Amplification of Coupled Hot‐Dry Extremes Over Eastern Monsoon China

Author:

Zhang Xinxin1,Gu Xihui12345ORCID,Slater Louise J.6ORCID,Dembélé Moctar7ORCID,Tosunoğlu Fatih8,Guan Yansong1,Liu Jianyu9,Zhang Xiang10,Kong Dongdong111,Xie Fenghua111,Tang Xiongpeng1213

Affiliation:

1. Department of Atmospheric Science School of Environmental Studies China University of Geosciences Wuhan China

2. Institute of Arid Meteorology China Meteorological Administration Lanzhou China

3. The National Key Laboratory of Water Disaster Prevention Nanjing Hydraulic Research Institute Nanjing China

4. Key Lab of Basin Water Resource and Eco‐environmental Science in Hubei Province Wuhan China

5. Key Laboratory of Meteorological Disaster Ministry of Education & Collaborative Innovation Center on Forecast and Evaluation of Meteorological Disasters Nanjing University of Information Science & Technology Nanjing China

6. School of Geography and the Environment University of Oxford Oxford UK

7. International Water Management Institute (IWMI) Accra Ghana

8. Department of Civil Engineering Erzurum Technical University Erzurum Turkey

9. Laboratory of Critical Zone Evolution School of Geography and Information Engineering China University of Geosciences Wuhan China

10. National Engineering Research Center of Geographic Information System School of Geography and Information Engineering China University of Geosciences Wuhan China

11. Centre for Severe Weather and Climate and Hydro‐geological Hazards Wuhan China

12. Guangdong‐Hong Kong Joint Laboratory for Water Security Beijing Normal University at Zhuhai Zhuhai China

13. Water Security Research Institute Beijing Normal University at Zhuhai Zhuhai China

Abstract

AbstractHigh air temperatures and low atmospheric humidity can result in severe disasters such as flash droughts in regions characterized by high humidity (monsoon regions). However, it remains unclear whether responses of hot extremes to warming temperature are amplified on dry days as well as the response of dry extremes on hot days. Here, taking eastern monsoon China (EMC) as a typical monsoon region, we find a faster increase in air temperature on drier summer days, and a faster decrease in atmospheric humidity on hotter days, indicating “hotter days get drier” and “drier days get hotter” (i.e., coupling hotter and drier extremes), especially in southern EMC. The southern EMC is also a hotspot where the coupling hot‐dry extremes has become significantly stronger during the past six decades. The stronger hot‐dry coupling in southern EMC is associated with anomalies in large‐scale circulations, such as reduced total cloud cover, abnormal anticyclones in the upper atmosphere, intense descending motion, and strong moisture divergence over this region. Land‐atmosphere feedback enhance the hot‐dry coupling in southern EMC by increasing land surface dryness (seen as a decrease in the evaporation fraction). The decreasing evaporation fraction is associated with drying surface soil moisture, controlled by decreases in pre‐summer 1‐m soil moisture and summer‐mean precipitation. Given hot extremes are projected to increase and atmospheric humidity is predicted to decrease in the future, it is very likely that increasing hot‐dry days and associated disasters will be witnessed in monsoon regions, which should be mitigated against by adopting adaptive measures.

Publisher

American Geophysical Union (AGU)

Subject

Earth and Planetary Sciences (miscellaneous),General Environmental Science

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