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The Use of Computational Fluid Dynamics and Discrete Element Modeling to Understand the Effect of Cell Size and Inflow Rate on Flotation Bank Retention Time Distribution and Mechanism Performance

机译:计算流体动力学和离散元素建模的使用来了解电池尺寸和流入率对浮选体保留时间分布和机制性能的影响

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The recent combination of Computational Fluid Dynamics (CFD) and Discrete Element Modeling (DEM) can provide considerable insight into the performance of flotation cells. One area of interest from a fundamental equipment design perspective has been the influence of flotation cell size and the inflow rate on the metallurgical performance of the cell. One of the specific design objectives when increasing the size of flotation cells, or increasing the feed flow to the flotation cell, is to ensure that the feed stream flowing into the cell does not have an opportunity to bypass the mechanism. This paper describes the initial modeling efforts to quantify the inter-relationship of cell size, inflow rates, and feed and discharge box placement, on the retention time distribution of solids in the flotation cell, and the fraction of particles that bypass the mechanism on a size by size basis.
机译:最近的计算流体动力学(CFD)和离散元素建模(DEM)的组合可以提供相当大的见解浮选细胞的性能。来自基本设备设计视角的一个感兴趣领域一直是浮选细胞尺寸和流入率对细胞冶金性能的影响。当增加浮选细胞尺寸或增加进给流到浮选电池的进料流的特定设计目标之一是确保流入电池的进料流没有机会绕过机构。本文介绍了量化细胞尺寸,流入速率和饲料和排出箱放置的相互关系的初始建模努力,在浮选细胞中固体的保留时间分布,以及绕过机构的颗粒的分数大小按大小为基础。

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