Central composite design in predicting heat transfer rate on the time-dependent flow of Williamson nanofluid with chemical reaction: A response surface methodology

The unsteady magnetohydrodynamic motion of non-Newtonian nanofluids via a permeable surface has attracted considerable interest due to its wide range of commercial applications. Particularly, in several industrial processes, cooling of electronic devices, polymer extrusion as well as biomedical engi...

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Main Authors: B.C. Rout, Subhajit Panda, S.R. Mishra, Rupa Baithalu
Format: Article
Language:English
Published: Elsevier 2025-03-01
Series:Partial Differential Equations in Applied Mathematics
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Online Access:http://www.sciencedirect.com/science/article/pii/S2666818124004522
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author B.C. Rout
Subhajit Panda
S.R. Mishra
Rupa Baithalu
author_facet B.C. Rout
Subhajit Panda
S.R. Mishra
Rupa Baithalu
author_sort B.C. Rout
collection DOAJ
description The unsteady magnetohydrodynamic motion of non-Newtonian nanofluids via a permeable surface has attracted considerable interest due to its wide range of commercial applications. Particularly, in several industrial processes, cooling of electronic devices, polymer extrusion as well as biomedical engineering areas its utility is vital. The cross-diffusion of thermal and solutal is critical as they influence the distribution of migration of the nanoparticles, affecting the thermal properties. This study focuses on the magnetised flow of a Williamson nanofluid through a porous matrix embedded in a permeable, expanding surface. The simultaneous interaction of Brownian and thermophoresis along with the thermal radiation shows influential characteristics in enhancing the thermal properties. Further, the interaction of the heat source/sink along with chemical species enriches the flow phenomena. In practical scenario, the porous medium along with stretching surface used in filtration, oil recovery, chemical reactors, etc. The designed governing dimensional form of the equations is re-constructed into non-dimensional form by using appropriate transformations. Further, numerical simulation is carried out by utilizing shooting along with Runge-Kutta fourth-order technique. Moreover, results demonstrate that both Brownian and thermophoresis significantly enhances the particle concentration and temperature distribution and the existence of magnetism and chemical reaction further modifies the flow characteristics. Further, a statistical approach embedding central composite design is executed for the efficient heat transfer rate utilizing various influencing terms. It is revealed that the significant enhancement is projected for the variation the heat source but the magnetization decelerates the response of Nusselt number throughout.
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spelling doaj-art-9379c84a0a954dddb0cb1815e8a688292025-01-09T06:14:50ZengElsevierPartial Differential Equations in Applied Mathematics2666-81812025-03-0113101066Central composite design in predicting heat transfer rate on the time-dependent flow of Williamson nanofluid with chemical reaction: A response surface methodologyB.C. Rout0Subhajit Panda1S.R. Mishra2Rupa Baithalu3Department of Mathematics, Sarala Birla University, Ranchi 835103, IndiaCentre for Data Science, Department of Computer Scince and Engineering, Siksha ‘O’ Anusandhan Deemed to be University, Bhubaneswar, Odisha 751030, IndiaDepartment of Mathematics, Siksha ‘O’ Anusandhan Deemed to be University, Bhubaneswar, Odisha 751030, IndiaDepartment of Mathematics, Siksha ‘O’ Anusandhan Deemed to be University, Bhubaneswar, Odisha 751030, India; Corresponding author.The unsteady magnetohydrodynamic motion of non-Newtonian nanofluids via a permeable surface has attracted considerable interest due to its wide range of commercial applications. Particularly, in several industrial processes, cooling of electronic devices, polymer extrusion as well as biomedical engineering areas its utility is vital. The cross-diffusion of thermal and solutal is critical as they influence the distribution of migration of the nanoparticles, affecting the thermal properties. This study focuses on the magnetised flow of a Williamson nanofluid through a porous matrix embedded in a permeable, expanding surface. The simultaneous interaction of Brownian and thermophoresis along with the thermal radiation shows influential characteristics in enhancing the thermal properties. Further, the interaction of the heat source/sink along with chemical species enriches the flow phenomena. In practical scenario, the porous medium along with stretching surface used in filtration, oil recovery, chemical reactors, etc. The designed governing dimensional form of the equations is re-constructed into non-dimensional form by using appropriate transformations. Further, numerical simulation is carried out by utilizing shooting along with Runge-Kutta fourth-order technique. Moreover, results demonstrate that both Brownian and thermophoresis significantly enhances the particle concentration and temperature distribution and the existence of magnetism and chemical reaction further modifies the flow characteristics. Further, a statistical approach embedding central composite design is executed for the efficient heat transfer rate utilizing various influencing terms. It is revealed that the significant enhancement is projected for the variation the heat source but the magnetization decelerates the response of Nusselt number throughout.http://www.sciencedirect.com/science/article/pii/S2666818124004522Williamson nanofluidMHDBrownian motion & thermophoresisCentral composite designRunge-Kutta shooting method
spellingShingle B.C. Rout
Subhajit Panda
S.R. Mishra
Rupa Baithalu
Central composite design in predicting heat transfer rate on the time-dependent flow of Williamson nanofluid with chemical reaction: A response surface methodology
Partial Differential Equations in Applied Mathematics
Williamson nanofluid
MHD
Brownian motion & thermophoresis
Central composite design
Runge-Kutta shooting method
title Central composite design in predicting heat transfer rate on the time-dependent flow of Williamson nanofluid with chemical reaction: A response surface methodology
title_full Central composite design in predicting heat transfer rate on the time-dependent flow of Williamson nanofluid with chemical reaction: A response surface methodology
title_fullStr Central composite design in predicting heat transfer rate on the time-dependent flow of Williamson nanofluid with chemical reaction: A response surface methodology
title_full_unstemmed Central composite design in predicting heat transfer rate on the time-dependent flow of Williamson nanofluid with chemical reaction: A response surface methodology
title_short Central composite design in predicting heat transfer rate on the time-dependent flow of Williamson nanofluid with chemical reaction: A response surface methodology
title_sort central composite design in predicting heat transfer rate on the time dependent flow of williamson nanofluid with chemical reaction a response surface methodology
topic Williamson nanofluid
MHD
Brownian motion & thermophoresis
Central composite design
Runge-Kutta shooting method
url http://www.sciencedirect.com/science/article/pii/S2666818124004522
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