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Measurement of Electrokinetically induced hydrodynamics at Ion-selective interfaces using 3D Micro particle tracking velocimetry (µPTV)

Electrokinetic flow phenomena are ubiquitous in electrical systems for desalination, chemical conversion, or mixing at a micro-scale. However, the important features of resulting 3D flow fields are only accessible through cost-intensive numerical simulations. Experimental 2D recording of the chaotic...

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Autores principales: Stockmeier, Felix, Schatz, Michael, Habermann, Malte, Linkhorst, John, Mani, Ali, Wessling, Matthias
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9421390/
https://www.ncbi.nlm.nih.gov/pubmed/36046738
http://dx.doi.org/10.1016/j.mex.2022.101814
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author Stockmeier, Felix
Schatz, Michael
Habermann, Malte
Linkhorst, John
Mani, Ali
Wessling, Matthias
author_facet Stockmeier, Felix
Schatz, Michael
Habermann, Malte
Linkhorst, John
Mani, Ali
Wessling, Matthias
author_sort Stockmeier, Felix
collection PubMed
description Electrokinetic flow phenomena are ubiquitous in electrical systems for desalination, chemical conversion, or mixing at a micro-scale. However, the important features of resulting 3D flow fields are only accessible through cost-intensive numerical simulations. Experimental 2D recording of the chaotic three-dimensional velocity fields developing for example at currents exceeding the limiting current density does not capture the complex 3D structures present in such flow fields. Additionally, numerical 3D studies are limited to dimensions three orders of magnitude smaller as found in real applications and only short run times due to the enormous computational effort. To apply the theoretical knowledge in real-world systems and create the possibility for detailed parameter studies, we present the first experimental method for recording and quantifying the time-resolved velocity field in an electrochemical microfluidic cell in 3D with dimensions found in industrial applications. We utilize this method in a co-submitted paper to record the 3D velocity field of electroconvection at a cation-exchange membrane. • Cell design suitable for simultaneous electrochemical experiments with optical 3D velocity quantification; • Method optimized for velocity reconstruction of membrane-to-membrane distances found in industrial cells; • Highly adaptable cell design, for optical characterization of electrochemical systems.
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spelling pubmed-94213902022-08-30 Measurement of Electrokinetically induced hydrodynamics at Ion-selective interfaces using 3D Micro particle tracking velocimetry (µPTV) Stockmeier, Felix Schatz, Michael Habermann, Malte Linkhorst, John Mani, Ali Wessling, Matthias MethodsX Method Article Electrokinetic flow phenomena are ubiquitous in electrical systems for desalination, chemical conversion, or mixing at a micro-scale. However, the important features of resulting 3D flow fields are only accessible through cost-intensive numerical simulations. Experimental 2D recording of the chaotic three-dimensional velocity fields developing for example at currents exceeding the limiting current density does not capture the complex 3D structures present in such flow fields. Additionally, numerical 3D studies are limited to dimensions three orders of magnitude smaller as found in real applications and only short run times due to the enormous computational effort. To apply the theoretical knowledge in real-world systems and create the possibility for detailed parameter studies, we present the first experimental method for recording and quantifying the time-resolved velocity field in an electrochemical microfluidic cell in 3D with dimensions found in industrial applications. We utilize this method in a co-submitted paper to record the 3D velocity field of electroconvection at a cation-exchange membrane. • Cell design suitable for simultaneous electrochemical experiments with optical 3D velocity quantification; • Method optimized for velocity reconstruction of membrane-to-membrane distances found in industrial cells; • Highly adaptable cell design, for optical characterization of electrochemical systems. Elsevier 2022-08-08 /pmc/articles/PMC9421390/ /pubmed/36046738 http://dx.doi.org/10.1016/j.mex.2022.101814 Text en © 2022 The Author(s) https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Method Article
Stockmeier, Felix
Schatz, Michael
Habermann, Malte
Linkhorst, John
Mani, Ali
Wessling, Matthias
Measurement of Electrokinetically induced hydrodynamics at Ion-selective interfaces using 3D Micro particle tracking velocimetry (µPTV)
title Measurement of Electrokinetically induced hydrodynamics at Ion-selective interfaces using 3D Micro particle tracking velocimetry (µPTV)
title_full Measurement of Electrokinetically induced hydrodynamics at Ion-selective interfaces using 3D Micro particle tracking velocimetry (µPTV)
title_fullStr Measurement of Electrokinetically induced hydrodynamics at Ion-selective interfaces using 3D Micro particle tracking velocimetry (µPTV)
title_full_unstemmed Measurement of Electrokinetically induced hydrodynamics at Ion-selective interfaces using 3D Micro particle tracking velocimetry (µPTV)
title_short Measurement of Electrokinetically induced hydrodynamics at Ion-selective interfaces using 3D Micro particle tracking velocimetry (µPTV)
title_sort measurement of electrokinetically induced hydrodynamics at ion-selective interfaces using 3d micro particle tracking velocimetry (µptv)
topic Method Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9421390/
https://www.ncbi.nlm.nih.gov/pubmed/36046738
http://dx.doi.org/10.1016/j.mex.2022.101814
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