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Novel fluid grid and voidage calculation techniques for a discrete element model of a 3D cylindrical fluidized bed

机译:新型3D圆柱流化床离散元模型的流体网格和空隙率计算技术

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摘要

A discrete element model (DEM) combined with computational fluid dynamics (CFD) was developed to model particle and fluid behaviour in 3D cylindrical fluidized beds. Novel techniques were developed to (1) keep fluid cells, defined in cylindrical coordinates, at a constant volume in order to ensure the conditions for validity of the volume-averaged fluid equations were satisfied and (2) smoothly and accurately measure voidage in arbitrarily shaped fluid cells. The new technique for calculating voidage was more stable than traditional techniques, also examined in the paper, whilst remaining computationally-effective. The model was validated by quantitative comparison with experimental results from the magnetic resonance imaging of a fluidised bed analysed to give time-averaged particle velocities. Comparisons were also made between theoretical determinations of slug rise velocity in a tall bed. It was concluded that the DEM-CFD model is able to investigate aspects of the underlying physics of fluidisation not readily investigated by experiment.
机译:开发了结合计算流体动力学(CFD)的离散元素模型(DEM),以对3D圆柱流化床中的颗粒和流体行为进行建模。开发了新技术以(1)将在圆柱坐标系中定义的流体单元保持恒定的体积,以确保满足体积平均流体方程的有效性条件,以及(2)平滑且准确地测量任意形状的空隙流体细胞。计算空隙度的新技术比传统技术更稳定,该技术也在本文中进行了检验,同时保持了计算效率。通过与流化床磁共振成像的实验结果进行定量比较,对模型进行了验证,分析结果给出了时间平均的粒子速度。在高床中bed上升速度的理论测定之间也进行了比较。得出的结论是,DEM-CFD模型能够研究流态化的基本物理方面,而这些方面很难通过实验进行研究。

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