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Numerical and Experimental Study of Cross-Sectional Effects on the Mixing Performance of the Spiral Microfluidics

Mixing at the microscale is of great importance for various applications ranging from biological and chemical synthesis to drug delivery. Among the numerous types of micromixers that have been developed, planar passive spiral micromixers have gained considerable interest due to their ease of fabrica...

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Autores principales: Rouhi, Omid, Razavi Bazaz, Sajad, Niazmand, Hamid, Mirakhorli, Fateme, Mas-hafi, Sima, A. Amiri, Hoseyn, Miansari, Morteza, Ebrahimi Warkiani, Majid
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8705925/
https://www.ncbi.nlm.nih.gov/pubmed/34945321
http://dx.doi.org/10.3390/mi12121470
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author Rouhi, Omid
Razavi Bazaz, Sajad
Niazmand, Hamid
Mirakhorli, Fateme
Mas-hafi, Sima
A. Amiri, Hoseyn
Miansari, Morteza
Ebrahimi Warkiani, Majid
author_facet Rouhi, Omid
Razavi Bazaz, Sajad
Niazmand, Hamid
Mirakhorli, Fateme
Mas-hafi, Sima
A. Amiri, Hoseyn
Miansari, Morteza
Ebrahimi Warkiani, Majid
author_sort Rouhi, Omid
collection PubMed
description Mixing at the microscale is of great importance for various applications ranging from biological and chemical synthesis to drug delivery. Among the numerous types of micromixers that have been developed, planar passive spiral micromixers have gained considerable interest due to their ease of fabrication and integration into complex miniaturized systems. However, less attention has been paid to non-planar spiral micromixers with various cross-sections and the effects of these cross-sections on the total performance of the micromixer. Here, mixing performance in a spiral micromixer with different channel cross-sections is evaluated experimentally and numerically in the Re range of 0.001 to 50. The accuracy of the 3D-finite element model was first verified at different flow rates by tracking the mixing index across the loops, which were directly proportional to the spiral radius and were hence also proportional to the Dean flow. It is shown that higher flow rates induce stronger vortices compared to lower flow rates; thus, fewer loops are required for efficient mixing. The numerical study revealed that a large-angle outward trapezoidal cross-section provides the highest mixing performance, reaching efficiencies of up to 95%. Moreover, the velocity/vorticity along the channel length was analyzed and discussed to evaluate channel mixing performance. A relatively low pressure drop (<130 kPa) makes these passive spiral micromixers ideal candidates for various lab-on-chip applications.
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spelling pubmed-87059252021-12-25 Numerical and Experimental Study of Cross-Sectional Effects on the Mixing Performance of the Spiral Microfluidics Rouhi, Omid Razavi Bazaz, Sajad Niazmand, Hamid Mirakhorli, Fateme Mas-hafi, Sima A. Amiri, Hoseyn Miansari, Morteza Ebrahimi Warkiani, Majid Micromachines (Basel) Article Mixing at the microscale is of great importance for various applications ranging from biological and chemical synthesis to drug delivery. Among the numerous types of micromixers that have been developed, planar passive spiral micromixers have gained considerable interest due to their ease of fabrication and integration into complex miniaturized systems. However, less attention has been paid to non-planar spiral micromixers with various cross-sections and the effects of these cross-sections on the total performance of the micromixer. Here, mixing performance in a spiral micromixer with different channel cross-sections is evaluated experimentally and numerically in the Re range of 0.001 to 50. The accuracy of the 3D-finite element model was first verified at different flow rates by tracking the mixing index across the loops, which were directly proportional to the spiral radius and were hence also proportional to the Dean flow. It is shown that higher flow rates induce stronger vortices compared to lower flow rates; thus, fewer loops are required for efficient mixing. The numerical study revealed that a large-angle outward trapezoidal cross-section provides the highest mixing performance, reaching efficiencies of up to 95%. Moreover, the velocity/vorticity along the channel length was analyzed and discussed to evaluate channel mixing performance. A relatively low pressure drop (<130 kPa) makes these passive spiral micromixers ideal candidates for various lab-on-chip applications. MDPI 2021-11-29 /pmc/articles/PMC8705925/ /pubmed/34945321 http://dx.doi.org/10.3390/mi12121470 Text en © 2021 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
Rouhi, Omid
Razavi Bazaz, Sajad
Niazmand, Hamid
Mirakhorli, Fateme
Mas-hafi, Sima
A. Amiri, Hoseyn
Miansari, Morteza
Ebrahimi Warkiani, Majid
Numerical and Experimental Study of Cross-Sectional Effects on the Mixing Performance of the Spiral Microfluidics
title Numerical and Experimental Study of Cross-Sectional Effects on the Mixing Performance of the Spiral Microfluidics
title_full Numerical and Experimental Study of Cross-Sectional Effects on the Mixing Performance of the Spiral Microfluidics
title_fullStr Numerical and Experimental Study of Cross-Sectional Effects on the Mixing Performance of the Spiral Microfluidics
title_full_unstemmed Numerical and Experimental Study of Cross-Sectional Effects on the Mixing Performance of the Spiral Microfluidics
title_short Numerical and Experimental Study of Cross-Sectional Effects on the Mixing Performance of the Spiral Microfluidics
title_sort numerical and experimental study of cross-sectional effects on the mixing performance of the spiral microfluidics
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8705925/
https://www.ncbi.nlm.nih.gov/pubmed/34945321
http://dx.doi.org/10.3390/mi12121470
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