LAPSE:2023.5565
Published Article

LAPSE:2023.5565
Influence of Interfacial Force Models and Population Balance Models on the kLa Value in Stirred Bioreactors
February 23, 2023
Abstract
Optimal oxygen supply is vitally important for the cultivation of aerobically growing cells, as it has a direct influence on cell growth and product formation. A process engineering parameter directly related to oxygen supply is the volumetric oxygen mass transfer coefficient kLa. It is the influences on kLa and computing time of different interfacial force and population balance models in stirred bioreactors that have been evaluated in this study. For this investigation, the OpenFOAM 7 open-source toolbox was utilized. Firstly, the Euler−Euler model with a constant bubble diameter was applied to a 2L scale bioreactor to statistically examine the influence of different interfacial models on the kLa value. It was shown that the kL model and the constant bubble diameter have the greatest influence on the calculated kLa value. To eliminate the problem of a constant bubble diameter and to take effects such as bubble breakup and coalescence into account, the Euler−Euler model was coupled with population balance models (PBM). For this purpose, four coalescence and five bubble breakup models were examined. Ultimately, it was established that, for all of the models tested, coupling computational fluid dynamics (CFD) with PBM resulted in better agreement with the experimental data than using the Euler−Euler model. However, it should be noted that the higher accuracy of the PBM coupled models requires twice the computation time.
Optimal oxygen supply is vitally important for the cultivation of aerobically growing cells, as it has a direct influence on cell growth and product formation. A process engineering parameter directly related to oxygen supply is the volumetric oxygen mass transfer coefficient kLa. It is the influences on kLa and computing time of different interfacial force and population balance models in stirred bioreactors that have been evaluated in this study. For this investigation, the OpenFOAM 7 open-source toolbox was utilized. Firstly, the Euler−Euler model with a constant bubble diameter was applied to a 2L scale bioreactor to statistically examine the influence of different interfacial models on the kLa value. It was shown that the kL model and the constant bubble diameter have the greatest influence on the calculated kLa value. To eliminate the problem of a constant bubble diameter and to take effects such as bubble breakup and coalescence into account, the Euler−Euler model was coupled with population balance models (PBM). For this purpose, four coalescence and five bubble breakup models were examined. Ultimately, it was established that, for all of the models tested, coupling computational fluid dynamics (CFD) with PBM resulted in better agreement with the experimental data than using the Euler−Euler model. However, it should be noted that the higher accuracy of the PBM coupled models requires twice the computation time.
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Keywords
bioreactor characterization, CFD simulation, drag force, interfacial force, kLa value, lift force, multiphase modeling, numerical simulation, oxygen transfer rate, population balance model
Subject
Suggested Citation
Seidel S, Eibl D. Influence of Interfacial Force Models and Population Balance Models on the kLa Value in Stirred Bioreactors. (2023). LAPSE:2023.5565
Author Affiliations
Seidel S: School of Life Sciences and Facility Management, Institute of Chemistry and Biotechnology, Zurich University of Applied Sciences (ZHAW), Grüentalstrasse 14, 8820 Wädenswil, Switzerland [ORCID]
Eibl D: School of Life Sciences and Facility Management, Institute of Chemistry and Biotechnology, Zurich University of Applied Sciences (ZHAW), Grüentalstrasse 14, 8820 Wädenswil, Switzerland
Eibl D: School of Life Sciences and Facility Management, Institute of Chemistry and Biotechnology, Zurich University of Applied Sciences (ZHAW), Grüentalstrasse 14, 8820 Wädenswil, Switzerland
Journal Name
Processes
Volume
9
Issue
7
First Page
1185
Year
2021
Publication Date
2021-07-07
ISSN
2227-9717
Version Comments
Original Submission
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PII: pr9071185, Publication Type: Journal Article
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LAPSE:2023.5565
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https://doi.org/10.3390/pr9071185
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Feb 23, 2023
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