An analysis of upper-convected Maxwell nanofluid flow over a stretching surface: Theoretical and numerical approaches

The flow of fluids in three dimensions is more important in material science, visual design, data science, physical science, the fabrication of plastics, and biological processes.Subsequently, this article has concentrated on investigating nanofluid over a three-dimensional surface in a magnetic fie...

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Main Authors: Baskaran Yamuna, Athimoolam Meena, Lakshmanan Rajendran, Mohammad Izadi
Format: Article
Language:English
Published: Elsevier 2025-06-01
Series:Partial Differential Equations in Applied Mathematics
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Online Access:http://www.sciencedirect.com/science/article/pii/S2666818125001305
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author Baskaran Yamuna
Athimoolam Meena
Lakshmanan Rajendran
Mohammad Izadi
author_facet Baskaran Yamuna
Athimoolam Meena
Lakshmanan Rajendran
Mohammad Izadi
author_sort Baskaran Yamuna
collection DOAJ
description The flow of fluids in three dimensions is more important in material science, visual design, data science, physical science, the fabrication of plastics, and biological processes.Subsequently, this article has concentrated on investigating nanofluid over a three-dimensional surface in a magnetic field via a bidirectional, non-linearly stretched surface.A mathematical model of the magnetohydrodynamics upper-convected maxwell nanofluid flow is discussed. A set of nonlinear differential equations with a nonlinear component about heat radiation is the basis for this model. The innovation of this research is to analyze the variations in fluid and thermal parameters, namely velocity, temperature, and concentration. It also involves calculating the Nusselt and Sherwood numbers for an upper convected Maxwell nanofluid on a bidirectional stretching sheet. This analysis is being conducted for the first time using analytical (Rajendran-Joy's method) and numerical calculation (Matlab). The analytical results are verified with numerical methods to determine their efficacy and accuracy. The derived analytical results examine the effects of chemical reactions, magnetic fields, and other relevant parameters on temperature, species concentration, and fluid velocity. The graphs and tables show the impact of different variables on velocity, temperature, and concentration. Additionally, a sensitivity study of these variables to velocity is provided.
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series Partial Differential Equations in Applied Mathematics
spelling doaj-art-ca994d3524044cbfa6b55414bc93a5ee2025-08-20T02:11:25ZengElsevierPartial Differential Equations in Applied Mathematics2666-81812025-06-011410120310.1016/j.padiff.2025.101203An analysis of upper-convected Maxwell nanofluid flow over a stretching surface: Theoretical and numerical approachesBaskaran Yamuna0Athimoolam Meena1Lakshmanan Rajendran2Mohammad Izadi3Department of Mathematics, Saraswathi Narayanan College, Madurai 625022, IndiaDepartment of Mathematics, Saraswathi Narayanan College, Madurai 625022, IndiaDepartment of Mathematics, AMET University, Chennai 603112, India; Corresponding authors.Department of Applied Mathematics, Faculty of Mathematics and Computer, Shahid Bahonar University of Kerman, Kerman 76169-14111, Iran; Corresponding authors.The flow of fluids in three dimensions is more important in material science, visual design, data science, physical science, the fabrication of plastics, and biological processes.Subsequently, this article has concentrated on investigating nanofluid over a three-dimensional surface in a magnetic field via a bidirectional, non-linearly stretched surface.A mathematical model of the magnetohydrodynamics upper-convected maxwell nanofluid flow is discussed. A set of nonlinear differential equations with a nonlinear component about heat radiation is the basis for this model. The innovation of this research is to analyze the variations in fluid and thermal parameters, namely velocity, temperature, and concentration. It also involves calculating the Nusselt and Sherwood numbers for an upper convected Maxwell nanofluid on a bidirectional stretching sheet. This analysis is being conducted for the first time using analytical (Rajendran-Joy's method) and numerical calculation (Matlab). The analytical results are verified with numerical methods to determine their efficacy and accuracy. The derived analytical results examine the effects of chemical reactions, magnetic fields, and other relevant parameters on temperature, species concentration, and fluid velocity. The graphs and tables show the impact of different variables on velocity, temperature, and concentration. Additionally, a sensitivity study of these variables to velocity is provided.http://www.sciencedirect.com/science/article/pii/S2666818125001305Mathematical modellingMagnetohydrodynamics (MHD)Rajendran-joy methodNonlinear thermal radiationUpper- convected maxwell nanofluid
spellingShingle Baskaran Yamuna
Athimoolam Meena
Lakshmanan Rajendran
Mohammad Izadi
An analysis of upper-convected Maxwell nanofluid flow over a stretching surface: Theoretical and numerical approaches
Partial Differential Equations in Applied Mathematics
Mathematical modelling
Magnetohydrodynamics (MHD)
Rajendran-joy method
Nonlinear thermal radiation
Upper- convected maxwell nanofluid
title An analysis of upper-convected Maxwell nanofluid flow over a stretching surface: Theoretical and numerical approaches
title_full An analysis of upper-convected Maxwell nanofluid flow over a stretching surface: Theoretical and numerical approaches
title_fullStr An analysis of upper-convected Maxwell nanofluid flow over a stretching surface: Theoretical and numerical approaches
title_full_unstemmed An analysis of upper-convected Maxwell nanofluid flow over a stretching surface: Theoretical and numerical approaches
title_short An analysis of upper-convected Maxwell nanofluid flow over a stretching surface: Theoretical and numerical approaches
title_sort analysis of upper convected maxwell nanofluid flow over a stretching surface theoretical and numerical approaches
topic Mathematical modelling
Magnetohydrodynamics (MHD)
Rajendran-joy method
Nonlinear thermal radiation
Upper- convected maxwell nanofluid
url http://www.sciencedirect.com/science/article/pii/S2666818125001305
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