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Mathematical analysis of nonlinear thermal radiation and nanoparticle aggregation on unsteady MHD flow of micropolar nanofluid over shrinking sheet

SIGNIFICANCE OF STUDY: Typical liquids aren't great for engineering because of their low heat conductivity. To enhance heat transfer capabilities in industries as diverse as computers, pharmaceuticals, and molten metals, researchers and scientists have developed nanofluids, which are composed o...

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Detalles Bibliográficos
Autores principales: Guedri, Kamel, Mahmood, Zafar, Fadhl, Bandar M., Makhdoum, Basim M., Eldin, Sayed M., Khan, Umar
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10011001/
https://www.ncbi.nlm.nih.gov/pubmed/36925526
http://dx.doi.org/10.1016/j.heliyon.2023.e14248
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author Guedri, Kamel
Mahmood, Zafar
Fadhl, Bandar M.
Makhdoum, Basim M.
Eldin, Sayed M.
Khan, Umar
author_facet Guedri, Kamel
Mahmood, Zafar
Fadhl, Bandar M.
Makhdoum, Basim M.
Eldin, Sayed M.
Khan, Umar
author_sort Guedri, Kamel
collection PubMed
description SIGNIFICANCE OF STUDY: Typical liquids aren't great for engineering because of their low heat conductivity. To enhance heat transfer capabilities in industries as diverse as computers, pharmaceuticals, and molten metals, researchers and scientists have developed nanofluids, which are composed of nanoparticles distributed in a base fluid. AIM OF STUDY: Mathematical modeling of micropolar [Formula: see text] nanofluid driven by a deformable sheet in the stagnation area with nanoparticle aggregation, thermal radiation, and the mass suction action has been investigated in this paper. In this case, copper [Formula: see text] nanoparticles make up the nanofluid. METHOD: ology: We have used suitable transformations to arrive at a system of nonlinear ODEs, which we then solve numerically in MATHEMATICA using Runge-Kutta methods of the fourth order coupled with shooting approaches. FINDINGS: Tables and graphs are used to examine the effects of immersed flow and display profiles of physical parameters of interest. This includes velocities, temperatures, skin friction, and Nusselt numbers. The average heat transfer rate increased to [Formula: see text] as the volume percentage of copper nanoparticles in micropolar nanofluid increased from [Formula: see text] to [Formula: see text]. Additionally, the results showed that the local Nusselt number of the micropolar nanofluid increased along with an increase in the unsteady and radiation parameters. However, its value is reduced in an undeniable fashion if a material parameter is present. The impact of radiation on the aggregation of nanoparticles is compared and contrasted with the effects of a non-radiative scenario, and the resulting fluctuations in Nusselt numbers are provided in tables. When the results of this study were compared to data that had already been published about some cases, a lot of agreement was found.
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spelling pubmed-100110012023-03-15 Mathematical analysis of nonlinear thermal radiation and nanoparticle aggregation on unsteady MHD flow of micropolar nanofluid over shrinking sheet Guedri, Kamel Mahmood, Zafar Fadhl, Bandar M. Makhdoum, Basim M. Eldin, Sayed M. Khan, Umar Heliyon Research Article SIGNIFICANCE OF STUDY: Typical liquids aren't great for engineering because of their low heat conductivity. To enhance heat transfer capabilities in industries as diverse as computers, pharmaceuticals, and molten metals, researchers and scientists have developed nanofluids, which are composed of nanoparticles distributed in a base fluid. AIM OF STUDY: Mathematical modeling of micropolar [Formula: see text] nanofluid driven by a deformable sheet in the stagnation area with nanoparticle aggregation, thermal radiation, and the mass suction action has been investigated in this paper. In this case, copper [Formula: see text] nanoparticles make up the nanofluid. METHOD: ology: We have used suitable transformations to arrive at a system of nonlinear ODEs, which we then solve numerically in MATHEMATICA using Runge-Kutta methods of the fourth order coupled with shooting approaches. FINDINGS: Tables and graphs are used to examine the effects of immersed flow and display profiles of physical parameters of interest. This includes velocities, temperatures, skin friction, and Nusselt numbers. The average heat transfer rate increased to [Formula: see text] as the volume percentage of copper nanoparticles in micropolar nanofluid increased from [Formula: see text] to [Formula: see text]. Additionally, the results showed that the local Nusselt number of the micropolar nanofluid increased along with an increase in the unsteady and radiation parameters. However, its value is reduced in an undeniable fashion if a material parameter is present. The impact of radiation on the aggregation of nanoparticles is compared and contrasted with the effects of a non-radiative scenario, and the resulting fluctuations in Nusselt numbers are provided in tables. When the results of this study were compared to data that had already been published about some cases, a lot of agreement was found. Elsevier 2023-03-08 /pmc/articles/PMC10011001/ /pubmed/36925526 http://dx.doi.org/10.1016/j.heliyon.2023.e14248 Text en © 2023 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Article
Guedri, Kamel
Mahmood, Zafar
Fadhl, Bandar M.
Makhdoum, Basim M.
Eldin, Sayed M.
Khan, Umar
Mathematical analysis of nonlinear thermal radiation and nanoparticle aggregation on unsteady MHD flow of micropolar nanofluid over shrinking sheet
title Mathematical analysis of nonlinear thermal radiation and nanoparticle aggregation on unsteady MHD flow of micropolar nanofluid over shrinking sheet
title_full Mathematical analysis of nonlinear thermal radiation and nanoparticle aggregation on unsteady MHD flow of micropolar nanofluid over shrinking sheet
title_fullStr Mathematical analysis of nonlinear thermal radiation and nanoparticle aggregation on unsteady MHD flow of micropolar nanofluid over shrinking sheet
title_full_unstemmed Mathematical analysis of nonlinear thermal radiation and nanoparticle aggregation on unsteady MHD flow of micropolar nanofluid over shrinking sheet
title_short Mathematical analysis of nonlinear thermal radiation and nanoparticle aggregation on unsteady MHD flow of micropolar nanofluid over shrinking sheet
title_sort mathematical analysis of nonlinear thermal radiation and nanoparticle aggregation on unsteady mhd flow of micropolar nanofluid over shrinking sheet
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10011001/
https://www.ncbi.nlm.nih.gov/pubmed/36925526
http://dx.doi.org/10.1016/j.heliyon.2023.e14248
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