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Rotation characteristic and granular temperature analysis in a bubbling fluidized bed of binary particles 被引量:2

Rotation characteristic and granular temperature analysis in a bubbling fluidized bed of binary particles
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摘要 In this work, a discrete particle model (DPM) was applied to investigate the dynamic characteristics in a gas-solid bubbling fluidized bed of binary solid particles. The solid phase was simulated by the hard- sphere discrete particle model. The large eddy simulation (LES) method was used to simulate the gas phase. To improve the accuracy of the simulation, an improved sub-grid scale (SGS) model in the LES method was also applied. The mutative Smagorinsky constant case was compared with the previously published experimental data. The simulation by the mutative Smagorinsky constant model exhibited better agreement with the experimental data than that by the common invariant Smagorinsky constant model. Various restitution coefficients and different compositions of binary solids were investigated to determine their influences on the rotation characteristics and granular temperatures of the particles. The particle translational and rotational characteristic distributions were related to certain simulation parameters. In this work, a discrete particle model (DPM) was applied to investigate the dynamic characteristics in a gas-solid bubbling fluidized bed of binary solid particles. The solid phase was simulated by the hard- sphere discrete particle model. The large eddy simulation (LES) method was used to simulate the gas phase. To improve the accuracy of the simulation, an improved sub-grid scale (SGS) model in the LES method was also applied. The mutative Smagorinsky constant case was compared with the previously published experimental data. The simulation by the mutative Smagorinsky constant model exhibited better agreement with the experimental data than that by the common invariant Smagorinsky constant model. Various restitution coefficients and different compositions of binary solids were investigated to determine their influences on the rotation characteristics and granular temperatures of the particles. The particle translational and rotational characteristic distributions were related to certain simulation parameters.
出处 《Particuology》 SCIE EI CAS CSCD 2015年第1期76-88,共13页 颗粒学报(英文版)
基金 financially supported by the National Natural Science Foundation of China(Grant No.51322601) the National Natural Science Foundation of China-China National Petroleum Corporation Joint Fund of Petrochemical Engineering(U1162122) the Fundamental Research Funds for the Central Universities (Grant No.HIT.BRETIV.201315)
关键词 Smagorinsky constant Rotational characteristics Binary mixture particles Large eddy simulation Discrete hard sphere mode Smagorinsky constant Rotational characteristics Binary mixture particles Large eddy simulation Discrete hard sphere mode
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