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A New Theoretical Approach of Wall Transpiration in the Cavity Flow of the Ferrofluids

An idea of permeable (suction/injection) chamber is proposed in the current work to control the secondary vortices appearing in the well-known lid-driven cavity flow by means of the water based ferrofluids. The Rosensweig model is conveniently adopted for the mathematical analysis of the physical pr...

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Autores principales: Siddiqui, Abuzar Abid, Turkyilmazoglu, Mustafa
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6630330/
https://www.ncbi.nlm.nih.gov/pubmed/31167483
http://dx.doi.org/10.3390/mi10060373
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author Siddiqui, Abuzar Abid
Turkyilmazoglu, Mustafa
author_facet Siddiqui, Abuzar Abid
Turkyilmazoglu, Mustafa
author_sort Siddiqui, Abuzar Abid
collection PubMed
description An idea of permeable (suction/injection) chamber is proposed in the current work to control the secondary vortices appearing in the well-known lid-driven cavity flow by means of the water based ferrofluids. The Rosensweig model is conveniently adopted for the mathematical analysis of the physical problem. The governing equation of model is first transformed into the vorticity transport equation. A special finite difference method in association with the successive over-relaxation method (SOR) is then employed to numerically simulate the flow behavior. The effects of intensity of magnetic source (controlled by the Stuart number), aspect ratio of the cavity, rate of permeability (i.e., [Formula: see text]), ratio of speed of suction/injection [Formula: see text] to the sliding-speed [Formula: see text] of the upper wall of a cavity, and Reynolds number on the ferrofluid in the cavity are fully examined. It is found that the secondary vortices residing on the lower wall of the cavity are dissolved by the implementation of the suction/injection chamber. Their character is dependent on the rate of permeability. The intensity of magnetic source affects the system in such a way to alter the flow and to transport the fluid away from the magnetic source location. It also reduces the loading effects on the walls of the cavity. If the depth of cavity (or the aspect ratio) is increased, the secondary vortices join together to form a single secondary vortex. The number of secondary vortices is shown to increase if the Reynolds number is increased for both the clear fluid as well as the ferrofluids. The suction and injection create resistance in settlement of solid ferroparticles on the bottom. The results obtained are validated with the existing data in the literature and satisfactory agreement is observed. The presented problem may find applications in biomedical, pharmaceutical, and engineering industries.
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spelling pubmed-66303302019-08-19 A New Theoretical Approach of Wall Transpiration in the Cavity Flow of the Ferrofluids Siddiqui, Abuzar Abid Turkyilmazoglu, Mustafa Micromachines (Basel) Article An idea of permeable (suction/injection) chamber is proposed in the current work to control the secondary vortices appearing in the well-known lid-driven cavity flow by means of the water based ferrofluids. The Rosensweig model is conveniently adopted for the mathematical analysis of the physical problem. The governing equation of model is first transformed into the vorticity transport equation. A special finite difference method in association with the successive over-relaxation method (SOR) is then employed to numerically simulate the flow behavior. The effects of intensity of magnetic source (controlled by the Stuart number), aspect ratio of the cavity, rate of permeability (i.e., [Formula: see text]), ratio of speed of suction/injection [Formula: see text] to the sliding-speed [Formula: see text] of the upper wall of a cavity, and Reynolds number on the ferrofluid in the cavity are fully examined. It is found that the secondary vortices residing on the lower wall of the cavity are dissolved by the implementation of the suction/injection chamber. Their character is dependent on the rate of permeability. The intensity of magnetic source affects the system in such a way to alter the flow and to transport the fluid away from the magnetic source location. It also reduces the loading effects on the walls of the cavity. If the depth of cavity (or the aspect ratio) is increased, the secondary vortices join together to form a single secondary vortex. The number of secondary vortices is shown to increase if the Reynolds number is increased for both the clear fluid as well as the ferrofluids. The suction and injection create resistance in settlement of solid ferroparticles on the bottom. The results obtained are validated with the existing data in the literature and satisfactory agreement is observed. The presented problem may find applications in biomedical, pharmaceutical, and engineering industries. MDPI 2019-06-04 /pmc/articles/PMC6630330/ /pubmed/31167483 http://dx.doi.org/10.3390/mi10060373 Text en © 2019 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Siddiqui, Abuzar Abid
Turkyilmazoglu, Mustafa
A New Theoretical Approach of Wall Transpiration in the Cavity Flow of the Ferrofluids
title A New Theoretical Approach of Wall Transpiration in the Cavity Flow of the Ferrofluids
title_full A New Theoretical Approach of Wall Transpiration in the Cavity Flow of the Ferrofluids
title_fullStr A New Theoretical Approach of Wall Transpiration in the Cavity Flow of the Ferrofluids
title_full_unstemmed A New Theoretical Approach of Wall Transpiration in the Cavity Flow of the Ferrofluids
title_short A New Theoretical Approach of Wall Transpiration in the Cavity Flow of the Ferrofluids
title_sort new theoretical approach of wall transpiration in the cavity flow of the ferrofluids
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6630330/
https://www.ncbi.nlm.nih.gov/pubmed/31167483
http://dx.doi.org/10.3390/mi10060373
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