稳定流中新生刚性植被的流动阻力

IF 2.3 4区 环境科学与生态学 Q3 WATER RESOURCES
Jiangyu Wang, Jinxin Liu, Yining Sun, Ji Li, Zhixian Cao
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引用次数: 0

摘要

加强对有新生植被的明渠水流阻力的了解,对于洪水管理和河流生态系统恢复至关重要。植被的存在会显著改变河床阻力,从而给准确预测流量、水位、泥沙输移和河床变形带来挑战。以往关于植被水流的研究主要集中在植被阻力方面,而植被的影响则被忽视或估计不足。本研究以动量守恒定律为基础,提出了一种新的分析模型,用于预测无床面形式的平床植被区的流动阻力,明确量化床面阻力和植被阻力。提出的模型以五组典型的实验室实验为基准。结果表明,采用修正的对数速度分布的本模型性能最佳,而假设速度分布均匀的模型则大大高估了植被阻力,忽略了植被对床面阻力的影响。结果表明,河床阻力与总阻力之比介于 5%与 40%之间,随着植被密度的增加而减小,并随水深的增加而减小。因此,在模拟植被稀疏的浅水水流时,不能忽略床面阻力。研究还发现,植被布置对水流阻力有很大影响,因此包含植被布置影响的模型效果更好。总之,本模型为量化植被丛生水道的流动阻力提供了一个可行且有前景的工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Flow resistance of emergent rigid vegetation in steady flow
Enhanced understanding of flow resistance in open channels with emergent vegetation is essential for flood management and river ecosystem restoration. The presence of vegetation can significantly alter bed resistance, leading to a challenge in accurately predicting flow discharge, water levels, sediment transport, and bed deformation. Previous studies on vegetated flows have focused on vegetation resistance, on which the impact of vegetation has been ignored or poorly estimated. This study proposes a new analytical model, built upon the momentum conservation law, to predict flow resistance to vegetated zones in a plain bed without bed forms, explicitly quantifying bed resistance and vegetation resistance in a corollary manner. The proposed model is benchmarked against five typical sets of laboratory experiments. It is demonstrated that the present model using a modified logarithmic velocity distribution performs best, whereas that assuming a uniform velocity profile considerably overestimates the vegetation resistance and neglects the effect of vegetation on bed resistance. The ratio of bed resistance to the total resistance is shown to range between 5% and 40%, and it decreases with increasing vegetation density and decreases with water depth. Therefore, bed resistance cannot be ignored when modelling shallow water flow with sparsely distributed vegetation. It is also revealed that vegetation arrangements significantly affect flow resistance, and therefore a model incorporating the effect of vegetation arrangement performs better. Overall, the present model facilitates a viable and promising tool for quantifying flow resistance in emergent vegetated channels.
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来源期刊
CiteScore
4.20
自引率
5.30%
发文量
30
审稿时长
>12 weeks
期刊介绍: JOURNAL OF HYDROLOGY AND HYDROMECHANICS is an international open access journal for the basic disciplines of water sciences. The scope of hydrology is limited to biohydrology, catchment hydrology and vadose zone hydrology, primarily of temperate zone. The hydromechanics covers theoretical, experimental and computational hydraulics and fluid mechanics in various fields, two- and multiphase flows, including non-Newtonian flow, and new frontiers in hydraulics. The journal is published quarterly in English. The types of contribution include: research and review articles, short communications and technical notes. The articles have been thoroughly peer reviewed by international specialists and promoted to researchers working in the same field.
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