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Three-layer model for vertical velocity distribution in open channel flow with submerged rigid vegetation
Authors:WX Huai  YH Zeng  ZG Xu  ZH Yang
Institution:1. State Key Laboratory of Water Resources and Hydropower Engineering Science, Dong hu Nan rd, Wuhan University, Wuhan 430072, China;2. School of Environmental Science and Engineering, Sun-Yat Sen University, Guangzhou 510275, China
Abstract:Based on the detailed laboratory experiments and theoretical analysis, a new three-layer model is proposed to predict the vertical velocity distribution in an open channel flow with submerged vegetation. The time averaged velocity and turbulence behaviour of a steady uniform flow with fully submerged artificial rigid vegetation was measured using a 3D Micro ADV, and the vertical distribution of velocity and Reynolds shear stress at different vegetation height, vegetation density and measuring positions were obtained. The results show that the velocity profile consists of three hydrodynamic regimes (i.e. the upper non-vegetated layer, the outer and bottom layer within vegetation); accordingly different methods had been adopted to describe the vertical velocity distribution. For the upper non-vegetated layer, a modified mixing length theory combined with the concept of ‘the new vegetation boundary layer’ was adopted, and an analytical model was presented to predict the vertical velocity distribution in this region. For the bottom layer within vegetation, the depth average velocity was obtained by numerically solving the momentum equations. For the upper layer within vegetation, the analytical solution was presented by expressing the shear stress as a formula fitted to the experimental data. Finally, the analytical predictions of the vertical velocity over the whole flow depth were compared with the results obtained by other researchers, and the good agreement proved that the three-layer model can be used to predict the velocity distribution of the open channel flow with submerged rigid vegetation.
Keywords:Open channel flow  Submerged rigid vegetation  Reynolds shear stress  Mixing length  Velocity profile  Boundary layer
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