Publication | Open Access
Experimental and numerical investigation of sands and Geldart A biomass co‐fluidization
33
Citations
48
References
2020
Year
EngineeringBioenergyFluid MechanicsMechanical EngineeringSegregated BedSands–biomass MixingGranular MediumBiomass PyrolysisBiomass ConversionFluid PropertiesParticle-laden FlowBiomass UtilizationHydromechanicsDisperse FlowMultiphase FlowSediment TransportNumerical InvestigationBiomass ResourceCivil EngineeringFluid-solid InteractionBiomass CharacterizationSands–biomass MixturesSedimentation
Abstract This article investigated the fluidization of sands and small Geldart A biomass mixtures. The mixture fluidized like Geldart A type particles with a uniform bed expansion regime before bubbling. The video recorded color distance between pure sands and sands–biomass mixtures was used to estimate the sands–biomass mixing. The coarse‐grained computational fluid dynamics–discrete element method with a hybrid drag model which couples the Syamlal–O'Brien drag and a filtered drag can capture the mixing while the simulation with Gidaspow drag predicted a segregated bed. The simulations were further validated with experimental measured pressure drops. The time averaged pressure drop equals the weight of the bed material, however, its fluctuation is about three times of the bed material fluctuation.
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