Please use this identifier to cite or link to this item: http://bura.brunel.ac.uk/handle/2438/18973
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dc.contributor.authorKhezri, R-
dc.contributor.authorWan Ab Karim Ghani, WA-
dc.contributor.authorMasoudi Soltani, S-
dc.contributor.authorAwang Biak, DR-
dc.contributor.authorYunus, R-
dc.contributor.authorSilas, K-
dc.contributor.authorShahbaz, M-
dc.contributor.authorRezaei Motlagh, S-
dc.date.accessioned2019-08-20T10:45:35Z-
dc.date.available2019-08-20T10:45:35Z-
dc.date.issued2019-08-08-
dc.identifierORCID iD: Salman Masoudi Soltani Salman Masoudi Soltani-
dc.identifier524-
dc.identifier.citationKhezri et al. (2019) ‘Computational Fluid Dynamics Simulation of Gas–Solid Hydrodynamics in a Bubbling Fluidized-Bed Reactor: Effects of Air Distributor, Viscous and Drag Models’, Processes, 7 (8), 524, pp.1 - 16 . doi: 10.3390/pr7080524.en_US
dc.identifier.urihttps://bura.brunel.ac.uk/handle/2438/18973-
dc.description.abstractCopyright © 2019 by the authors. In this work, we employed a computational fluid dynamics (CFD)-based model with a Eulerian multiphase approach to simulate the fluidization hydrodynamics in biomass gasification processes. Air was used as the gasifying/fluidizing agent and entered the gasifier at the bottom which subsequently fluidized the solid particles inside the reactor column. The momentum exchange related to the gas-phase was simulated by considering various viscous models (i.e., laminar and turbulence models of the re-normalisation group (RNG), k-ε and k-ω). The pressure drop gradient obtained by employing each viscous model was plotted for different superficial velocities and compared with the experimental data for validation. The turbulent model of RNG k-Ɛ was found to best represent the actual process. We also studied the effect of air distributor plates with different pore diameters (2, 3 and 5 mm) on the momentum of the fluidizing fluid. The plate with 3-mm pores showed larger turbulent viscosities above the surface. The effects of drag models (Syamlal–O’Brien, Gidaspow and energy minimum multi-scale method (EMMS) on the bed’s pressure drop as well as on the volume fractions of the solid particles were investigated. The Syamlal–O’Brien model was found to forecast bed pressure drops most consistently, with the pressure drops recorded throughout the experimental process. The formation of bubbles and their motion along the gasifier height in the presence of the turbulent flow was seen to follow a different pattern from with the laminar flow.en_US
dc.description.sponsorshipMinistry of Higher Education (MOHE) Malaysia via LRGS grant (Grant No. LRGS/2013/UKM/PT); Engineering and Physical Sciences Research Council through the BEFEW project (Grant No. EP/P018165/1).en_US
dc.format.extent1 - 16-
dc.language.isoenen_US
dc.publisherMDPIen_US
dc.rightsCopyright © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).-
dc.rights.urihttps://creativecommons.org/licenses/by/4.0/-
dc.subjectsasificationen_US
dc.subjectfluidized beden_US
dc.subjectCFDen_US
dc.subjecthydrodynamicsen_US
dc.subjectmultiphase flowen_US
dc.titleComputational Fluid Dynamics Simulation of Gas-Solid Hydrodynamics in a Bubbling Fluidized-Bed Reactor: Effects of Air Distributor, Viscous and Drag Modelsen_US
dc.typeArticleen_US
dc.identifier.doihttps://doi.org/10.3390/pr7080524-
dc.relation.isPartOfProcesses-
pubs.issue8-
pubs.publication-statusPublished-
pubs.volume7-
dc.identifier.eissn2227-9717-
dc.rights.holderThe authors-
Appears in Collections:Dept of Chemical Engineering Research Papers

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