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Waves and Sediment Transport Due to Granular Landslides Impacting Reservoirs

机译:颗粒滑坡影响水库的波浪和泥沙输送

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Granular landslides impacting reservoirs may generate large waves and cause active sediment transport, and an increased understanding of these processes is important for public safety and effective reservoir management. This study investigates the waves and sediment transport caused by landslides impacting reservoirs using a two-dimensional coupled double-layer-averaged shallow water hydro-sediment-morphodynamic model. In contrast to existing models, which cannot fully account for sediment transport, the model makes a physical step forward. The model is benchmarked against laboratory experiments of landslide-generated waves in both two and three dimensions. Based on extended numerical cases, the capability of the model is further demonstrated by comparisons with empirical relationships of waves in 2-D. In addition, sediment transport is resolved in terms of the sediment concentration and bed deformation. The results show that the wave types and amplitudes in 2-D are dictated by the sediment transport speed, which also governs the landslide-to-wave momentum transfer and the landslide efficiency, which is defined as the ratio of the horizontal runout distance to the vertical fall height. With increasing sediment transport speed, landslide-generated waves in 2-D vary gradually from smaller nonlinear oscillatory waves to larger waves with solitary-like wave characteristics, including nonlinear transition waves, solitary waves, and dissipative transient bores. In contrast to the momentum transfer ratio, the landslide efficiency increases with the sediment transport speed and decreases with the reservoir water depth and the lateral spreading in 3-D cases.Plain Language Summary The waves and sediment transport due to granular landslides impacting reservoirs are numerically solved by a double-layer-averaged shallow water hydro-sediment-morphodynamic model. It is shown that wave type and amplitude in 2-D are dictated by sediment transport speed relying on initial landslide volume and velocity, slope angle, and reservoir water depth. Contrary to the landslide-to-wave momentum transfer ratio, landslide efficiency increases with initial landslide volume and velocity as well as slope angle and is constrained by reservoir water depth and lateral spreading in 3-D.
机译:撞击水库的颗粒状滑坡可能会产生大波浪并引起活跃的泥沙输送,因此加深对这些过程的了解对于公共安全和有效的水库管理至关重要。本研究使用二维耦合的双层平均浅水水沙-地物动力模型研究了滑坡影响水库的波浪和泥沙运移。与无法完全解释泥沙输送的现有模型相比,该模型向前迈出了实质性的一步。该模型以二维和三维的滑坡生成波的实验室实验为基准。通过扩展数值案例,通过与二维波的经验关系进行比较,进一步证明了模型的功能。此外,根据沉积物浓度和床层变形解决了沉积物的运输。结果表明,二维泥沙的波型和振幅取决于泥沙的输送速度,它也决定着滑坡向波的动量传递和滑坡效率,滑坡效率被定义为水平跳动距离与坡向的比值。垂直下落高度。随着沉积物传输速度的提高,二维滑坡产生的波逐渐从较小的非线性振荡波变化为具有孤立样波特征的较大波,包括非线性过渡波,孤立波和耗散瞬变孔。与动量传递率相反,在3D情况下,滑坡效率随输沙速度的增加而增加,而随储层水深和侧向扩展的增加而减小。普通语言摘要数值模拟了颗粒状滑坡对储层的冲击波和输沙量双层平均浅水沉积-地貌动力模型求解。结果表明,二维波的类型和振幅是由泥沙输送速度决定的,它取决于初始滑坡的体积和速度,倾斜角和储层水深。与滑坡-波动量传递率相反,滑坡效率随初始滑坡的体积和速度以及坡度角的增加而增加,并受3-D储层水深和横向扩展的约束。

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