Details

Title

A Simple Analytical Method for Determining Basic Hydrodynamic Characteristics of Hybrid Fluidized-Bed Air-Lift Apparatae

Journal title

Chemical and Process Engineering

Yearbook

2017

Volume

vol. 38

Issue

No 1

Authors

Keywords

fluidized-bed ; hydrodynamics ; air-lift ; hybrid apparatus ; bioreactor

Divisions of PAS

Nauki Techniczne

Coverage

121-133

Publisher

Polish Academy of Sciences Committee of Chemical and Process Engineering

Date

2017.03.30

Type

Artykuły / Articles

Identifier

DOI: 10.1515/cpe-2017-0010 ; ISSN 2300-1925 (Chemical and Process Engineering)

Source

Chemical and Process Engineering; 2017; vol. 38; No 1; 121-133

References

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Kawalec (2006), Comparison of the oxygen transfer rate in the inverse fluidized - bed airlift reactor and related bubble column reactors ( in Polish ), Chem Proc Eng, 27, 125. ; Huang (1997), Kinetics and modeling of GM - CSF production by recombinant yeast in - phase fluidized - bed bioreactor, Biotechnol Bioeng, 53, 470, doi.org/10.1002/(SICI)1097-0290(19970305)53:5<470:AID-BIT4>3.0.CO;2-E ; Sarra (1997), Continuous production of a hybrid antibiotic by Streptomyces - lividans Tk pellets in a - phase fluidized - bed bioreactor, Biotechnol Bioeng, 21, 601, doi.org/10.1002/(SICI)1097-0290 ; Vunjak (1992), Flow regimes and liquid mixing in a draft tube gas - liquid - solid fluidized bed, Chem Eng Sci, 47, doi.org/10.1016/0009-2509(92)85057-I ; Lu (1995), Liquid velocity and gas holdup in three - phase internal loop airlift reactors with low - density particles, Chem Eng Sci, 50, doi.org/10.1016/0009-2509(95)98842-3 ; Kawalec (1998), Region - dependent oxygen transfer rate in the rectangular airlift reactor, Bioproc Eng, 18, 163, doi.org/10.1007/s004490050426 ; Tang (1987), Dynamics of a draft tube gas - liquid - solid fluidized bed bioreactor for phenol degradation, Chem Eng Sci, 42, 2123, doi.org/10.1016/0009-2509(87)85033-9 ; Livingston (1991), Biodegradation of dichloroaniline in a fluidized bed reactor and a steady state biofilm kinetic model, Biotechnol Bioeng, 38, doi.org/10.1002/bit.260380308 ; Wisecarver (1989), Biological phenol degradation in a gas - liquid - solid fluidized bed reactor, Biotechnol Bioeng, 33, doi.org/10.1002/bit.260330812 ; Miyahara (1993), Hydrodynamics of a solid - suspensed bubble column with a draught tube containing low density particles, Chem Eng Sci, 48, 127, doi.org/10.1016/0009-2509(93)80289-3 ; Kawalec (2004), Three - phase airlift reactors ( in Polish ), Chem Proc Eng, 25, 1925. ; Onysko (2002), Improved modelling of the unsteady - state behavior of an immobilized - cell , fluidized - bed bioreactor for phenol biodegradation, Can J Chem Eng, 80, doi.org/10.1002/cjce.5450800209 ; Merchuk (2003), Airlift bioreactors : review of recent advances, Can J Chem Eng, 81, doi.org/10.1002/cjce.5450810301 ; Tripathy (2013), A model for expansion ratio in liquid - solid fluidized beds, Particuology, 789, doi.org/10.1016/j.partic.2012.11.006 ; Merchuk (1988), Airlift reactors in chemical and biological technology, J Chem Tech Biotechnol, 41, 105, doi.org/10.1002/jctb.280410204 ; Di Felice (1995), Hydrodynamics of liquid fluidisation, Chem Eng Sci, 50, doi.org/10.1016/0009-2509(95)98838-6 ; Dziubiński (2002), Liquid circulation velocity in pilot - plant scale air - lift columns ( in Polish ), Chem Proc Eng, 23, 141. ; Dziubiński (1999), The specific interfacial area in an air - lift column ( in Polish ), Chem Proc Eng, 20, 409. ; Kawalec (2004), Application of an air - lift reactor with the inverse fluidized - bed in biodegradation of dimethyl ketone ( in Polish ), Chem, 2, 3. ; Tabiś (2003), Method for the determination of the steady states of a three - phase fluidized - bed bioreactor, Chem Proc Eng, 24, 551. ; Guo (1997), Hydrodynamic and mass transfer studies in a novel external - loop airlift reactor, Chem Eng J, 67, doi.org/10.1016/S1385-8947(97)00043-0 ; Mowla (2007), Theoretical and experimental investigation of biodegradation of hydrocarbon polluted water in a three phase fluidized - bed bioreactor with PVC biofilm support, Biochem Eng J, 147, doi.org/10.1016/j.bej.2007.02.031 ; Tabiś (2003), Hydrodynamics of a three - phase airlift bioreactor containing low - density particles ( in Polish ), Chem Proc Eng, 24, 217. ; Nore (1992), Hydrodynamics , gas - liquid mass transfer and particles - liquid heat and mass transfer in a three - phase fluidized bed for biochemical process applications, Chem Eng Sci, 47, doi.org/10.1016/0009-2509(92)85072-J ; Tabiś (2013), Conditions for application of fluidized - bed bioreactors in aerobic processes ( in Polish ), Chem, 487.

