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γ-Nanofluid Thermal Transport between Parallel Plates Suspended by Micro-Cantilever Sensor by Incorporating the Effective Prandtl Model: Applications to Biological and Medical Sciences

The flow of nanofluid between infinite parallel plates suspended by micro-cantilever sensors is significant. The analysis of such flows is a rich research area due to the variety of applications it has in chemical, biological and medical sciences. Micro-cantilever sensors play a significant role in...

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Autores principales: Khan, Umar, Adnan, Ahmed, Naveed, Mohyud-Din, Syed Tauseef, Chu, Yu-Ming, Khan, Ilyas, Nisar, Kottakkaran Sooppy
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7221786/
https://www.ncbi.nlm.nih.gov/pubmed/32294974
http://dx.doi.org/10.3390/molecules25081777
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author Khan, Umar
Adnan,
Ahmed, Naveed
Mohyud-Din, Syed Tauseef
Chu, Yu-Ming
Khan, Ilyas
Nisar, Kottakkaran Sooppy
author_facet Khan, Umar
Adnan,
Ahmed, Naveed
Mohyud-Din, Syed Tauseef
Chu, Yu-Ming
Khan, Ilyas
Nisar, Kottakkaran Sooppy
author_sort Khan, Umar
collection PubMed
description The flow of nanofluid between infinite parallel plates suspended by micro-cantilever sensors is significant. The analysis of such flows is a rich research area due to the variety of applications it has in chemical, biological and medical sciences. Micro-cantilever sensors play a significant role in accurately sensing different diseases, and they can be used to detect many hazardous and bio-warfare agents. Therefore, flow water and ethylene glycol (EG) composed by γ-nanoparticles is used. Firstly, the governing nanofluid model is transformed into two self-similar nanofluid models on the basis of their effective models. Then, a numerical method is adopted for solution purposes, and both the nanofluid models are solved. To enhance the heat transfer characteristics of the models, the effective Prandtl model is ingrained in the energy equation. The velocity F’(η) decreases with respect to the suction of the fluid, because more fluid particles drags on the surface for suction, leading to an abrupt decrement in F’(η). The velocity F’(η) increases for injection of the fluid from the upper end, and therefore the momentum boundary layer region is prolonged. A high volume fraction factor is responsible for the denser characteristics of the nanofluids, due to which the fluids become more viscous, and the velocity F’(η) drops abruptly, with the magnetic parameters favoring velocity F’(η). An increase in temperature [Formula: see text] of Al(2)O(3)-H(2)O and γAl(2)O(3)-C(2)H(6)O(2) nanofluids was reported at higher fraction factors with permeable parameter effects. Finally, a comparative analysis is presented by restricting the flow parameters, which shows the reliability of the study.
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spelling pubmed-72217862020-05-21 γ-Nanofluid Thermal Transport between Parallel Plates Suspended by Micro-Cantilever Sensor by Incorporating the Effective Prandtl Model: Applications to Biological and Medical Sciences Khan, Umar Adnan, Ahmed, Naveed Mohyud-Din, Syed Tauseef Chu, Yu-Ming Khan, Ilyas Nisar, Kottakkaran Sooppy Molecules Article The flow of nanofluid between infinite parallel plates suspended by micro-cantilever sensors is significant. The analysis of such flows is a rich research area due to the variety of applications it has in chemical, biological and medical sciences. Micro-cantilever sensors play a significant role in accurately sensing different diseases, and they can be used to detect many hazardous and bio-warfare agents. Therefore, flow water and ethylene glycol (EG) composed by γ-nanoparticles is used. Firstly, the governing nanofluid model is transformed into two self-similar nanofluid models on the basis of their effective models. Then, a numerical method is adopted for solution purposes, and both the nanofluid models are solved. To enhance the heat transfer characteristics of the models, the effective Prandtl model is ingrained in the energy equation. The velocity F’(η) decreases with respect to the suction of the fluid, because more fluid particles drags on the surface for suction, leading to an abrupt decrement in F’(η). The velocity F’(η) increases for injection of the fluid from the upper end, and therefore the momentum boundary layer region is prolonged. A high volume fraction factor is responsible for the denser characteristics of the nanofluids, due to which the fluids become more viscous, and the velocity F’(η) drops abruptly, with the magnetic parameters favoring velocity F’(η). An increase in temperature [Formula: see text] of Al(2)O(3)-H(2)O and γAl(2)O(3)-C(2)H(6)O(2) nanofluids was reported at higher fraction factors with permeable parameter effects. Finally, a comparative analysis is presented by restricting the flow parameters, which shows the reliability of the study. MDPI 2020-04-13 /pmc/articles/PMC7221786/ /pubmed/32294974 http://dx.doi.org/10.3390/molecules25081777 Text en © 2020 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
Khan, Umar
Adnan,
Ahmed, Naveed
Mohyud-Din, Syed Tauseef
Chu, Yu-Ming
Khan, Ilyas
Nisar, Kottakkaran Sooppy
γ-Nanofluid Thermal Transport between Parallel Plates Suspended by Micro-Cantilever Sensor by Incorporating the Effective Prandtl Model: Applications to Biological and Medical Sciences
title γ-Nanofluid Thermal Transport between Parallel Plates Suspended by Micro-Cantilever Sensor by Incorporating the Effective Prandtl Model: Applications to Biological and Medical Sciences
title_full γ-Nanofluid Thermal Transport between Parallel Plates Suspended by Micro-Cantilever Sensor by Incorporating the Effective Prandtl Model: Applications to Biological and Medical Sciences
title_fullStr γ-Nanofluid Thermal Transport between Parallel Plates Suspended by Micro-Cantilever Sensor by Incorporating the Effective Prandtl Model: Applications to Biological and Medical Sciences
title_full_unstemmed γ-Nanofluid Thermal Transport between Parallel Plates Suspended by Micro-Cantilever Sensor by Incorporating the Effective Prandtl Model: Applications to Biological and Medical Sciences
title_short γ-Nanofluid Thermal Transport between Parallel Plates Suspended by Micro-Cantilever Sensor by Incorporating the Effective Prandtl Model: Applications to Biological and Medical Sciences
title_sort γ-nanofluid thermal transport between parallel plates suspended by micro-cantilever sensor by incorporating the effective prandtl model: applications to biological and medical sciences
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7221786/
https://www.ncbi.nlm.nih.gov/pubmed/32294974
http://dx.doi.org/10.3390/molecules25081777
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