Propagation characteristics of the flow and suspended sediment peaks in the three gorges reservoir, China: Insight from numerical simulations and measured data

Author:

Liu Shangwu123ORCID,Wang Dayu4,Wang Zhili123,Xu Zhicheng5,Li Danxun123

Affiliation:

1. State Key Laboratory of Hydroscience and Engineering Tsinghua University Beijing China

2. Key Laboratory of Hydrosphere Sciences of the Ministry of Water Resources Tsinghua University Beijing China

3. Department of Hydraulic Engineering Tsinghua University Beijing China

4. Department of Sediment Research China Institute of Water Resources and Hydropower Research Beijing China

5. River Department Changjiang River Scientific Research Institute Wuhan China

Abstract

AbstractEffective management of reservoir sedimentation necessitates the characterization of flood events, especially in relation to the propagation of the flow peak (Qpeak) and the suspended sediment concentration peak (SSCpeak). This study, based on a one‐dimensional river network hydro‐sediment model together with field data, presents an exploration of the flood events in the Three Gorges Reservoir (TGR) with focus on the propagating characteristics of Qpeak and SSCpeak. The findings reveal that the main flood season (from July to September) contributed over 80% of the annual sediment load into the TGR, with the mainstream Yangtze and its tributary, the Jialing River, being the primary sediment sources. After the impoundment of the TGR, the propagation time of Qpeak decreases with the raise of the water level in front of dam (WLdam). The increases in Qpeak discharge extends the range of river reach dominated by kinematic wave, resulting in an increase trend in Qpeak propagation time. The propagating speed of SSCpeak is closely related to the ratio of sediment concentration to flow discharge and WLdam. Finally, the propagating durations of Qpeak and SSCpeak in the TGR are compared, and empirical formulas are proposed for quantifying their difference.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Water Science and Technology

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