Drag models for simulating gas-solid flow in the turbulent fluidization of FCC particles

被引:66
作者
Li, Peng [1 ]
Lan, Xingying [1 ]
Xu, Chunming [1 ]
Wang, Gang [1 ]
Lu, Chunxi [1 ]
Gao, Jinsen [1 ]
机构
[1] China Univ Petr, State Key Lab Heavy Oil Proc, Beijing 102249, Peoples R China
基金
中国国家自然科学基金;
关键词
Turbulent fluidized bed; FCC particle; Drag model; CFD; CFD SIMULATION; KINETIC-THEORY; 2-FLUID MODEL; BED; RISER; HYDRODYNAMICS; COEFFICIENT; VALIDATION; CATALYSTS;
D O I
10.1016/j.partic.2009.03.010
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
This paper examines the suitability of various drag models for predicting the hydrodynamics of the turbulent fluidization of FCC particles on the Fluent V6.2 platform. The drag models included those of Syamlal-O'Brien, Gidaspow, modified Syamlal-O'Brien, and McKeen. Comparison between experimental data and simulated results showed that the Syamlal-O'Brien, Gidaspow, and modified Syamlal-O'Brien drag models highly overestimated gas-solid momentum exchange and could not predict the formation of dense phase in the fluidized bed, while the McKeen drag model could not capture the dilute characteristics due to underestimation of drag force. The standard Gidaspow drag model was then modified by adopting the effective particle cluster diameter to account for particle clusters, which was, however, proved inapplicable for FCC particle turbulent fluidization. A four-zone drag model (dense phase, sub-dense phase, sub-dilute phase and dilute phase) was finally proposed to calculate the gas-solid exchange coefficient in the turbulent fluidization of FCC particles, and was validated by satisfactory agreement between prediction and experiment. (C) 2009 Chinese Society of Particuology and Institute of Process Engineering, Chinese Academy of Sciences. Published by Elsevier B.V. All rights reserved.
引用
收藏
页码:269 / 277
页数:9
相关论文
共 24 条
[1]   Numerical study of segregation using a new drag force correlation for polydisperse systems derived from lattice-Boltzmann simulations [J].
Beetstra, R. ;
van der Hoef, M. A. ;
Kuipers, J. A. M. .
CHEMICAL ENGINEERING SCIENCE, 2007, 62 (1-2) :246-255
[2]   Simulation of particles and gas flow behavior in the riser section of a circulating fluidized bed using the kinetic theory approach for the particulate phase [J].
Benyahia, S ;
Arastoopour, H ;
Knowlton, TM ;
Massah, H .
POWDER TECHNOLOGY, 2000, 112 (1-2) :24-33
[3]   HYDRODYNAMICS OF CIRCULATING FLUIDIZED-BED RISERS - A REVIEW [J].
BERRUTI, F ;
CHAOUKI, J ;
GODFROY, L ;
PUGSLEY, TS ;
PATIENCE, GS .
CANADIAN JOURNAL OF CHEMICAL ENGINEERING, 1995, 73 (05) :579-602
[4]  
Cao B., 2004, 2 INT S MULT NONN RE
[5]  
CAO B, 2006, THESIS CHINA U PETRO
[6]   Numerical modeling of gas-particle flow using a comprehensive kinetic theory with turbulence modulation [J].
Chan, CK ;
Guo, YC ;
Lau, KS .
POWDER TECHNOLOGY, 2005, 150 (01) :42-55
[7]   CFD simulation of gas solid flow in FCC strippers [J].
Gao, Jinsen ;
Chang, Jian ;
Xu, Chunming ;
Lan, Xingying ;
Yang, Yong .
CHEMICAL ENGINEERING SCIENCE, 2008, 63 (07) :1827-1841
[8]   CFD Modeling and Validation of the Turbulent Fluidized Bed of FCC Particles [J].
Gao, Jinsen ;
Lan, Xingying ;
Fan, Yiping ;
Chang, Jian ;
Wang, Gang ;
Lu, Chunxi ;
Xu, Chunming .
AICHE JOURNAL, 2009, 55 (07) :1680-1694
[9]   GENERALIZED FRICTION FACTOR AND DRAG COEFFICIENT CORRELATIONS FOR FLUID PARTICLE INTERACTIONS [J].
GIBILARO, LG ;
DIFELICE, R ;
WALDRAM, SP ;
FOSCOLO, PU .
CHEMICAL ENGINEERING SCIENCE, 1985, 40 (10) :1817-1823
[10]  
Gidaspow D., 1994, Multiphase Flow and Fluidization, P1