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Evaluation of the Secondary Current Parameter and Depth-Averaged Velocity in Curved Compound Open Channels

机译:弯曲复合明渠中次级电流参数和深度平均速度的评估

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摘要

Simultaneous effects of centrifugal force, floodplain interferences, and variation of the depth-averaged velocity are combined in an analytical model to derive a relationship for estimating the secondary current parameter in bends of compound open channels. This parameter is evaluated using the experimental data. To generalize the obtained relationships, numerical modeling is performed using open-source computational fluid dynamics (CFD) software. In the present study, the Reynolds-averaged Navier-Stokes equations (RANS) are solved, and a single-phase solver is applied with an appropriate boundary condition on the free surface. The shear stress transport (SST) k- turbulent model is applied for turbulence modeling of the flow field. To obtain general correlations for the hydrodynamic characteristics of the flow, such as the velocity components, different numerical models are developed. Accordingly, all the present numerical results, as well as the available experimental data, are used to derive correlations for the secondary current parameter in curved compound open channels.
机译:在分析模型中组合了离心力,洪泛平原干扰和深度平均速度变化的同时效应,以推导关系来估算复合明渠弯道中的次级电流参数。使用实验数据评估该参数。为了概括获得的关系,使用开源计算流体动力学(CFD)软件执行数值建模。在本研究中,求解了雷诺平均的Navier-Stokes方程(RANS),并在自由表面上应用了具有适当边界条件的单相求解器。剪切应力传输(SST)k-湍流模型被用于流场的湍流建模。为了获得流动的流体动力学特性(例如速度分量)的一般相关性,开发了不同的数值模型。因此,所有当前的数值结果以及可用的实验数据都用于导出弯曲复合明渠中次级电流参数的相关性。

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