Title of article :
Mixing and segregation of solid mixtures in bubbling fluidized beds under conditions pertinent to the fuel reactor of a chemical looping system
Author/Authors :
Peng، نويسنده , , Zhengbiao and Doroodchi، نويسنده , , Elham and Alghamdi، نويسنده , , Yusif and Moghtaderi، نويسنده , , Behdad، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2013
Abstract :
Performance of chemical looping combustion processes can be improved drastically by enhancing the overall redox characteristics of the system through the use of binary mixtures of oxygen carriers. However, binary mixtures of oxygen carrier particles are often found to differ in both size and density and therefore have the tendency to segregate under certain operating conditions.
s work, a numerical study was conducted to investigate the mixing and segregation behaviour of binary mixtures of particles with different sizes and densities in a bubbling fluidized bed under conditions pertinent to the fuel reactor of a cold flow model (i.e. a non-reacting replica) of a 10 kWth chemical looping combustor. The motion of particles was tracked individually by discrete element model (DEM), whilst the gas flow was modelled by computational fluid dynamics (CFD). Gas–particle interactions were considered by a two-way coupling method. Further, a modified version of Laceyʹs method was developed to calculate the mixing index, taking into account both the heterogeneity of solids spatial distribution and particle size differences.
s showed that the modified Laceyʹs method provided very consistent and stable mixing indexes, proving to be effective for an in-situ quantitative description of mixing. It was also found that as the size ratio of the binary mixture of particles reduced, the mixing index increased indicating better mixing conditions. The agreement between the DEM/CFD model predictions and the experimental data was found to be satisfactory. The optimum conditions for mixing of binary mixtures appeared to be a function of bubble size, bubble rising rate and bubbling dynamics (e.g., splitting and coalescence). Application of the DEM/CFD model for prediction of layer inversion phenomenon in gas–solid fluidized beds was also demonstrated.
Keywords :
Two-way coupling DEM/CFD , Solids mixing and segregation , Bubbling fluidized bed , Fuel reactor of chemical looping combustor , Different particle sizes and densities , Mixing index
Journal title :
Powder Technology
Journal title :
Powder Technology