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Particle scale modelling of the multiphase flow in a dense medium cyclone: Effect of fluctuation of solids flowrate

机译:稠密气旋中多相流的颗粒模型:固体流速波动的影响

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Dense medium cyclone (DMC) is widely used to upgrade run-of-mine coal in the coal industry. The flow dynamics/fluctuation in a DMC is important but has not been studied previously. In this work, the dynamics is studied by numerically with special reference to the effect of the fluctuation of solid mass flowrate. The simulation is carried out by use of a combined approach of Computational Fluid Dynamics (CFD) and Discrete Element Method (DEM). In the model, the motion of discrete mineral particle phase is obtained by DEM which applies Newton's equations of motion to every individual particle and the flow of medium (mixture of water, air and fine magnetites) phase by the traditional CFD which solves the Navier-Stokes equations at a computational cell scale. The simulated results are analysed in terms of medium and coal flow patterns, and particle-fluid, particle-particle and particle-wall interaction forces. It is shown that under high fluctuation frequency and current conditions, the performance of DMC is not sensitive to both the fluctuation amplitude and period of coal flow at the DMC inlet. However, under low fluctuation frequency, as fluctuation amplitude increases, the separation performance deteriorates slightly and the flow is obviously affected at the spigot. A notable finding is that the near-gravity particles that tend to reside at the spigot and/or have longer residence time in the DMC would be affected more than other particles. The work shows that this two-way coupled CFD-DEM model could be a useful tool to study the dynamics of the flow in DMCs.
机译:重度旋风分离器(DMC)在煤炭工业中广泛用于升级原煤。 DMC中的流动动力学/波动很重要,但以前没有研究过。在这项工作中,通过数值方法研究了动力学,并特别参考了固体质量流量波动的影响。通过使用计算流体动力学(CFD)和离散元素方法(DEM)的组合方法进行模拟。在该模型中,离散的矿物颗粒相的运动是通过DEM获得的,DEM通过传统的CFD方法将牛顿运动方程应用于每个单个颗粒以及介质(水,空气和细磁铁矿的混合物)相的流动,从而解决了Navier-在计算单元范围内斯托克斯方程式。根据介质和煤的流型,颗粒-流体,颗粒-颗粒和颗粒-壁相互作用力对模拟结果进行了分析。结果表明,在高波动频率和高电流条件下,DMC的性能对DMC入口处煤流的波动幅度和周期都不敏感。但是,在低波动频率下,随着波动幅度的增加,分离性能会稍有下降,并且水口处的流动会受到明显影响。一个显着的发现是,倾向于留在套管上和/或在DMC中具有更长停留时间的近重力粒子比其他粒子受到的影响更大。这项工作表明,这种双向耦合的CFD-DEM模型可能是研究DMC中流动动力学的有用工具。

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