A minimal coupled fluid-discrete element model for bedload transport

R. Maurin, J. Chauchat, B. Chareyre, P. Frey
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引用次数: 64

Abstract

A minimal Lagragian two-phase model to study turbulent bedload transport focusing on the granular phase is presented, and validated with experiments. The model intends to describe bedload transport of massive particles in fully rough flows at relatively low Shields numbers, for which no suspension occurs. A discrete element method for the granular phase is coupled with a one dimensional volume-averaged two-phase momentum equation for the fluid phase. The coupling between the discrete granular phase and the continuous fluid phase is discussed, and a consistent averaging formulation adapted to bedload transport is introduced. An original simple discrete random walk model is proposed to account for the fluid velocity fluctuations. The model is compared with experiments considering both classical sediment transport rate as a function of the Shields number, and depth profiles of solid velocity, volume fraction, and transport rate density, from existing bedload transport experiments in inclined flume. The results successfully reproduce the classical 3/2 power law, and more importantly describe well the depth profiles of the granular phase, showing that the model is able to reproduce the particle scale mechanisms. From a sensitivity analysis, it is shown that the fluctuation model allows to reproduce a realistic critical Shields number, and that the influence of the granular parameters on the macroscopic results are weak. Nevertheless, the analysis of the corresponding depth profiles reveals an evolution of the depth structure of the granular phase with varying restitution and friction coefficients, which denotes the non-trivial underlying physical mechanisms.
层质输运的最小耦合流体-离散元模型
提出了一种以颗粒相为中心的最小Lagragian两相湍流床质输运模型,并进行了实验验证。该模型旨在描述在相对较低的屏蔽数下,不发生悬浮的完全粗糙流中大质量颗粒的层载输运。采用离散元法求解颗粒相,采用一维体积平均两相动量方程求解流体相。讨论了离散颗粒相与连续流体相之间的耦合,并引入了适用于顺质输运的一致平均公式。提出了一个原始的简单离散随机游走模型来解释流体的速度波动。将该模型与考虑盾构数函数的经典输沙率实验,以及现有倾斜水槽中固体流速、体积分数和输沙率密度深度分布的实验进行了比较。结果成功地再现了经典的3/2幂律,更重要的是很好地描述了颗粒相的深度分布,表明该模型能够再现颗粒尺度机制。灵敏度分析表明,波动模型可以再现真实的临界屏蔽数,颗粒参数对宏观结果的影响较弱。然而,对相应深度剖面的分析揭示了颗粒相深度结构的演变,其恢复系数和摩擦系数随时间的变化而变化,这表明了非平凡的潜在物理机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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