Wall-to-liquid mass transfer in fluidized beds and vertical transport of inert particles
Author(s) -
Nevenka BoškovićVragolović,
Radmila GarićGrulović,
Željko Grbavčić
Publication year - 2007
Publication title -
journal of the serbian chemical society
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.227
H-Index - 45
eISSN - 1820-7421
pISSN - 0352-5139
DOI - 10.2298/jsc0711103b
Subject(s) - mass transfer , reynolds number , hydraulic diameter , particle (ecology) , dissolution , inert , fluidized bed , sherwood number , chemistry , mechanics , materials science , packed bed , analytical chemistry (journal) , thermodynamics , chromatography , turbulence , geology , oceanography , organic chemistry , nusselt number , physics
Mass transfer coefficients in single phase flow, liquid fluidized beds and vertical hydraulic transport of spherical inert particles were studied experimentally using 40 mm and 25.4 mm diameter columns. The mass transfer data were obtained by studying the transfer of benzoic acid from a tube segment to water using the dis- solution method. In all runs, the mass transfer rates were determined in the presence of spherical glass particles 1.2, 1.94 and 2.98 mm in diameter. The influence of dif- ferent parameters, such as liquid velocity, particles size and voids on mass transfer in fluidized beds and hydraulic transport are presented. The data for mass transfer in all the investigated systems are shown using the Sherwood number (Sh) and mass transfer factor - Colburn factor (jD) - as a function of Reynolds number (Re) for the particles and for the column. The data for mass transfer in particulate fluidized beds and for vertical hydraulic transport of spherical particles were correlated by treating the flowing fluid-particle mixture as a pseudo fluid by introducing a modified mix- ture Reynolds number (Rem). A new correlation for the mass transfer factor in flui- dized beds and in vertical hydraulic transport is proposed.
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