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首页> 外文期刊>Powder Technology: An International Journal on the Science and Technology of Wet and Dry Particulate Systems >Numerical modelling of an optical belt sorter using a DEM-CFD approach coupled with particle tracking and comparison with experiments
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Numerical modelling of an optical belt sorter using a DEM-CFD approach coupled with particle tracking and comparison with experiments

机译:使用DEM-CFD方法与粒子跟踪和实验比较的光带分选机的数值模拟

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State-of-the-art optical sorting systems suffer from delays between the particle detection and separation stage, during which the material movement is not accounted for. Commonly line scan cameras, using simple assumptions to predict the future particle movement, are employed. In this study, a novel prediction approach is presented, where an area scan camera records the particle movement over multiple time steps and a tracking algorithm is used to reconstruct the corresponding paths to determine the time and position at which the material reaches the separation stage. In order to assess the benefit of such a model at different operating parameters, an automated optical belt sorter is numerically modelled and coupled with the tracking procedure. The Discrete Element Method (DEM) is used to describe the particle-particle as well as particle-wall interactions, while the air nozzles required for deflecting undesired material fractions are described with Computational Fluid Dynamics (CFD). The accuracy of the employed numerical approach is ensured by comparing the separation results of a predefined sorting task with experimental investigations. The quality of the aforementioned prediction models is compared when utilizing different belt lengths, nozzle activation durations, particle types, sampling frequencies and detection windows. Results show that the numerical model of the optical belt sorter is able to accurately describe the sorting system and is suitable for detailed investigation of various operational parameters. The proposed tracking prediction model was found to be superior to the common line scan camera method in all investigated scenarios. Its advantage is especially profound when difficult sorting conditions, e.g. short conveyor belt lengths or uncooperative moving bulk solids, apply. (C) 2018 Elsevier B.V. All rights reserved.
机译:最先进的光学分选系统遭受粒子检测和分离阶段之间的延迟,在此期间不占材料移动。使用简单的假设来预测未来粒子运动的常用扫描相机。在该研究中,提出了一种新的预测方法,其中区域扫描相机在多个时间步骤中记录粒子移动,并且跟踪算法用于重建相应的路径以确定材料到达分离阶段的时间和位置。为了评估在不同的操作参数下这种模型的益处,自动光带分拣机在数量上进行模拟并与跟踪过程耦合。离散元件方法(DEM)用于描述粒子粒子以及粒子壁相互作用,而偏转不希望的材料级分需要的空气喷嘴描述了计算流体动力学(CFD)。通过将预定义的分类任务的分离结果与实验研究比较来确保采用的数值方法的准确性。在利用不同的带长度,喷嘴激活持续时间,粒子类型,采样频率和检测窗口时比较上述预测模型的质量。结果表明,光带分拣机的数值模型能够精确描述分拣系统,适用于各种操作参数的详细研究。发现所提出的跟踪预测模型在所有调查方案中优于共用线扫描相机方法。当困难的分类条件时,它的优点是特别深刻的,例如,涂抹短输送带长度或不合作的移动散装固体。 (c)2018 Elsevier B.v.保留所有权利。

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