部分闸门提升对湿河床溃坝试验的数学与数值研究

IF 4.2 2区 环境科学与生态学 Q1 WATER RESOURCES
Giada Varra, Nathalia Napolano, Renata Della Morte, Luca Cozzolino
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引用次数: 0

摘要

大坝溃坝可能导致突发和灾难性洪水,因此准确预测溃坝波动力学对有效的洪水风险管理和减灾至关重要。如果大坝突然被完全拆除,则称为完全溃坝;如果缺口比大坝小,则称为部分溃坝。虽然对结构完全破坏后溃坝波的行为进行了广泛的研究,但对部分溃坝情景的研究仍然有限。一种特殊的部分溃坝情景,包括在坝底有一个裂口,可以在实验室实验中用闸门的突然部分抬起来模拟。到目前为止,这种部分溃坝的数学和数值模拟只得到了部分的审查,目前还不清楚现有模型预测的解决方案是否在现实世界的场景或实验室实验中有效观察到。本研究通过将Cozzolino等人(2023)提出的分析和数值模型的结果与文献中的最新实验室实验数据进行比较,解决了这些差距。对比表明,部分溃坝问题的无粘精确解能够可靠地预测自由和淹没条件下运动波的类型、数量和高度。采用Cozzolino等人(2023)的数值模型时,由于通过摩擦项包含了耗散效应,因此与实验数据的一致性得到增强。这些结果提倡将现有的通常在稳定流动条件下发现的流动闸门方程扩展到强瞬态情况。研究结果进一步证实了浅水方程在明渠强瞬态模拟中的应用,即使存在流-结构相互作用,如涉及闸门、桥梁和防洪拦河坝的水流。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mathematical and numerical investigation of experimental dam breaks in wet-bed channels due to partial sluice gate lifting
Dam failures may result in sudden and catastrophic floods, making the accurate prediction of dam-break wave dynamics crucial for effective flood risk management and disaster mitigation. Dam-breaks are complete if the dam is totally and suddenly removed, or partial if the breach is smaller than the dam. While the behaviour of dam-break waves following the complete structural failure has been extensively studied, research on partial dam break scenarios remains limited. A special partial dam break scenario, consisting of a breach opening at the dam bottom, can be modelled in laboratory experiments with the sudden partial lifting of a sluice gate. Until now, the mathematical and numerical modelling of this partial dam break has received only partial scrutiny, and it is still unclear if the solutions predicted by existing models are those effectively observed in real-world scenarios or laboratory experiments. This study addresses these gaps by confronting the results of the analytical and numerical models proposed by Cozzolino et al. (2023) with recent laboratory experimental data from the literature. The comparison reveals that the inviscid exact solution to the partial dam break problem can reliably predict the type, number, and height of the moving waves developed under both free and submerged flow conditions. The agreement with experimental data is enhanced when applying the numerical model by Cozzolino et al. (2023), owing to the inclusion of dissipative effects through the frictional term. These results advocate extending the existing flow gate equations, usually found in steady flow conditions, to the case of strong transients. The findings further corroborate the application of the Shallow water Equations to the simulation of strong transients in open channels, even in the presence of flow-structure interactions such as those involving sluice gates, bridges, and flood control barrages.
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来源期刊
Advances in Water Resources
Advances in Water Resources 环境科学-水资源
CiteScore
9.40
自引率
6.40%
发文量
171
审稿时长
36 days
期刊介绍: Advances in Water Resources provides a forum for the presentation of fundamental scientific advances in the understanding of water resources systems. The scope of Advances in Water Resources includes any combination of theoretical, computational, and experimental approaches used to advance fundamental understanding of surface or subsurface water resources systems or the interaction of these systems with the atmosphere, geosphere, biosphere, and human societies. Manuscripts involving case studies that do not attempt to reach broader conclusions, research on engineering design, applied hydraulics, or water quality and treatment, as well as applications of existing knowledge that do not advance fundamental understanding of hydrological processes, are not appropriate for Advances in Water Resources. Examples of appropriate topical areas that will be considered include the following: • Surface and subsurface hydrology • Hydrometeorology • Environmental fluid dynamics • Ecohydrology and ecohydrodynamics • Multiphase transport phenomena in porous media • Fluid flow and species transport and reaction processes
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