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Modeling the St. Francis Dam Break Flood with 2-D Shallow Water and 2-D/3-D Hybrid CFD methods

机译:使用2-D浅水和2-D / 3-D混合CFD方法对圣弗朗西斯大坝溃决洪水进行建模

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Computational Fluid Dynamics (CFD) is used to predict the extent of flooding and dam breach events more than ever before. Inputs to the governing equations include representations of topography and flow resistance. The inputs are often uncertain which can introduce difficulties in assessing a model's accuracy. In other words, the numerical model and solution may not necessarily represent reality. This paper examines the effect of governing equation options and flow resistance inputs on the accuracy and efficiency of a model of the 1928 St. Francis Dam breach. A brief history of the dam breach is given, and a metric is proposed for comparing similar models of the same event. The breach is then modeled with two sets of governing equations in the commercial software package FLOW-3D. The Shallow Water equations are tested and calibrated independently and then combined and coupled with the 3-D Navier-Stokes equations. To our knowledge, this hybrid approach is unique and attempts to balance accuracy and efficiency by matching the governing equations to dominant flow characteristics. The results are analyzed and discussed, and some rules-of-thumb are proposed for modeling large-scale breach events.
机译:计算流体动力学(CFD)用于预测洪水和大坝破坏事件的程度比以往任何时候都要大。控制方程的输入包括地形和流阻的表示。输入通常是不确定的,这可能会给评估模型的准确性带来困难。换句话说,数值模型和解决方案不一定代表现实。本文研究了控制方程选项和流动阻力输入对1928年圣弗朗西斯大坝破坏模型的准确性和效率的影响。简要介绍了大坝溃坝的历史,并提出了一个度量标准,用于比较同一事件的相似模型。然后使用商业软件包FLOW-3D中的两组控制方程对违规进行建模。浅水方程式经过独立测试和校准,然后与3-D Navier-Stokes方程式组合并耦合。据我们所知,这种混合方法是独特的,它试图通过将控制方程式与主要流动特性进行匹配来平衡精度和效率。分析和讨论了结果,并提出了一些用于对大型违规事件进行建模的经验法则。

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