Features of Extreme Precipitation at Progress Station, Antarctica

Author:

Yu Lejiang1,Yang Qinghua2,Vihma Timo3,Jagovkina Svetlana4,Liu Jiping5,Sun Qizhen6,Li Yubin7

Affiliation:

1. State Oceanic Administration Key Laboratory for Polar Science, Polar Research Institute of China, Shanghai, China

2. Guangdong Province Key Laboratory for Climate Change and Natural Disaster Studies, and School of Atmospheric Sciences, Sun Yat-sen University, Zhuhai, China

3. Finnish Meteorological Institute, Helsinki, Finland

4. Arctic and Antarctic Research Institute, Saint Petersburg, Russia

5. Department of Atmospheric and Environmental Sciences, University at Albany, State University of New York, Albany, New York

6. National Marine Environmental Forecasting Center, Beijing, China

7. Nanjing University of Information Science and Technology, Nanjing, China

Abstract

Observed daily precipitation data were used to investigate the characteristics of precipitation at Antarctic Progress Station and synoptic patterns associated with extreme precipitation events during the period 2003–16. The annual precipitation, annual number of extreme precipitation events, and amount of precipitation during the extreme events have positive trends. The distribution of precipitation at Progress Station is heavily skewed with a long tail of extreme dry days and a high peak of extreme wet days. The synoptic pattern associated with extreme precipitation events is a dipole structure of negative and positive height anomalies to the west and east of Progress Station, respectively, resulting in water vapor advection to the station. For the first time, we apply self-organizing maps (SOMs) to examine thermodynamic and dynamic perspectives of trends in the frequency of occurrence of Antarctic extreme precipitation events. The changes in thermodynamic (noncirculation) processes explain 80% of the trend, followed by the changes in the interaction between thermodynamic and dynamic processes, which account for nearly 25% of the trend. The changes in dynamic processes make a negative (less than 5%) contribution to the trend. The positive trend in total column water vapor over the Southern Ocean explains the change of thermodynamic term.

Funder

National Natural Science Foundation of China

National Key R&D Program of China

Publisher

American Meteorological Society

Subject

Atmospheric Science

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