intercomparison Project Phase 5 (CMIP5) model simulations with various combinations of historical forcings, the authors investigated the driving mechanism behind the observed changes. Metrological drought is usually measured by precipitation anomalies, which show lower fidelity in current climate models compared to largescale circulation patterns. Based on NCEP/NCAR re-analysis, a linear relationship is firstly established between the weakest regional average 850 hPa southerly winds and extreme summer drought. This meridional winds index (MWI) is then used as a proxy for attribution of extreme North China drought using CMIP5 outputs. Examination of the CMIP5 simulations reveals that the probability of the extreme summer droughts with the first percentile of MWI for 1850-2004 under anthropogenic forcing has increased by 100%, on average, relative to a pre-industrial control run. The more frequent occurrence of extremely weak MWIs or drought over North China is ascribed from weakened climate and East Asian summer monsoon (EASM) circulation due to the direct cooling effect from increased aerosol.

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