Editorial Board

Editorial Board

Ali Mesbah, UC Berkeley, USA ORCID logo0000-0002-1700-0600

Anna Gancarczyk, Institute of Chemical Engineering, Polish Academy of Sciences, Poland ORCID logo0000-0002-2847-8992

Anna Trusek, Wrocław University of Science and Technology, Poland ORCID logo0000-0002-3886-7166

Bettina Muster-Slawitsch, AAE Intec, Austria ORCID logo0000-0002-5944-0831

Daria Camilla Boffito, Polytechnique Montreal, Canada ORCID logo0000-0002-5252-5752

Donata Konopacka-Łyskawa, Gdańsk University of Technology, Poland ORCID logo0000-0002-2924-7360

Dorota Antos, Rzeszów University of Technology, Poland ORCID logo0000-0001-8246-5052

Evgeny Rebrov, University of Warwick, UK ORCID logo0000-0001-6056-9520

Georgios Stefanidis, National Technical University of Athens, Greece ORCID logo0000-0002-4347-1350

Ireneusz Grubecki, Bydgoszcz Univeristy of Science and Technology, Poland ORCID logo0000-0001-5378-3115

Johan Tinge, Fibrant B.V., The Netherlands ORCID logo0000-0003-1776-9580

Katarzyna Bizon, Cracow University of Technology, Poland ORCID logo0000-0001-7600-4452

Katarzyna Szymańska, Silesian University of Technology, Poland ORCID logo0000-0002-1653-9540

Marcin Bizukojć, Łódź University of Technology, Poland ORCID logo0000-0003-1641-9917

Marek Ochowiak, Poznań University of Technology, Poland ORCID logo0000-0003-1543-9967

Mirko Skiborowski, Hamburg University of Technology, Germany ORCID logo0000-0001-9694-963X

Nikola Nikacevic, University of Belgrade, Serbia ORCID logo0000-0003-1135-5336

Rafał Rakoczy, West Pomeranian University of Technology, Poland ORCID logo0000-0002-5770-926X

Richard Lakerveld, Hong Kong University of Science and Technology, Hong Kong ORCID logo0000-0001-7444-2678

Tom van Gerven, KU Leuven, Belgium ORCID logo0000-0003-2051-5696

Tomasz Sosnowski, Warsaw University of Technology, Poland ORCID logo0000-0002-6775-3766



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