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首页> 外文期刊>Earth Surface Processes and Landforms: The journal of the British Geomorphological Research Group >Understanding river dune splitting through flume experiments and analysis of a dune evolution model
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Understanding river dune splitting through flume experiments and analysis of a dune evolution model

机译:通过水槽实验了解沙丘分裂和沙丘演化模型的分析

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Forecasts of water level during river floods require accurate predictions of the evolution of river dune dimensions, because the hydraulic roughness of the main channel is largely determined by the bed morphology. River dune dimensions are controlled by processes like merging and splitting of dunes. Particularly the process of dune splitting is still poorly understood and - as a result - not yet included in operational dune evolution models. In the current paper, the process of dune splitting is investigated by carrying out laboratory experiments and by means of a sensitivity analysis using a numerical dune evolution model. In the numerical model, we introduced superimposed TRIAS ripples (i.e. triangular asymmetric stoss side-ripples) on the stoss sides of underlying dunes as soon as these stoss sides exceed a certain critical length. Simulations with the model including dune splitting showed that predictions of equilibrium dune characteristics were significantly improved compared to the model without dune splitting. As dune splitting is implemented in a parameterized way, the computational cost remains low which means that dune evolution can be calculated on the timescale of a flood wave. Subsequently, we used this model to study the mechanism of dune splitting. Literature showed that the initiation of a strong flow separation zone behind a superimposed bedform is one of the main mechanisms behind dune splitting. The flume experiments indicated that besides its height also the lee side slope of the superimposed bedform is an important factor to determine the strength of the flow separation zone and therefore is an important aspect in dune splitting. The sensitivity analysis of the dune evolutionmodel showed that aminimumstoss side lengthwas required to develop a strong flowseparation zone.
机译:预测河道洪水期间的水位需要准确预测河沙丘尺寸的演变,因为主河道的水力粗糙度主要由河床形态决定。沙丘的大小受沙丘合并和分割等过程控制。尤其是,沙丘分裂的过程仍然知之甚少,因此,尚未包括在可操作的沙丘演化模型中。在当前的论文中,通过进行实验室实验以及使用数值沙丘演化模型的敏感性分析来研究沙丘分裂的过程。在数值模型中,一旦底面沙丘的侧面超过一定的临界长度,我们就会在其下面的沙丘的侧面引入叠加的TRIAS波纹(即三角形不对称的三角形侧面波纹)。使用包括沙丘分裂的模型进行的仿真表明,与没有沙丘分裂的模型相比,平衡沙丘特征的预测得到了显着改善。由于以参数化方式实现沙丘分割,因此计算成本仍然较低,这意味着可以在洪水波的时标上计算沙丘的演变。随后,我们使用此模型研究沙丘分裂的机理。文献表明,在叠加的岩床后面形成强流动分离带是沙丘分裂的主要机制之一。水槽实验表明,除了床身的高低外,叠加床身的背风侧坡度也是决定流分离区强度的重要因素,因此也是沙丘劈裂的重要方面。沙丘演化模型的敏感性分析表明,需要一个最小的边长来形成一个强大的分流区。

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