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Discrete particle simulation of solid flow in a three-dimensional blast furnace sector model

机译:三维高炉扇形模型中固体流的离散粒子模拟

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The application of the discrete element method (DEM) to industry processes often encounters difficulties because of the high computational demand. Two-dimensional slot models are often a preferable solution to reduce the demand; however it may experience significant deviations from the reality. The sector model with circumferential periodic boundary conditions is an alternative tool to solve this problem, and has been established in our previous work. In this work, such a sector model is used to examine the solid flow features in an ironmaking blast furnace, and the results are compared with those obtained from the corresponding slot model. Several significant differences of solid flow can be observed between the two models, such as the larger stagnant zone and quasi-stagnant zone, smaller funnel zones in the slot model and different layer shapes. The solid flow with the pre-set cohesive zone also confirms that the slot model is not accurate to describe the anisotropic features of solid flow in the tangential direction in a cylinder vessel. The gas flow in the raceway region also shows a slight difference between the two models. It has demonstrated that to realistically describe the three-dimensional solid flow characteristics, the sector model should be used in the future studies of multiphase flow in a blast furnace. (C) 2014 Elsevier B.V. All rights reserved.
机译:由于高计算需求,将离散元素方法(DEM)应用于工业过程通常会遇到困难。二维插槽模型通常是减少需求的首选解决方案。但是,它可能会与现实发生重大偏差。具有周向周期性边界条件的扇形模型是解决此问题的替代工具,并且在我们之前的工作中已经建立。在这项工作中,使用这种扇形模型检查炼铁高炉中的固体流动特征,并将结果与​​从相应的槽缝模型获得的结果进行比较。在两个模型之间可以观察到固相流动的几个显着差异,例如较大的停滞区和准停滞区,缝隙模型中的漏斗区较小以及不同的层形状。具有预设内聚区的固体流还证实了槽模型不能准确地描述圆柱容器中切线方向上固体流的各向异性特征。滚道区域中的气流在两个模型之间也显示出细微差别。结果表明,要真实地描述三维固相流动特性,在未来高炉多相流研究中应使用扇形模型。 (C)2014 Elsevier B.V.保留所有权利。

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