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Avulsions in a Simulated Large Lowland Braided River

机译:在模拟的大低地辫状河中撕毁

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The understanding of the complicated braiding mechanisms in braided rivers is closely related to avulsions. They control the channel generation, migration and disappearance in large lowland braided rivers, and are considered to be the key factor that keeps the river maintaining a dynamic braided pattern. However, their occurring processes and mechanisms are still not well understood due to the lack of detailed measurements with sufficient temporal and spatial data covering multiple bifurcations. In the present study, a numerical model based on the physical process of hydrodynamics and sediment transport is used to simulate the suspended sediment transport and river channel evolution in braided rivers. The model predicted braiding processes are comparable to those observed in nature. Efforts are made to investigate the morphological processes that are key for river braiding. Three types of avulsions observed in natural rivers have been identified in the model predicted river and their evolution processes and controlling factors are examined based on the predicted flow velocity, sediment concentration, bed elevation and sediment size distribution. It was found that, a curving channel bend is the key factor in introducing a constriction avulsion, while the choking avulsion and apex avulsion are controlled by the water surface slope and bed elevation. They are mostly affected by the upstream channel pattern changes.
机译:对辫状河流复杂的辫状机制的理解与撕脱息息相关。它们控制着大型低地辫状河的河道产生,迁移和消失,被认为是使河流保持动态辫状格局的关键因素。但是,由于缺乏详细的测量数据,而这些数据没有足够的时间和空间数据来覆盖多个分叉点,因此它们的发生过程和机制仍未得到很好的理解。在本研究中,基于流体动力学和泥沙输送的物理过程的数值模型被用来模拟辫状河流中的悬浮泥沙输送和河道演变。该模型预测的编织过程与自然观察到的相当。努力研究对河编织至关重要的形态过程。在模型预测河流中确定了在天然河流中观测到的三种撕脱现象,并根据预测流速,沉积物浓度,河床高程和沉积物尺寸分布检查了它们的演变过程和控制因素。结果发现,弯曲的河道弯曲是引入缩窄撕脱的关键因素,而cho水撕裂和顶点撕脱受水面坡度和河床高度控制。它们主要受上游信道模式变化的影响。

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