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CFD-Based and Experimental Hydrodynamic Characterization of the Single-Use Bioreactor Xcellerex(TM) XDR-10

Understanding the hydrodynamic conditions in bioreactors is of utmost importance for the selection of operating conditions during cell culture process development. In the present study, the two-phase flow in the lab-scale single-use bioreactor Xcellerex [Formula: see text] XDR-10 is characterized fo...

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Autores principales: Kreitmayer, Diana, Gopireddy, Srikanth R., Matsuura, Tomomi, Aki, Yuichi, Katayama, Yuta, Nakano, Takuya, Eguchi, Takuma, Kakihara, Hirofumi, Nonaka, Koichi, Profitlich, Thomas, Urbanetz, Nora A., Gutheil, Eva
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8773232/
https://www.ncbi.nlm.nih.gov/pubmed/35049731
http://dx.doi.org/10.3390/bioengineering9010022
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author Kreitmayer, Diana
Gopireddy, Srikanth R.
Matsuura, Tomomi
Aki, Yuichi
Katayama, Yuta
Nakano, Takuya
Eguchi, Takuma
Kakihara, Hirofumi
Nonaka, Koichi
Profitlich, Thomas
Urbanetz, Nora A.
Gutheil, Eva
author_facet Kreitmayer, Diana
Gopireddy, Srikanth R.
Matsuura, Tomomi
Aki, Yuichi
Katayama, Yuta
Nakano, Takuya
Eguchi, Takuma
Kakihara, Hirofumi
Nonaka, Koichi
Profitlich, Thomas
Urbanetz, Nora A.
Gutheil, Eva
author_sort Kreitmayer, Diana
collection PubMed
description Understanding the hydrodynamic conditions in bioreactors is of utmost importance for the selection of operating conditions during cell culture process development. In the present study, the two-phase flow in the lab-scale single-use bioreactor Xcellerex [Formula: see text] XDR-10 is characterized for working volumes from 4.5 L to 10 L, impeller speeds from 40 rpm to 360 rpm, and sparging with two different microporous spargers at rates from 0.02 L min [Formula: see text] to 0.5 L min [Formula: see text]. The numerical simulations are performed with the one-way coupled Euler–Lagrange and the Euler–Euler models. The results of the agitated liquid height, the mixing time, and the volumetric oxygen mass transfer coefficient are compared to experiments. For the unbaffled XDR-10, strong surface vortex formation is found for the maximum impeller speed. To support the selection of suitable impeller speeds for cell cultivation, the surface vortex formation, the average turbulence energy dissipation rate, the hydrodynamic stress, and the mixing time are analyzed and discussed. Surface vortex formation is observed for the maximum impeller speed. Mixing times are below 30 s across all conditions, and volumetric oxygen mass transfer coefficients of up to 22.1 h [Formula: see text] are found. The XDR-10 provides hydrodynamic conditions which are well suited for the cultivation of animal cells, despite the unusual design of a single bottom-mounted impeller and an unbaffled cultivation bioreactor.
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spelling pubmed-87732322022-01-21 CFD-Based and Experimental Hydrodynamic Characterization of the Single-Use Bioreactor Xcellerex(TM) XDR-10 Kreitmayer, Diana Gopireddy, Srikanth R. Matsuura, Tomomi Aki, Yuichi Katayama, Yuta Nakano, Takuya Eguchi, Takuma Kakihara, Hirofumi Nonaka, Koichi Profitlich, Thomas Urbanetz, Nora A. Gutheil, Eva Bioengineering (Basel) Article Understanding the hydrodynamic conditions in bioreactors is of utmost importance for the selection of operating conditions during cell culture process development. In the present study, the two-phase flow in the lab-scale single-use bioreactor Xcellerex [Formula: see text] XDR-10 is characterized for working volumes from 4.5 L to 10 L, impeller speeds from 40 rpm to 360 rpm, and sparging with two different microporous spargers at rates from 0.02 L min [Formula: see text] to 0.5 L min [Formula: see text]. The numerical simulations are performed with the one-way coupled Euler–Lagrange and the Euler–Euler models. The results of the agitated liquid height, the mixing time, and the volumetric oxygen mass transfer coefficient are compared to experiments. For the unbaffled XDR-10, strong surface vortex formation is found for the maximum impeller speed. To support the selection of suitable impeller speeds for cell cultivation, the surface vortex formation, the average turbulence energy dissipation rate, the hydrodynamic stress, and the mixing time are analyzed and discussed. Surface vortex formation is observed for the maximum impeller speed. Mixing times are below 30 s across all conditions, and volumetric oxygen mass transfer coefficients of up to 22.1 h [Formula: see text] are found. The XDR-10 provides hydrodynamic conditions which are well suited for the cultivation of animal cells, despite the unusual design of a single bottom-mounted impeller and an unbaffled cultivation bioreactor. MDPI 2022-01-08 /pmc/articles/PMC8773232/ /pubmed/35049731 http://dx.doi.org/10.3390/bioengineering9010022 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Kreitmayer, Diana
Gopireddy, Srikanth R.
Matsuura, Tomomi
Aki, Yuichi
Katayama, Yuta
Nakano, Takuya
Eguchi, Takuma
Kakihara, Hirofumi
Nonaka, Koichi
Profitlich, Thomas
Urbanetz, Nora A.
Gutheil, Eva
CFD-Based and Experimental Hydrodynamic Characterization of the Single-Use Bioreactor Xcellerex(TM) XDR-10
title CFD-Based and Experimental Hydrodynamic Characterization of the Single-Use Bioreactor Xcellerex(TM) XDR-10
title_full CFD-Based and Experimental Hydrodynamic Characterization of the Single-Use Bioreactor Xcellerex(TM) XDR-10
title_fullStr CFD-Based and Experimental Hydrodynamic Characterization of the Single-Use Bioreactor Xcellerex(TM) XDR-10
title_full_unstemmed CFD-Based and Experimental Hydrodynamic Characterization of the Single-Use Bioreactor Xcellerex(TM) XDR-10
title_short CFD-Based and Experimental Hydrodynamic Characterization of the Single-Use Bioreactor Xcellerex(TM) XDR-10
title_sort cfd-based and experimental hydrodynamic characterization of the single-use bioreactor xcellerex(tm) xdr-10
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8773232/
https://www.ncbi.nlm.nih.gov/pubmed/35049731
http://dx.doi.org/10.3390/bioengineering9010022
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