Dynamics of heat and mass transfer: Ree-Eyring nanofluid flow over a Riga plate with bioconvention and thermal radiation

Following improvements in devices used in biomedical engineering, cancer treatments, and thermal extrusion systems, this report explores the dynamics of Ree-Eyring nanofluid when subject to free convection, bioconvection, heat source, and thermal radiation over a convection-heated Riga plate. Biocon...

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Main Authors: K. Loganathan, Nazek Alessa, Reema Jain, Farhan Ali, Aurang Zaib
Format: Article
Language:English
Published: Frontiers Media S.A. 2022-10-01
Series:Frontiers in Physics
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fphy.2022.974562/full
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author K. Loganathan
Nazek Alessa
Reema Jain
Farhan Ali
Aurang Zaib
author_facet K. Loganathan
Nazek Alessa
Reema Jain
Farhan Ali
Aurang Zaib
author_sort K. Loganathan
collection DOAJ
description Following improvements in devices used in biomedical engineering, cancer treatments, and thermal extrusion systems, this report explores the dynamics of Ree-Eyring nanofluid when subject to free convection, bioconvection, heat source, and thermal radiation over a convection-heated Riga plate. Bioconvection is assessed in light of the movement of the motile microorganisms that stabilize the dispersion of nanoparticles in the fluid. The impact of thermophoresis and Brownian motion, critical in the flow of heat and mass is also considered, together with the convective boundary condition. In many manufacturing sectors, non-Newtonian nanofluid flow is a crucial cooling component. Based on these factors, partial differential equations—the governing equations that model the transportation phenomena—are converted into nonlinear ordinary differential equations using the relevant relations. Finally, the nonlinear differential equations are solved using the homotopy analysis method (HAM), and the solutions are displayed in graphs representing distinct fluid flow parameters. It is conclusively found that the skin friction coefficient increases as the mixed convection parameter value rises, while the opposite effect is seen as the bioconvection Rayleigh number grows.
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spelling doaj.art-7e44c9d7743947c4b9fddfc868af13202022-12-22T02:34:05ZengFrontiers Media S.A.Frontiers in Physics2296-424X2022-10-011010.3389/fphy.2022.974562974562Dynamics of heat and mass transfer: Ree-Eyring nanofluid flow over a Riga plate with bioconvention and thermal radiationK. Loganathan0Nazek Alessa1Reema Jain2Farhan Ali3Aurang Zaib4Department of Mathematics and Statistics, Manipal University Jaipur, Jaipur, IndiaDepartment of Mathematical Sciences, College of Sciences, Princess Nourah Bint Abdulrahman University, Riyadh, Saudi ArabiaDepartment of Mathematics and Statistics, Manipal University Jaipur, Jaipur, IndiaDepartment of Mathematical Sciences, Federal Urdu University of Arts, Sciences & Technology, Karachi, PakistanDepartment of Mathematical Sciences, Federal Urdu University of Arts, Sciences & Technology, Karachi, PakistanFollowing improvements in devices used in biomedical engineering, cancer treatments, and thermal extrusion systems, this report explores the dynamics of Ree-Eyring nanofluid when subject to free convection, bioconvection, heat source, and thermal radiation over a convection-heated Riga plate. Bioconvection is assessed in light of the movement of the motile microorganisms that stabilize the dispersion of nanoparticles in the fluid. The impact of thermophoresis and Brownian motion, critical in the flow of heat and mass is also considered, together with the convective boundary condition. In many manufacturing sectors, non-Newtonian nanofluid flow is a crucial cooling component. Based on these factors, partial differential equations—the governing equations that model the transportation phenomena—are converted into nonlinear ordinary differential equations using the relevant relations. Finally, the nonlinear differential equations are solved using the homotopy analysis method (HAM), and the solutions are displayed in graphs representing distinct fluid flow parameters. It is conclusively found that the skin friction coefficient increases as the mixed convection parameter value rises, while the opposite effect is seen as the bioconvection Rayleigh number grows.https://www.frontiersin.org/articles/10.3389/fphy.2022.974562/fullRee-Eyring nanomaterialRiga platebioconvectionthermal radiationhomotopy analysis method
spellingShingle K. Loganathan
Nazek Alessa
Reema Jain
Farhan Ali
Aurang Zaib
Dynamics of heat and mass transfer: Ree-Eyring nanofluid flow over a Riga plate with bioconvention and thermal radiation
Frontiers in Physics
Ree-Eyring nanomaterial
Riga plate
bioconvection
thermal radiation
homotopy analysis method
title Dynamics of heat and mass transfer: Ree-Eyring nanofluid flow over a Riga plate with bioconvention and thermal radiation
title_full Dynamics of heat and mass transfer: Ree-Eyring nanofluid flow over a Riga plate with bioconvention and thermal radiation
title_fullStr Dynamics of heat and mass transfer: Ree-Eyring nanofluid flow over a Riga plate with bioconvention and thermal radiation
title_full_unstemmed Dynamics of heat and mass transfer: Ree-Eyring nanofluid flow over a Riga plate with bioconvention and thermal radiation
title_short Dynamics of heat and mass transfer: Ree-Eyring nanofluid flow over a Riga plate with bioconvention and thermal radiation
title_sort dynamics of heat and mass transfer ree eyring nanofluid flow over a riga plate with bioconvention and thermal radiation
topic Ree-Eyring nanomaterial
Riga plate
bioconvection
thermal radiation
homotopy analysis method
url https://www.frontiersin.org/articles/10.3389/fphy.2022.974562/full
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