Investigation of open channel flow with unsubmerged rigid vegetation by the lattice Boltzmann method

被引:0
|
作者
He-fang Jing
Yin-juan Cai
Wei-hong Wang
Ya-kun Guo
Chun-guang Li
Yu-chuan Bai
机构
[1] Tianjin University,State Key Laboratory of Hydraulic Engineering Simulation and Safety
[2] Key laboratory of Intelligent Information and Big Data Processing of Ningxia Province,School of Civil Engineering
[3] North Minzu University,Faculty of Engineering & Informatics
[4] University of Bradford,undefined
来源
Journal of Hydrodynamics | 2020年 / 32卷
关键词
Lattice Boltzmann method; multi-relaxation time model; aquatic vegetation; drag force; open channel flow;
D O I
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中图分类号
学科分类号
摘要
Aquatic vegetation can significantly affect flow structure, sediment transport, bed scour and water quality in rivers, lakes, reservoirs and open channels. In this study, the lattice Boltzmann method is applied for performing the two dimensional numerical simulation of the flow structure in a flume with rigid vegetation. A multi-relaxation time model is applied to improve the stability of the numerical scheme for flow with high Reynolds number. The vegetation induced drag force is added in lattice Boltzmann equation model with the algorithm of multi-relaxation time in order to improve the simulation accuracy. Numerical simulations are performed for a wide range of flow and vegetation conditions and are validated by comparing with the laboratory experiments. Analysis of the simulated and experimentally measured flow field shows that the numerical simulation can satisfactorily reproduce the laboratory experiments, indicating that the proposed lattice Boltzmann model has high accuracy for simulating flow-vegetation interaction in open channel.
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页码:771 / 783
页数:12
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