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Computational study of the multiphase flow in a dense medium cyclone: Effect of particle density

机译:稠密介质旋风分离器中多相流的计算研究:颗粒密度的影响

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摘要

Dense medium cyclone (DMC) is widely used to upgrade run-of-mine coal in the coal industry. The flow within it is very complicated, with four phases (water, air, fine magnetite and coal) involved. To date, the underlying fundamentals are not well understood. In this work, the effect of particle density on the flow in a DMC is numerically studied to understand why coal type matters in DMC operation. The model used is a combined approach of discrete element method (DEM) and computational fluid dynamics (CFD). In the model, the motion of discrete mineral particles is obtained by DEM and the flow of medium (mixture of water, air and fine magnetites) phase by the traditional CFD. 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 particles of different densities have significantly different effects on the flow in a DMC. The operational pressure, medium split and differential all decrease with the increase of particle density. The underlying mechanism is that different trajectories of particles of different densities lead to different spatial distributions of particle-fluid interaction forces which in turn yield different effects on the flow. The findings are useful to better understanding, designing and operating this complicated multiphase flow system.
机译:重度旋风分离器(DMC)在煤炭工业中广泛用于升级原煤。其中的流动非常复杂,涉及四个阶段(水,空气,细磁铁矿和煤)。迄今为止,尚不清楚其基本原理。在这项工作中,通过数值研究了颗粒密度对DMC中流动的影响,以了解为什么煤类型在DMC操作中很重要。使用的模型是离散元素方法(DEM)和计算流体力学(CFD)的组合方法。在该模型中,离散矿物颗粒的运动是通过DEM获得的,而介质(水,空气和细磁铁矿的混合物)的相流是通过传统CFD获得的。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,不同密度的颗粒对DMC中的流动具有明显不同的影响。随着颗粒密度的增加,工作压力,介质分裂和压差都减小。潜在的机理是,不同密度的粒子的不同轨迹会导致粒子-流体相互作用力的空间分布不同,进而对流动产生不同的影响。这些发现有助于更好地理解,设计和操作这种复杂的多相流系统。

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