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CFD Modeling and X-Ray Imaging of Biomass in a Fluidized Bed
Author(s) -
Mirka Deza,
Nathan P. Franka,
Theodore J. Heindel,
Francine Battaglia
Publication year - 2009
Publication title -
journal of fluids engineering
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.529
H-Index - 103
eISSN - 1528-901X
pISSN - 0098-2202
DOI - 10.1115/1.4000257
Subject(s) - sphericity , fluidized bed , mechanics , computational fluid dynamics , fluidization , drag , biomass (ecology) , particle (ecology) , materials science , eulerian path , flow (mathematics) , parametric statistics , work (physics) , cfd dem , environmental science , thermodynamics , mathematics , physics , geology , lagrangian , composite material , statistics , mathematical physics , oceanography
Computational modeling of fluidized beds can be used to predict the operation of biomass gasifiers after extensive validation with experimental data. The present work focused on validating computational simulations of a fluidized bed using a multifluid Eulerian― Eulerian model to represent the gas and solid phases as interpenetrating continua. Simulations of a cold-flow glass bead fluidized bed, using two different drag models, were compared with experimental results for model validation. The validated numerical model was then used to complete a parametric study for the coefficient of restitution and particle sphericity, which are unknown properties of biomass. Biomass is not well characterized, and so this study attempts to demonstrate how particle properties affect the hydrodynamics of a fluidized bed. Hydrodynamic results from the simulations were compared with X-ray flow visualization computed tomography studies of a similar bed. It was found that the Gidaspow (blending) model can accurately predict the hydrodynamics of a biomass fluidized bed. The coefficient of restitution of biomass did not affect the hydrodynamics of the bed for the conditions of this study; however, the bed hydrodynamics were more sensitive to particle sphericity variation.

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