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Multiscale modeling of fixed-bed reactors with porous (open-cell foam) non-spherical particles: Hydrodynamics

机译:多孔床反应器的多尺度建模与多孔(开放式电池泡沫)非球形粒子:流体动力学

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Graphical abstractDisplay OmittedAbstractAn accurate numerical model is proposed to simulate flow through cylindrical fixed-bed reactors with randomly packed porous non-spherical particles. The length scale for flow outside the porous particles (made of open-cell foam) isO(102)higher than the size of the internal micro-pores of the particles. To capture the flow at these two different length scales, a multiscale modeling approach, derived using volume averaging theory (VAT), is developed. The flow through and around the porous particles is computed as a single hydrodynamic field in a Cartesian computational domain. The flow within the inter-particle space is fully resolved, whereas, flow at the scale of the intra-particle micro-pores is not resolved and instead represented by closure terms. Random packings of cubic and cuboid particles in cylindrical columns of different diameter are generated using a glued-sphere Discrete Element Method (DEM) approach. The packing structures for different particle-column combinations are analysed. The effects of particle size/shape, column diameter and internal porosity of the particles on the overall pressure drop and flow distribution are investigated. The macroscopic Reynolds number (based on the particle equivalent diameter and the superficial velocity of the bed) is varied from 0.1 to 400. The effect of Reynolds number on pressure drop is analyzed, as well as the reduction in pressure drop due to the presence of the intra-particle pores. In addition, our numerical simulations have helped to elucidate the detailed fluid-solid interaction in complex bi-disperse, dual porosity porous media.]]>
机译:<![cdata [ 图形抽象 显示省略 抽象 提出了一种精确的数值模型,以模拟通过随机包装多孔非球形颗粒的圆柱形固定床反应器的流动。多孔颗粒外的流动长度(开放式电池泡沫制成)是 o 10 2 高于粒子内部微孔的大小。为了在这两个不同的长度尺度上捕获流量,开发了使用音量平均理论(增值税)的多尺度建模方法。多孔颗粒流过和周围的流动被计算为笛卡尔计算域中的单个流体动力场。颗粒间空间内的流动完全分辨,而在颗粒内微孔的比例下不被解析并由闭合术语表示。使用胶合球离散元件(DEM)方法产生不同直径的圆柱形柱中的立方体和长方体颗粒的随机包装。分析了不同粒子柱组合的包装结构。研究了粒度/形状,柱直径和内部孔隙率在整体压降和流量分布上的影响。宏观雷诺数(基于颗粒当量直径和床的浅表速度)从0.1到400变化。分析雷诺数对压降的影响,以及由于存在而降低压降颗粒内孔隙。此外,我们的数值模拟有助于阐明复杂双孔隙率多孔介质中的详细流体固体相互作用。 ] ]

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