Hydrodynamics of fluidization using kinetic theory: an emerging paradigm 2002 Flour-Daniel lecture

被引:202
作者
Gidaspow, D [1 ]
Jung, JW [1 ]
Singh, RK [1 ]
机构
[1] IIT, Dept Chem & Environm Engn, Chicago, IL 60616 USA
关键词
gas-particle flow; computational fluid dynamics; particle image velocity method; turbulence; granular temperature; mixing;
D O I
10.1016/j.powtec.2004.09.025
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
A critical review of the literature on fluidization using the kinetic theory of granular flow is presented. An equation of state for the particles relating solids pressure to the granular temperature and the solids volume fraction, similar to the van der Waals equation for gases, has been verified experimentally to be reasonably correct. Experiments have also shown that the particulate viscosity expression obtained from the kinetic theory gives the same values as that measured by classical methods. We demonstrated using a kinetic theory based particle image velocity (PIV) meter that there are two kinds of turbulence in fluidization: 1. random oscillations of individual particles, measured by the classical granular temperature and 2. turbulence caused by the motion of clusters of particles, measured by the average particle normal Reynolds stress. These two kinds of turbulence give rise to two kinds of mixing, mixing on the level of a particle and mixing on the level of cluster or bubble. To compute the granular temperature, it must be programmed into the computational fluid dynamics (CFD) codes. The code itself computes the Reynolds stresses, similar to the calculation of single-phase turbulence by direct numerical computation. CFD simulations by several groups throughout the world have shown that the multiphase flow models correctly predict transient and time-averaged behavior of fluidized beds: bubbles, clusters and flow regimes. Two challenge problems in the last decade show the capability of the hydrodynamic models to predict, at least qualitatively, radial and axial profiles before their publication. (C) 2004 Elsevier B.V. All rights reserved.
引用
收藏
页码:123 / 141
页数:19
相关论文
共 119 条
[1]   The role of meso-scale structures in rapid gas-solid flows [J].
Agrawal, K ;
Loezos, PN ;
Syamlal, M ;
Sundaresan, S .
JOURNAL OF FLUID MECHANICS, 2001, 445 :151-185
[2]  
ANDERSON K, 1995, J FLUID MECH, V327, P266
[3]  
[Anonymous], FLUIDIZATION
[4]   Numerical simulation and experimental analysis of gas/solid flow systems: 1999 Fluor-Daniel Plenary lecture [J].
Arastoopour, H .
POWDER TECHNOLOGY, 2001, 119 (2-3) :59-67
[5]   SOLIDS FLOW STRUCTURES IN A TWO-DIMENSIONAL RISER OF A CIRCULATING FLUIDIZED-BED [J].
ARENA, U ;
CAMMAROTA, A ;
MARZOCCHELLA, A ;
MASSIMILLA, L .
JOURNAL OF CHEMICAL ENGINEERING OF JAPAN, 1989, 22 (03) :236-241
[6]  
AVIDAN AA, 1990, REV CHEM ENG, V6, P1
[7]   MAPPING SOLID CONCENTRATION IN A CIRCULATING FLUID BED USING GAMMAMETRY [J].
AZZI, M ;
TURLIER, P ;
BERNARD, JR ;
GARNERO, L .
POWDER TECHNOLOGY, 1991, 67 (01) :27-36
[8]  
Bader R., 1988, CIRCULATING FLUIDIZE, P123
[9]   Gas-solid flow modelling based on the kinetic theory of granular media: validation, applications and limitations [J].
Balzer, G .
POWDER TECHNOLOGY, 2000, 113 (03) :299-309
[10]  
BALZER G, 1996, FLUIDIZATION, V8, P409