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Flow of Non-Newtonian Fluids in a Single-Cavity Microchannel

Having a basic understanding of non-Newtonian fluid flow through porous media, which usually consist of series of expansions and contractions, is of importance for enhanced oil recovery, groundwater remediation, microfluidic particle manipulation, etc. The flow in contraction and/or expansion microc...

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Autores principales: Raihan, Mahmud Kamal, Jagdale, Purva P., Wu, Sen, Shao, Xingchen, Bostwick, Joshua B., Pan, Xinxiang, Xuan, Xiangchun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8306080/
https://www.ncbi.nlm.nih.gov/pubmed/34357246
http://dx.doi.org/10.3390/mi12070836
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author Raihan, Mahmud Kamal
Jagdale, Purva P.
Wu, Sen
Shao, Xingchen
Bostwick, Joshua B.
Pan, Xinxiang
Xuan, Xiangchun
author_facet Raihan, Mahmud Kamal
Jagdale, Purva P.
Wu, Sen
Shao, Xingchen
Bostwick, Joshua B.
Pan, Xinxiang
Xuan, Xiangchun
author_sort Raihan, Mahmud Kamal
collection PubMed
description Having a basic understanding of non-Newtonian fluid flow through porous media, which usually consist of series of expansions and contractions, is of importance for enhanced oil recovery, groundwater remediation, microfluidic particle manipulation, etc. The flow in contraction and/or expansion microchannel is unbounded in the primary direction and has been widely studied before. In contrast, there has been very little work on the understanding of such flow in an expansion–contraction microchannel with a confined cavity. We investigate the flow of five types of non-Newtonian fluids with distinct rheological properties and water through a planar single-cavity microchannel. All fluids are tested in a similarly wide range of flow rates, from which the observed flow regimes and vortex development are summarized in the same dimensionless parameter spaces for a unified understanding of the effects of fluid inertia, shear thinning, and elasticity as well as confinement. Our results indicate that fluid inertia is responsible for developing vortices in the expansion flow, which is trivially affected by the confinement. Fluid shear thinning causes flow separations on the contraction walls, and the interplay between the effects of shear thinning and inertia is dictated by the confinement. Fluid elasticity introduces instability and asymmetry to the contraction flow of polymers with long chains while suppressing the fluid inertia-induced expansion flow vortices. However, the formation and fluctuation of such elasto-inertial fluid vortices exhibit strong digressions from the unconfined flow pattern in a contraction–expansion microchannel of similar dimensions.
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spelling pubmed-83060802021-07-25 Flow of Non-Newtonian Fluids in a Single-Cavity Microchannel Raihan, Mahmud Kamal Jagdale, Purva P. Wu, Sen Shao, Xingchen Bostwick, Joshua B. Pan, Xinxiang Xuan, Xiangchun Micromachines (Basel) Article Having a basic understanding of non-Newtonian fluid flow through porous media, which usually consist of series of expansions and contractions, is of importance for enhanced oil recovery, groundwater remediation, microfluidic particle manipulation, etc. The flow in contraction and/or expansion microchannel is unbounded in the primary direction and has been widely studied before. In contrast, there has been very little work on the understanding of such flow in an expansion–contraction microchannel with a confined cavity. We investigate the flow of five types of non-Newtonian fluids with distinct rheological properties and water through a planar single-cavity microchannel. All fluids are tested in a similarly wide range of flow rates, from which the observed flow regimes and vortex development are summarized in the same dimensionless parameter spaces for a unified understanding of the effects of fluid inertia, shear thinning, and elasticity as well as confinement. Our results indicate that fluid inertia is responsible for developing vortices in the expansion flow, which is trivially affected by the confinement. Fluid shear thinning causes flow separations on the contraction walls, and the interplay between the effects of shear thinning and inertia is dictated by the confinement. Fluid elasticity introduces instability and asymmetry to the contraction flow of polymers with long chains while suppressing the fluid inertia-induced expansion flow vortices. However, the formation and fluctuation of such elasto-inertial fluid vortices exhibit strong digressions from the unconfined flow pattern in a contraction–expansion microchannel of similar dimensions. MDPI 2021-07-18 /pmc/articles/PMC8306080/ /pubmed/34357246 http://dx.doi.org/10.3390/mi12070836 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
Raihan, Mahmud Kamal
Jagdale, Purva P.
Wu, Sen
Shao, Xingchen
Bostwick, Joshua B.
Pan, Xinxiang
Xuan, Xiangchun
Flow of Non-Newtonian Fluids in a Single-Cavity Microchannel
title Flow of Non-Newtonian Fluids in a Single-Cavity Microchannel
title_full Flow of Non-Newtonian Fluids in a Single-Cavity Microchannel
title_fullStr Flow of Non-Newtonian Fluids in a Single-Cavity Microchannel
title_full_unstemmed Flow of Non-Newtonian Fluids in a Single-Cavity Microchannel
title_short Flow of Non-Newtonian Fluids in a Single-Cavity Microchannel
title_sort flow of non-newtonian fluids in a single-cavity microchannel
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8306080/
https://www.ncbi.nlm.nih.gov/pubmed/34357246
http://dx.doi.org/10.3390/mi12070836
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