4.5 Article

EMMS drag model for simulating a gas-solid fluidized bed of geldart B particles: Effect of bed model parameters and polydisperity

Journal

PARTICUOLOGY
Volume 51, Issue -, Pages 142-154

Publisher

ELSEVIER SCIENCE INC
DOI: 10.1016/j.partic.2019.10.004

Keywords

CFD simulation; Energy minimization multi-scale drag; Gas-solid fluidized bed; Polydisperity; Fluidized-bed reactor

Funding

  1. Korea Electric Power Corporation [R18XA06-14]
  2. Human Resources Development of the Korea Institute of Energy Technology Evaluation and Planning (KETEP) grant - Korea government Ministry of Trade, Industry and Energy [20184030202070]

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The energy minimization multi-scale (EMMS) is a heterogeneous drag model widely used to simulate gas-solid fluidized beds. In this work, we conducted computational fluid dynamics simulations of a gas-solid fluidized bed for Geldart B particles to compare the EMMS with the homogeneous Gidaspow drag model. The results from both the homogeneous and heterogeneous drag models were compared with literature experimental data on pressure drop and bed expansion. There was no noticeable difference in predicted bed characteristics in the slugging regime. However, in the turbulent regime, the EMMS model predicted slightly lower bed expansion than did the Gidaspow model. We evaluated the effects of solid-solid and solid-wall interaction parameters by varying the restitution and specularity coefficients. Bed expansion increases by a factor of 1.05-1.08 when the restitution coefficient increases from 0.9 to 0.99. The models predict a higher solid volume fraction and higher solid downflow velocity near the wall for a low specularity coefficient of 0.01 or 0. When we considered solid phases of different sizes to model polydisperity, the simulation predicted vertical segregation of 300, 350, and 400 mu m in the fluidized region due to gravity. Furthermore, the drag models made similar predictions in bad characteristics from cold model simulation of a polysilicon fluidized-bed reactor, although there was very little vertical segregation of solid particles for this case. (C) 2019 Chinese Society of Particuology and Institute of Process Engineering, Chinese Academy of Sciences. Published by Elsevier B.V. All rights reserved.

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