Optimum catalyst size for slurry bubble column reactors

被引:11
作者
Gamwo, IK
Gidaspow, D [1 ]
Jung, JW
机构
[1] IIT, Dept Environm Chem & Engn, Chicago, IL 60616 USA
[2] US DOE, Natl Energy Technol Lab, Pittsburgh, PA 15236 USA
关键词
D O I
10.1021/ie049205x
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
A mathematical model to describe the hydrodynamics of the slurry bubble-column reactor (SBCR) for converting synthesis gas into liquid fuels has been developed. This model includes the complete granular temperature balance based on the kinetic theory of granular flow. The kinetic theory model and the computer code(1) were extended to include the effect of the mass-transfer coefficient between the liquid and gas and the water gas shift reaction in the Air Products/DOE LaPorte SBCR. In this model, the mass-transfer coefficient is an input. It was estimated from a relationship between the fundamental equations of the boundary layers and the turbulent kinetic energy of particles (granular temperature) computed by the hydrodynamic model with no reaction. We have varied the particle size from 20 to 100 mu m and discovered a maximum in the granular temperature. For the particles over this range, the mass-transfer coefficient has the highest values. With reaction, this model was used to predict the slurry height, gas holdup, and rate of methanol production of the Air Products/DOE LaPorte SBCR. The computed granular temperature was around 30 cm(2)/s(2), and the computed catalyst viscosity was close to 1.0 cP, as shown by Wu and Gidaspow (Chem. Eng. Sci. 2000, 55, 573). The estimated volumetric mass-transfer coefficient has a good agreement with experimental values shown in the literature. A critical issue in the SBCR that has not been addressed in the literature is that of optimum particle size. The optimum size was determined for maximum methanol production in a SBCR. The size was about 60-70 mu m, which was found for maximum granular temperature in the model with no reaction.
引用
收藏
页码:6393 / 6402
页数:10
相关论文
共 38 条
[1]  
*AIR PROD CHEM INC, 1991, LIQ PHAS METH LAP PR
[2]   Mass transfer characteristics in a large-scale slurry bubble column reactor with organic liquid mixtures [J].
Behkish, A ;
Men, ZW ;
Inga, JR ;
Morsi, BI .
CHEMICAL ENGINEERING SCIENCE, 2002, 57 (16) :3307-3324
[3]  
BUYEVICH YA, 1998, WORLD C PART TECHN 3
[4]   Fluid dynamic parameters in bubble columns with internals [J].
Chen, JW ;
Li, F ;
Degaleesan, S ;
Gupta, P ;
Al-Dahhan, MH ;
Dudukovic, MP ;
Toseland, BA .
CHEMICAL ENGINEERING SCIENCE, 1999, 54 (13-14) :2187-2197
[5]  
CLARK GL, 2000, Patent No. 6156809
[6]   Particle granular temperature in gas fluidized beds [J].
Cody, GD ;
Goldfarb, DJ ;
Storch, GV ;
Norris, AN .
POWDER TECHNOLOGY, 1996, 87 (03) :211-232
[7]  
Degaleesan S, 1997, IND ENG CHEM RES, V36, P4670
[8]  
Fogler H. S., 1999, ELEMENTS CHEM REACTI
[9]   CFD models for methanol synthesis three-phase reactors: reactor optimization [J].
Gamwo, IK ;
Halow, JS ;
Gidaspow, D ;
Mostofi, R .
CHEMICAL ENGINEERING JOURNAL, 2003, 93 (02) :103-112
[10]   Hydrodynamic behavior of slurry bubble column at high solids concentrations [J].
Gandhi, B ;
Prakash, A ;
Bergougnou, MA .
POWDER TECHNOLOGY, 1999, 103 (02) :80-94