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Lim, Hankwon
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An assessment of drag models in eulerian–eulerian cfd simulation of gas–solid flow hydrodynamics in circulating fluidized bed riser

Author(s)
Upadhyay, MukeshKim, AyeonKim, HeehyangLim, DongjunLim, Hankwon
Issued Date
2020-06
DOI
10.3390/chemengineering4020037
URI
https://scholarworks.unist.ac.kr/handle/201301/52867
Fulltext
https://www.mdpi.com/2305-7084/4/2/37
Citation
ChemEngineering, v.4, no.2, pp.1 - 19
Abstract
Accurate prediction of the hydrodynamic profile is important for circulating fluidized bed (CFB) reactor design and scale-up. Multiphase computational fluid dynamics (CFD) simulation with interphase momentum exchange is key to accurately predict the gas-solid profile along the height of the riser. The present work deals with the assessment of six different drag model capability to accurately predict the riser section axial solid holdup distribution in bench scale circulating fluidized bed. The difference between six drag model predictions were validated against the experiment data. Two-dimensional geometry, transient solver and Eulerian–Eulerian multiphase models were used. Six drag model simulation predictions were discussed with respect to axial and radial profile. The comparison between CFD simulation and experimental data shows that the Syamlal-O’Brien, Gidaspow, Wen-Yu and Huilin-Gidaspow drag models were successfully able to predict the riser upper section solid holdup distribution with better accuracy, however unable to predict the solid holdup transition region. On the other hand, the Gibilaro model and Helland drag model were successfully able to predict the bottom dense region, but the upper section solid holdup distribution was overpredicted. The CFD simulation comparison of different drag model has clearly shown the limitation of the drag model to accurately predict overall axial heterogeneity with accuracy. © 2020 by the authors. Licensee MDPI, Basel, Switzerland.
Publisher
MDPI AG
ISSN
2305-7084
Keyword (Author)
Drag modelsEulerian–eulerian2D simulationCirculating fluidized bed riserComputational fluid dynamics

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