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Modeling Flow Pattern and Evolution of Meandering Channels with a Nonlinear Model

机译:用非线性模型对弯道的流动模式和演变进行建模

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Meander dynamics has been the focus of river engineering for decades; however, it remains a challenge for researchers to precisely replicate natural evolution processes of meandering channels with numerical models due to the high nonlinearity of the governing equations. The present study puts forward a nonlinear model to simulate the flow pattern and evolution of meandering channels. The proposed meander model adopts the nonlinear hydrodynamic submodel developed by Blanckaert and de Vriend, which accounts for the nonlinear interactions between secondary flow and main flow and therefore has no curvature restriction. With the computational flow field, the evolution process of the channel centerline is simulated using the Bank Erosion and Retreat Model (BERM) developed by Chen and Duan. Verification against two laboratory flume experiments indicates the proposed meander model yields satisfactory agreement with the measured data. For comparison, the same experimental cases are also simulated with the linear version of the hydrodynamic submodel. Calculated results show that the flow pattern and meander evolution process predicted by the nonlinear and the linear models are similar for mildly curved channels, whereas they exhibit different characteristics when channel sinuosity becomes relatively high. It is indicated that the nonlinear interactions between main flow and secondary flow prevent the growth of the secondary flow and induce a more uniform transverse velocity profile in high-sinuosity channels, which slows down the evolution process of meandering channels.
机译:数十年来,曲折动力学一直是河流工程的重点。然而,由于控制方程的高度非线性,对于研究人员来说,用数值模型精确地复制蜿蜒河道的自然演化过程仍然是一个挑战。本研究提出了一个非线性模型来模拟弯道的流动模式和演变。拟议的蜿蜒模型采用Blanckaert和de Vriend开发的非线性流体动力学子模型,该模型考虑了次生流与主流之间的非线性相互作用,因此没有曲率限制。通过计算流场,使用Chen和Duan开发的Bank Erostion and Retreat Model(BERM)模拟了河道中心线的演化过程。对两个实验室水槽实验的验证表明,拟议的曲折模型与测量数据产生令人满意的一致性。为了进行比较,还使用流体动力学子模型的线性版本模拟了相同的实验案例。计算结果表明,非线性和线性模型预测的流动模式和曲折演变过程对于缓和弯曲的通道是相似的,但是当通道的弯曲度相对较高时,它们表现出不同的特性。结果表明,主流与次流之间的非线性相互作用阻止了次流的增长,并在高曲率通道中引起了更为均匀的横向速度分布,从而减缓了曲折通道的演化过程。

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