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Influence of the Gas-Liquid non-Equilibrium Media Structure on the Mass Transfer Dynamics in Biophysical Processes Full article

Journal Smart Materials and Structures
ISSN: 0964-1726 , E-ISSN: 1361-665X
Output data Year: 2024, Volume: 33, Number: 1, Article number : 015028, Pages count : DOI: 10.1088/1361-665x/ad10be
Tags biophysical media; bioreactor; bubble flow; interfacial area; mass transfer; oximetry; surface tension
Authors Nizovtseva Irina G. 1,2 , Starodumov Ilya O. 1,3 , Lezhnin Sergey I. 1 , Mikushin Pavel V. 1,4 , Zagoruiko Andrey N. 5,6 , Shabadrov Pavel A. 1,3 , Svitich Vladislav Ye. 1 , Vikharev Sergey V. 1,7 , Tatarintsev Vitalii V. 8 , Nikishina Margarita A. 1 , Koroznikova Irina Ye. 1 , Glebova Alexandra Ye. 1 , Mityashin Timofey V. 1 , Jingyan Yan 9 , Chernushkin Dmitrii V. 8
Affiliations
1 Laboratory of Multiphase Physical and Biological Media Modeling, Ural Federal University, Ekaterinburg 620000, Russia
2 Otto-Schott-Institut fur Materialforschung, Friedrich-Schiller University of Jena, Jena 07743, Germany
3 Department of Biomedical Physics and Engineering, Ural State Medical University, Ekaterinburg 620028, Russia
4 Moscow Institute of Physics and Technology, Moscow 141701, Russia
5 Boreskov Institute of Catalysis
6 Tyumen State University, Tyumen 625003, Russia
7 Department of High Performance Computing, ITMO University, Saint Petersburg 197101, Russia
8 NPO Biosintez Ltd, Moscow 109390, Russia
9 Kerong International Advanced Biotechnology Research Center, Industrial park UF, Sanya, 572000, CHINA

Funding (1)

1 Ministry of Science and Higher Education of the Russian Federation Приоритет 2030

Abstract: Multiphase biophysical media are known to be complex structures with continuous high demand to the scientific community for understanding the relationships and ratios between factors affecting the type, dynamics and nature of its structural changes on their impact degree on the media itself. Among the plentiful list of such factors \textcolor{red}{the following do worth mentioning}: the lifetime of a particle, turbulence factors and a number of others, each requiring careful analysis, assessment of the contribution degree and, importantly, correct accounting. The present study is focused on such a factor affecting mass transfer intensity change as surface tension through its relationship with the interfacial area: the latter is the site of mass exchange between the gas and liquid phases, and modifications in surface tension values can significantly impact the characteristics of this area, hence altering the rate of mass transfer. By controlling surface tension, one can effectively modulate the size and stability of particles, namely bubbles or droplets, which in turn changes the interfacial area available for mass transfer. The total interfacial area, which is the cumulative surface area of all bubbles, serves as \textcolor{red}{the site for mass transfer.} The impact of the surface tension coefficient variation into gas-liquid mass transfer characteristics is analyzed both for the case of water and model liquid. The latter means the potential contribution of surface-active substances was a part of research scope since it was applied to recreate conditions similar to the cultural liquid when microorganisms that produce surfactants are grown. The proposed new methodology assumes calculating interfacial area through the segmentation of images captured by a high-speed camera, thus we can gain a profoundly enhanced understanding of the relationship between surface tension and mass transfer. The precise visual data and subsequent computation of the interfacial area provide deeper insights into the dynamics of bubble formation and the effects of surface tension on bubble size and distribution. As a result, this method has significantly improved our capacity to investigate and optimize mass transfer processes in multiphase biophysical systems. Both analytical approach and results interpretation not only influence affirmatively on deep understanding of natural mechanisms in biophysical media, but also might serve their best for potential application, {\it e.g.} in the context of the development of biotechnological industries based on fermentation processes for protein production. https://iopscience.iop.org/article/10.1088/1361-665X/ad10be
Cite: Nizovtseva I.G. , Starodumov I.O. , Lezhnin S.I. , Mikushin P.V. , Zagoruiko A.N. , Shabadrov P.A. , Svitich V.Y. , Vikharev S.V. , Tatarintsev V.V. , Nikishina M.A. , Koroznikova I.Y. , Glebova A.Y. , Mityashin T.V. , Jingyan Y. , Chernushkin D.V.
Influence of the Gas-Liquid non-Equilibrium Media Structure on the Mass Transfer Dynamics in Biophysical Processes
Smart Materials and Structures. 2024. V.33. N1. 015028 . DOI: 10.1088/1361-665x/ad10be WOS Scopus РИНЦ OpenAlex
Dates:
Submitted: Jul 1, 2023
Accepted: Nov 29, 2023
Published online: Nov 29, 2023
Published print: Jan 1, 2024
Identifiers:
Web of science: WOS:001126293300001
Scopus: 2-s2.0-85180536129
Elibrary: 64673803
OpenAlex: W4389119659
Citing:
DB Citing
OpenAlex 6
Web of science 6
Scopus 4
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