Response of Runoff Change to Extreme Climate Evolution in a Typical Watershed of Karst Trough Valley, SW China

Author:

Wu Luhua123,Chen Dan1,Yang Dongni1,Luo Guangjie4,Wang Jinfeng5,Chen Fei6

Affiliation:

1. School of Economics and Management, Tongren University, Tongren 554300, China

2. Tongren Rural Revitalization Research Institute, Tongren 554300, China

3. Fanjing Mountain National Park Research Institute, Tongren 554300, China

4. Guizhou Provincial Key Laboratory of Geographic State Monitoring, Guiyang 550018, China

5. School of Economics and Management, Liupanshui Normal University, Liupanshui 553004, China

6. Guizhou Institute of Water Resources Science, Guiyang 550002, China

Abstract

Identifying the response of runoff changes to extreme climate evolution was of great scientific significance for the rational regulation of watershed water resources and the prevention of hydrological disasters. However, the time–frequency response relationships were not clear. The Yinjiang River watershed, a typical watershed with karst trough valley areas, was chosen to identify the impact of different climatic driving factors on runoff changes from 1984 to 2015. Continuous wavelet transform (CWT), cross-wavelet transform (XWT), and wavelet coherence transform (WTC) were performed to study the response relationship and time–frequency effect between runoff changes and extreme climate change at different time scales. The main results showed that: (1) Twelve extreme climate indices (ECIs) were detected to have a significant impact on runoff changes, mainly on a 6-year time scale; (2) The R10 and Rx1day in extreme precipitation index and SU34.4 and TNx in the extreme temperature index were the main driving factors of runoff changes, which had relatively large impacts on runoff changes in high and low energy vibration regions. However, the remaining eight ECIs that passed the 0.05 confidence level showed relatively large impacts on runoff changes only in low energy vibration regions; (3) The transition of the interaction between ECIs and runoff changes in high and low time–frequency scales was related to the abrupt change characteristics of the ECIs. The correlation of abrupt change was an important reason for the emergence of highly correlated regions that trigger high and low energy vibrations; (4) As a whole, the extreme precipitation events were ahead of runoff changes at the high time–frequency scale and exhibited small lag effects at the low time–frequency scale, while extreme temperature events were mainly ahead of runoff changes. This study has effectively revealed the impact of climate factors at different scales on runoff changes, and provides a theoretical understanding for regulating and managing water resources in karst basins.

Funder

National Natural Science Foundation of China

Guizhou Provincial Science and Technology Projects

Science and Technology Projects of Tongren City

Scientific Research Projects in Higher Education Institutions of Guizhou Provincial Department of Education

Doctoral Research Startup Fund Project of Tongren University

Guizhou Provincial Major Science and Technology Achievement Transformation Project

Opening Fund of the State Key Laboratory of Environmental Geochemistry

Publisher

MDPI AG

Subject

Atmospheric Science,Environmental Science (miscellaneous)

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