TY - JOUR
T1 - Three-dimensional fluidized beds with rough spheres : validation of a two fluid model by magnetic particle tracking and discrete particle simulations
AU - Yang, L.
AU - Padding, J.T.
AU - Buist, K.A.
AU - Kuipers, J.A.M.
PY - 2017/12/31
Y1 - 2017/12/31
N2 - Two fluid model simulations based on our recently introduced kinetic theory of granular flow (KTGF) for rough spheres and rough walls, are validated for the first time for full three-dimensional (3D) bubbling fluidized beds. The validation is performed by comparing with experimental data from Magnetic Particle Tracking and more detailed Discrete Particle Model simulations. The effect of adding a third dimension is investigated by comparing pseudo-2D and full 3D bubbling fluidized beds containing inelastic rough particles. Spatial distributions of key hydrodynamic data as well as energy balances in the fluidized bed are compared. In the pseudo-2D bed, on comparison with the KTGF derived by Jenkins and Zhang, we find that the present KTGF improves the prediction of bed hydrodynamics. In the full 3D bed, particles are more homogeneously distributed in comparison with the pseudo-2D bed due to a decrease of the frictional effect from the front and back walls. The new model results are in good agreement with experimental data and discrete particle simulations for the time-averaged bed hydrodynamics.
AB - Two fluid model simulations based on our recently introduced kinetic theory of granular flow (KTGF) for rough spheres and rough walls, are validated for the first time for full three-dimensional (3D) bubbling fluidized beds. The validation is performed by comparing with experimental data from Magnetic Particle Tracking and more detailed Discrete Particle Model simulations. The effect of adding a third dimension is investigated by comparing pseudo-2D and full 3D bubbling fluidized beds containing inelastic rough particles. Spatial distributions of key hydrodynamic data as well as energy balances in the fluidized bed are compared. In the pseudo-2D bed, on comparison with the KTGF derived by Jenkins and Zhang, we find that the present KTGF improves the prediction of bed hydrodynamics. In the full 3D bed, particles are more homogeneously distributed in comparison with the pseudo-2D bed due to a decrease of the frictional effect from the front and back walls. The new model results are in good agreement with experimental data and discrete particle simulations for the time-averaged bed hydrodynamics.
KW - Discrete Particle Model
KW - Fluidization
KW - Frictional Collision
KW - Magnetic Particle Tracking
KW - Rough particles
KW - Two-Fluid Model
KW - Frictional collision
UR - http://www.scopus.com/inward/record.url?scp=85029363286&partnerID=8YFLogxK
U2 - 10.1016/j.ces.2017.09.014
DO - 10.1016/j.ces.2017.09.014
M3 - Article
SN - 0009-2509
VL - 174
SP - 238
EP - 258
JO - Chemical Engineering Science
JF - Chemical Engineering Science
ER -