Experimental Validation of CFD Simulations of a Lab-Scale Fluidized-Bed Reactor with and Without Side-Gas Injection

被引:61
作者
Min, Jian [1 ]
Drake, Joshua B. [2 ]
Heindel, Theodore J. [2 ]
Fox, Rodney O. [1 ]
机构
[1] Iowa State Univ, Dept Chem & Biol Engn, Ames, IA 50010 USA
[2] Iowa State Univ, Dept Mech Engn, Ames, IA 50010 USA
基金
美国国家科学基金会;
关键词
biofuel processing; fluidized-bed reactor; gas holdup; multiphase flow; tomography; NUMERICAL-SIMULATION; FLOW; PARTICLES; DYNAMICS; BIOMASS; BUBBLE; PART;
D O I
10.1002/aic.12077
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Fluidized-bed reactors are widely used in the biofuel industry for combustion, pyrolysis, and gasification processes. In this work, a lab-scale fluidized-bed reactor without and with side-gas injection and filled with 500-600 mu m glass beads is simulated using the computational fluid dynamics (CFD) code Fluent 6.3, and the results are compared to experimental data obtained using pressure measurements and 3D X-ray computed tomography. An initial grid-dependence CFD study is carried out using 2D simulations, and it is shown that a 4-mm grid resolution is sufficient to capture the time- and spatial-averaged local gas holdup in the lab-scale reactor. Full 3D simulations are then compared with the experimental data on 2D vertical slices through the fluidized bed. Both the experiments and CFD simulations without side-gas injection show that in the cross section of the fluidized bed there are two large off-center symmetric regions in which the gas holdup is larger than in the center of the fluidized bed. The 3D simulations using the Syamlal-O'Brien and Gidaspow drag models predict well the local gas holdup variation throughout the entire fluidized bed when compared to the experimental data. In comparison, simulations with the Wen-Yu drag model generally over predict the local gas holdup. The agreement between experiments and simulations with side-gas injection is generally good, where the side-gas injection simulates the immediate volatilization of biomass. However, the effect of the side-gas injection extends further into the fluidized bed in the experiments as compared to the simulations. Overall the simulations under predict the gas dispersion rate above the side-gas injector. (C) 2009 American Institute of Chemical Engineers AIChEJ, 56: 1434-1446, 2010
引用
收藏
页码:1434 / 1446
页数:13
相关论文
共 25 条
[1]   Comparison of catalytic pyrolysis and gasification of Indonesian low rank coals using lab-scale bubble fluidized-bed reactor [J].
Kang, Tae-Jin ;
Park, HyeJung ;
Namkung, Hueon ;
Xu, Li-Hua ;
Fan, Shumin ;
Kim, Hyung-Taek .
KOREAN JOURNAL OF CHEMICAL ENGINEERING, 2017, 34 (04) :1238-1249
[2]   Comparison of catalytic pyrolysis and gasification of Indonesian low rank coals using lab-scale bubble fluidized-bed reactor [J].
Tae-Jin Kang ;
HyeJung Park ;
Hueon Namkung ;
Li-Hua Xu ;
Shumin Fan ;
Hyung-Taek Kim .
Korean Journal of Chemical Engineering, 2017, 34 :1238-1249
[3]   Experimental validation and CFD modeling study of biomass fast pyrolysis in fluidized-bed reactors [J].
Xue, Q. ;
Dalluge, D. ;
Heindel, T. J. ;
Fox, R. O. ;
Brown, R. C. .
FUEL, 2012, 97 :757-769
[4]   Numerical simulations and validation of gas-solid flows in a fluidized-bed roaster based on the CFD-DPM model [J].
Ma, Xue-Yi ;
Wang, De-Xi ;
Liu, Bo ;
Dong, Hui ;
Zhao, Liang .
CANADIAN JOURNAL OF CHEMICAL ENGINEERING, 2023, 101 (11) :6577-6590
[5]   CFD Simulation of Hydrodynamics and Methanation Reactions in a Fluidized-Bed Reactor for the Production of Synthetic Natural Gas [J].
Liu, Yefei ;
Hinrichsen, Olaf .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2014, 53 (22) :9348-9356
[6]   CFD-PBM simulations the effect of aeration rates on hydrodynamics characteristics in a gas-liquid-solid aerobic fluidized bed biofilm reactor [J].
Ren, Jiehui ;
Pei, Yao ;
Zhou, Xiaoping ;
Jiao, Meng ;
Cheng, Wen ;
Wan, Tian .
POWDER TECHNOLOGY, 2024, 443
[7]   PBM-CFD Investigation of the Gas Holdup and Mass Transfer in a Lab-Scale Internal Loop Airlift Reactor [J].
Zhang, Shuo ;
Lv, Zong-Yang ;
Mueller, David ;
Wozny, Guenter .
IEEE ACCESS, 2017, 5 :2711-2719
[8]   CFD modeling of space-time evolution of fast pyrolysis products in a bench-scale fluidized-bed reactor [J].
Boateng, A. A. ;
Mtui, P. L. .
APPLIED THERMAL ENGINEERING, 2012, 33-34 :190-198
[9]   Experimental Investigation on Interaction of Side Gas Injection with Gas Fluidized Bed Using γ-Ray Transmission Technique [J].
Bhowmick, Sandip ;
Sharma, Vijay Kumar ;
Samantray, Jitendra S. ;
Pant, Harish J. ;
Shenoy, Kalsanka Trivikram ;
Dash, Ashutosh ;
Roy, Saswati B. .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2015, 54 (46) :11653-11660
[10]   Experimental study and modelling on gas-solid flow in a lab-scale fluidised bed with Wurster tube [J].
Wang, Haigang ;
Qiu, Guizhi ;
Ye, Jiamin ;
Yang, Wuqiang .
POWDER TECHNOLOGY, 2016, 300 :14-27