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CFD simulation of a fluidized bed using the EMMS approach for the gas-solid drag force

机译:使用EMMS方法对气固阻力进行流化床CFD模拟

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摘要

Drag force is one of the main contributing factors in describing the hydrodynamics of gas-solid flow systems. In fact, the drag force is the primary coupling force between the fluid and particulate phases. Therefore, accurate prediction of the drag is the goal of the present study. Flow of particulate solids in gas-solid flow systems is inherently heterogeneous due to different attraction and repulsion forces between the particles. The assumption of a homogeneous system leads to unrealistic predictions of system characteristics for different gas-solid regimes, e.g., bubbling fluidized beds and circulating fluidized beds. In the literature, several approaches have been developed to encounter the effect of heterogeneities inside the system, e.g., EMMS (Energy Minimization Multi-Scale) and subgrid filtering approaches. In this study, an EMMS approach was applied to a fluidized bed operating at the ranges between the bubbling regime and packed bed. The result of 2D simulations in a fluidized bed was compared with both experimental data and homogeneous models. Simulation results using the EMMS approach showed very good agreement with the Krishna [20] bed expansion experimental data, while the modeling using homogeneous drag force diverged considerably from the experimental data. (C) 2015 Elsevier B.V. All rights reserved.
机译:阻力是描述气固流系统水动力的主要因素之一。实际上,阻力是流体相和颗粒相之间的主要耦合力。因此,准确预测阻力是本研究的目标。由于颗粒之间的吸引力和排斥力不同,气固流系统中的固体颗粒流动固有地是不均匀的。均质系统的假设导致对不同气固状态(例如鼓泡流化床和循环流化床)的系统特性进行不切实际的预测。在文献中,已经开发了几种方法来遇到系统内部的异质性的影响,例如,EMMS(能量最小化多尺度)和子网格过滤方法。在这项研究中,EMMS方法应用于流化床和鼓泡床和填充床之间的范围内的流化床。将流化床中的2D模拟结果与实验数据和均质模型进行了比较。使用EMMS方法的仿真结果显示与Krishna [20]床膨胀实验数据非常吻合,而使用均匀阻力的建模与实验数据相差很大。 (C)2015 Elsevier B.V.保留所有权利。

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