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3D numerical modelling of asynchronous propagation characteristics of flood and sediment peaks in three gorges reservoir

机译:三峡库区洪水沉积峰的异步传播特征的3D数值模型

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The asynchronous propagation characteristics of flood and sediment peaks downstream (i.e., sediment peak lagging behind flood peak) are crucial for the operation of sediment peak release to reduce the sedimentation of the Three Gorges Reservoir (TGR). In the flood season of 2013, the sediment peak regulation was conducted in the TGR, based on the asynchronous propagation characteristics of flood and sediment peaks, and promising results were achieved towards reducing the reservoir sedimentation. In this study, the processes of flood propagation and sediment transport over a stretch of 280 km, upstream of the TGR on the Yangtze River were studied through a three-dimensional (3D) semi-implicit cross-scale hydroscience integrated system model (SCHISM), focussing on the asynchronous propagation characteristics of flood and sediment peaks downstream. It was demonstrated that firstly, the model efficiently and accurately reproduced the processes of flood propagation and sediment transport during the 2013 flood season compared with the measured results. The sensitivity analysis showed that the horizontal grid used in the numerical modelling had a greater influence on the model results than the vertical grid. The Manning coefficient was not sensitive to flood peaks propagation with a large flow discharge. Next, the validated model was adopted to investigate the asynchronous propagation characteristics of the flood and sediment peaks under different TGR operational scenarios. The results indicated that the impounded level ahead of the Three Gorges Dam (TGD) had an insignificant influence on the occurrence time and magnitude of the flood peak, but had a significant influence on the occurrence time and magnitude of the sediment peak. The time of sediment peak lagging behind flood peak increases as the impounded level in the TGR increased. The peak value of sediment concentration gradually decreased owing to the sediment deposition. The research results could provide a scientific basis for further optimising the sediment peak regulation, and the 3D numerical model could provide a reliable real-time tool to predict the arrival time of the flood and sediment peaks in the TGR.
机译:下游洪峰和泥沙峰值(即泥沙峰值滞后于洪峰)的非同步传播特性对于三峡水库(TGR)泥沙峰值释放的运行至关重要。2013年汛期,根据洪峰和泥沙峰值的异步传播特性,三峡水库进行了泥沙调峰,在减少水库泥沙淤积方面取得了良好的效果。在本研究中,通过三维(3D)半隐式跨尺度水科学综合系统模型(SCHISM)研究了长江三峡上游280 km河段的洪水传播和泥沙输移过程,重点研究了下游洪水和泥沙峰值的异步传播特征。结果表明,首先,与实测结果相比,该模型有效、准确地再现了2013年汛期洪水传播和泥沙输移过程。敏感性分析表明,数值模拟中使用的水平网格比垂直网格对模型结果的影响更大。曼宁系数对流量较大的洪峰传播不敏感。接下来,采用验证模型研究了不同TGR运行情景下洪水和泥沙峰值的异步传播特性。结果表明,三峡坝前蓄水位对洪峰的发生时间和大小影响不大,但对泥沙峰值的发生时间和大小影响较大。随着三峡水库蓄水位的增加,泥沙峰值滞后于洪峰的时间增加。由于泥沙淤积,含沙量峰值逐渐降低。研究成果可为进一步优化三峡水库泥沙调峰提供科学依据,三维数值模型可为三峡水库洪水和泥沙峰值到达时间的预测提供可靠的实时工具。

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