HYDRODYNAMICS AND MASS-TRANSFER IN A 3-PHASE FIXED-BED REACTOR WITH COCURRENT GAS-LIQUID DOWNFLOW

Citation
A. Burghardt et al., HYDRODYNAMICS AND MASS-TRANSFER IN A 3-PHASE FIXED-BED REACTOR WITH COCURRENT GAS-LIQUID DOWNFLOW, Chemical engineering journal and the biochemical engineering journal, 58(2), 1995, pp. 83-99
Citations number
70
Categorie Soggetti
Engineering, Chemical
ISSN journal
09230467
Volume
58
Issue
2
Year of publication
1995
Pages
83 - 99
Database
ISI
SICI code
0923-0467(1995)58:2<83:HAMIA3>2.0.ZU;2-N
Abstract
The paper presents experimental results concerning dynamic liquid hold up, wetting efficiency and local mass transfer coefficients between th e liquid and solid surface in a fixed-bed three-phase reactor, in whic h both the gas and liquid flow cocurrently downwards. The experiments were conducted for two basic regimes of operation of trickle-bed react ors, namely the gas continuous flow regime and the pulsing flow regime under atmospheric pressure. The measurements of dynamic liquid holdup have been performed for a wide range of gas and liquid flow rates, th ree different packing diameters, and for two systems of working media of different physical properties. The common correlation developed det ermines with good accuracy the holdup values in both regimes as well a s in the transition region between the two hydrodynamic modes. In expe riments concerning the wetting efficiency a dynamic tracer method has been employed, for which an original mathematical model has been formu lated. The results are presented in the form of diagrams and appropria te correlating formulae. The experiments concerning local solid-liquid mass transfer coefficients were carried out for two diameters of sphe rical particles, with the flow rates of both phases and physicochemica l properties of the liquid varied over a wide range. The experimental results are correlated and compared with the appropriate literature da ta. A mathematical model describing the time-varying solid-liquid mass transfer process is formulated for the pulsed flow regime, The time-a veraged mass transfer coefficients calculated on the basis of the mode l developed are compared with the experimental values. A good agreemen t between these two sets of values fully confirms the assumptions of t he model elaborated.