Significance of the shape factor in magnetized flow of radiative hybrid nanofluid configured by exponentially elongated surface with non-fourier thermal flux model

The current investigation explicates the flow dynamics together with thermal transport of a magnetized and thermally radiative SWCNT−MWCNT/H2O hybrid nanofluid past an exponentially elongated surface. Additionally, assessments of mixed convection are expounded through the momentum equation while the influence of non-Fourier heat flux and heat generation is explicated in the energy equation. The study reveals that the flow velocity experiences a notable growth with the inclusion of mixed convection, while the introduction of a magnetic field and aligned magnetic angle demonstrates a contrary trend. An elevated thermal relaxation and mixed convection parameters are associated with a decrement in fluid temperature. Meanwhile, an increased shape factor has a favourable impact on the temperature profile. Furthermore, the introduction of blade-shaped nanoparticles into the SWCNT−MWCNT/H2O results in a thermal efficiency advantage of approximately 26.015% over SWCNT/H2O, while employing spherical-shaped nanoparticles in the same hybrid nanofluid yields only an approximate 5.594% improvement in thermal transfer rate over SWCNT/H2O.

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Publication Details

Journal
International Journal of Modelling and Simulation
Published
2026-09-12
DOI
https://doi.org/10.1080/02286203.2026.2728564
Primary Topic
Nanofluid Flow and Heat Transfer
Type
article
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article

Significance of the shape factor in magnetized flow of radiative hybrid nanofluid configured by exponentially elongated surface with non-fourier thermal flux model

P. V. Satya Narayana, K. Madiha Takreem
International Journal of Modelling and Simulation
Nanofluid Flow and Heat Transfer
article

Significance of the shape factor in magnetized flow of radiative hybrid nanofluid configured by exponentially elongated surface with non-fourier thermal flux model

P. V. Satya Narayana, K. Madiha Takreem
article en

Abstract

The current investigation explicates the flow dynamics together with thermal transport of a magnetized and thermally radiative SWCNT−MWCNT/H2O hybrid nanofluid past an exponentially elongated surface. Additionally, assessments of mixed convection are expounded through the momentum equation while the influence of non-Fourier heat flux and heat generation is explicated in the energy equation. The study reveals that the flow velocity experiences a notable growth with the inclusion of mixed convection, while the introduction of a magnetic field and aligned magnetic angle demonstrates a contrary trend. An elevated thermal relaxation and mixed convection parameters are associated with a decrement in fluid temperature. Meanwhile, an increased shape factor has a favourable impact on the temperature profile. Furthermore, the introduction of blade-shaped nanoparticles into the SWCNT−MWCNT/H2O results in a thermal efficiency advantage of approximately 26.015% over SWCNT/H2O, while employing spherical-shaped nanoparticles in the same hybrid nanofluid yields only an approximate 5.594% improvement in thermal transfer rate over SWCNT/H2O.

International Journal of Modelling and Simulation
Vellore Institute of Technology University (IN)
Affordable and clean energy
Openalex Percentile: Top 20%
Nanofluid Flow and Heat Transfer
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Significance of the shape factor in magnetized flow of radiative hybrid nanofluid configured by exponentially elongated surface with non-fourier thermal flux model — P. V. Satya Narayana, K. Madiha Takreem · International Journal of Modelling and Simulation (2026) | TGRS Research Map | TGRS