Estimation of Mass Transfer Velocity Based on Measured Turbulence Parameters


Autoria(s): JANZEN, Johannes G.; HERLINA, H.; JIRKA, Gerhard H.; SCHULZ, Harry E.; GULLIVER, John S.
Contribuinte(s)

UNIVERSIDADE DE SÃO PAULO

Data(s)

18/10/2012

18/10/2012

2010

Resumo

The aim of this study is to quantify the mass transfer velocity using turbulence parameters from simultaneous measurements of oxygen concentration fields and velocity fields. The surface divergence model was considered in more detail, using data obtained for the lower range of beta (surface divergence). It is shown that the existing models that use the divergence concept furnish good predictions for the transfer velocity also for low values of beta, in the range of this study. Additionally, traditional conceptual models, such as the film model, the penetration-renewal model, and the large eddy model, were tested using the simultaneous information of concentration and velocity fields. It is shown that the film and the surface divergence models predicted the mass transfer velocity for all the range of the equipment Reynolds number used here. The velocity measurements showed viscosity effects close to the surface, which indicates that the surface was contaminated with some surfactant. Considering the results, this contamination can be considered slight for the mass transfer predictions. (C) 2009 American Institute of Chemical Engineers AIChE J, 56: 2005-2017; 2010

CAPES[2201/06-2]

CNPq

FAPESP

German Science Foundation (DFG)[Ji18/7-1]

Identificador

AICHE JOURNAL, v.56, n.8, p.2005-2017, 2010

0001-1541

http://producao.usp.br/handle/BDPI/17938

10.1002/aic.12123

http://dx.doi.org/10.1002/aic.12123

Idioma(s)

eng

Publicador

JOHN WILEY & SONS INC

Relação

Aiche Journal

Direitos

restrictedAccess

Copyright JOHN WILEY & SONS INC

Palavras-Chave #laser-induced fluorescence #particle image velocimetry #air-water gas transfer #grid-stirred tank #mass transfer velocity #AIR-WATER-INTERFACE #FREE-SURFACE TURBULENCE #GRID-STIRRED TANK #REYNOLDS-NUMBER TURBULENCE #GAS TRANSFER #CHANNEL FLOW #OXYGEN-TRANSFER #BOUNDARY-LAYER #ABSORPTION #LIQUID #Engineering, Chemical
Tipo

article

original article

publishedVersion