Hydrodynamics of trickling flow in packed beds: Relative permeability concept

被引:31
作者
Lakota, A
Levec, J [1 ]
Carbonell, RG
机构
[1] Univ Ljubljana, Dept Chem Engn, Ljubljana 1001, Slovenia
[2] N Carolina State Univ, Dept Chem Engn, Raleigh, NC 27695 USA
关键词
D O I
10.1002/aic.690480408
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Liquid holdups and pressure drops for gas and liquid concurrent flow in packed beds were measured experimentally. To calculate the Ergun type constants, pressure drops were also measured for single- (gas) -phase flow through the same packings. These measurements reveal that the Ergun type inertial constant depends on the particle shape. The beds were packed with porous and nonporous spheres, cylinders, extrudates, and Raschig rings. The experimental data were analyzed using the concept of relative permeabilities. The liquid-phase relative permeability, correlated well with the reduced liquid saturation in a unique power-law form for all particles independent of their shape. The gas-phase relative permeability as a function of the gas-phase saturation followed the same law, but the exponent depends on the particle shape and gas-phase Reynolds number. Predicted and experimental values for liquid holdups for all particle shapes agreed well with mean relative deviations less than 10%. Predictions of pressure drops for spherical particles, cylinders, and extrudates are at least as accurate as other less rigorous correlations (mean relative errors between 25 and 40%). Pressure drop predictions for Raschig rings are poorer (mean relative deviations of 90%), reflecting in part the variations in pressure drops from experiment to experiment with these particles.
引用
收藏
页码:731 / 738
页数:8
相关论文
共 11 条
[1]  
[Anonymous], IND ENG CHEM FUNDAM
[2]   Hydrodynamics of gas-liquid-solid trickle-bed reactors: a critical review [J].
Attou, A ;
Boyer, C .
OIL & GAS SCIENCE AND TECHNOLOGY-REVUE D IFP ENERGIES NOUVELLES, 1999, 54 (01) :29-66
[3]   Modelling of the hydrodynamics of the cocurrent gas-liquid trickle flow through a trickle-bed reactor [J].
Attou, A ;
Boyer, C ;
Ferschneider, G .
CHEMICAL ENGINEERING SCIENCE, 1999, 54 (06) :785-802
[4]   Multiphase flow models in packed beds [J].
Carbonell, RG .
OIL & GAS SCIENCE AND TECHNOLOGY-REVUE D IFP ENERGIES NOUVELLES, 2000, 55 (04) :417-425
[5]   A PHENOMENOLOGICAL MODEL FOR PRESSURE-DROP, LIQUID HOLDUP, AND FLOW REGIME TRANSITION IN GAS-LIQUID TRICKLE FLOW [J].
HOLUB, RA ;
DUDUKOVIC, MP ;
RAMACHANDRAN, PA .
CHEMICAL ENGINEERING SCIENCE, 1992, 47 (9-11) :2343-2348
[6]   COCURRENT GAS-LIQUID FLOW IN PACKED-COLUMNS [J].
HUTTON, BET ;
LEUNG, LS .
CHEMICAL ENGINEERING SCIENCE, 1974, 29 (08) :1681-1685
[7]  
LAKOTA A, 1991, THESIS U LJUBLJANA S
[8]   THE HYDRODYNAMICS OF TRICKLING FLOW IN PACKED-BEDS .2. EXPERIMENTAL-OBSERVATIONS [J].
LEVEC, J ;
SAEZ, AE ;
CARBONELL, RG .
AICHE JOURNAL, 1986, 32 (03) :369-380
[9]   AN ALGORITHM FOR LEAST-SQUARES ESTIMATION OF NONLINEAR PARAMETERS [J].
MARQUARDT, DW .
JOURNAL OF THE SOCIETY FOR INDUSTRIAL AND APPLIED MATHEMATICS, 1963, 11 (02) :431-441
[10]   HYDRODYNAMIC PARAMETERS FOR GAS-LIQUID COCURRENT FLOW IN PACKED-BEDS [J].
SAEZ, AE ;
CARBONELL, RG .
AICHE JOURNAL, 1985, 31 (01) :52-62