Optimizing renewable systems with nonlinear thermal radiation and inclined magnetic field using radiative Maxwell hybrid nanofluid flow over Darcy-Forchheimer surface

Thermal radiation in renewable energy applications with extreme temperatures exhibits a different behaviour from the linear relationship postulated in Rosseland’s approximation. Maximising a system’s thermal efficiency and controlling nonlinear phenomena are essential. This paper emphasises on Rosse...

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Main Authors: Sweeti Yadav, Shashi Prabha Gogate S, Dinesh P.A, Roopa K R
Format: Article
Language:English
Published: Taylor & Francis Group 2025-12-01
Series:International Journal of Sustainable Engineering
Subjects:
Online Access:https://www.tandfonline.com/doi/10.1080/19397038.2024.2449384
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author Sweeti Yadav
Shashi Prabha Gogate S
Dinesh P.A
Roopa K R
author_facet Sweeti Yadav
Shashi Prabha Gogate S
Dinesh P.A
Roopa K R
author_sort Sweeti Yadav
collection DOAJ
description Thermal radiation in renewable energy applications with extreme temperatures exhibits a different behaviour from the linear relationship postulated in Rosseland’s approximation. Maximising a system’s thermal efficiency and controlling nonlinear phenomena are essential. This paper emphasises on Rosseland nonlinear estimate for irregular radiative Maxwell Darcy–Forchheimer hybrid nanofluid flow across an inclined surface at a slope pi/4 with base fluid water and nanomaterials of iron oxide (Fe3O4) and graphene. The novelty of the present study is considering the combined effects of nonlinear thermal radiation and inclined magnetic fields in the context of Maxwell hybrid nanofluid flow, which can open new pathways for controlling energy in solar energy applications. A complex mathematical equation is solved through the similarity transformation approach and numerically resolved through MAPLE. The flow patterns for various scenarios were assessed using streamlines. The Pearson correlation coefficient method examined the linear relationship between the Nusselt number and physical parameters. The present investigation reveals that when the magnetic field’s inclination varies from pi/4 to pi/3 and there is no thermal radiation, the most substantial heat transfer rate is 12.02% in the case of suction and 18.36% in the case of injection.
format Article
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institution Kabale University
issn 1939-7038
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publishDate 2025-12-01
publisher Taylor & Francis Group
record_format Article
series International Journal of Sustainable Engineering
spelling doaj-art-d305db54304d4e16941c46bfc143739c2025-01-28T05:16:58ZengTaylor & Francis GroupInternational Journal of Sustainable Engineering1939-70381939-70462025-12-0118110.1080/19397038.2024.2449384Optimizing renewable systems with nonlinear thermal radiation and inclined magnetic field using radiative Maxwell hybrid nanofluid flow over Darcy-Forchheimer surfaceSweeti Yadav0Shashi Prabha Gogate S1Dinesh P.A2Roopa K R3Department of Mathematics, Ramaiah Institute of Technology (Affiliated to Visvesveraya Technological University, Belagavi-590018), Bangalore, IndiaDepartment of Mathematics, Ramaiah Institute of Technology (Affiliated to Visvesveraya Technological University, Belagavi-590018), Bangalore, IndiaDepartment of Mathematics, Ramaiah Institute of Technology (Affiliated to Visvesveraya Technological University, Belagavi-590018), Bangalore, IndiaDepartment of Mathematics, Ramaiah Institute of Technology (Affiliated to Visvesveraya Technological University, Belagavi-590018), Bangalore, IndiaThermal radiation in renewable energy applications with extreme temperatures exhibits a different behaviour from the linear relationship postulated in Rosseland’s approximation. Maximising a system’s thermal efficiency and controlling nonlinear phenomena are essential. This paper emphasises on Rosseland nonlinear estimate for irregular radiative Maxwell Darcy–Forchheimer hybrid nanofluid flow across an inclined surface at a slope pi/4 with base fluid water and nanomaterials of iron oxide (Fe3O4) and graphene. The novelty of the present study is considering the combined effects of nonlinear thermal radiation and inclined magnetic fields in the context of Maxwell hybrid nanofluid flow, which can open new pathways for controlling energy in solar energy applications. A complex mathematical equation is solved through the similarity transformation approach and numerically resolved through MAPLE. The flow patterns for various scenarios were assessed using streamlines. The Pearson correlation coefficient method examined the linear relationship between the Nusselt number and physical parameters. The present investigation reveals that when the magnetic field’s inclination varies from pi/4 to pi/3 and there is no thermal radiation, the most substantial heat transfer rate is 12.02% in the case of suction and 18.36% in the case of injection.https://www.tandfonline.com/doi/10.1080/19397038.2024.2449384Maxwell hybrid nanofluidDarcy Forchhemiernonlinear thermal radiationinclined magnetic field
spellingShingle Sweeti Yadav
Shashi Prabha Gogate S
Dinesh P.A
Roopa K R
Optimizing renewable systems with nonlinear thermal radiation and inclined magnetic field using radiative Maxwell hybrid nanofluid flow over Darcy-Forchheimer surface
International Journal of Sustainable Engineering
Maxwell hybrid nanofluid
Darcy Forchhemier
nonlinear thermal radiation
inclined magnetic field
title Optimizing renewable systems with nonlinear thermal radiation and inclined magnetic field using radiative Maxwell hybrid nanofluid flow over Darcy-Forchheimer surface
title_full Optimizing renewable systems with nonlinear thermal radiation and inclined magnetic field using radiative Maxwell hybrid nanofluid flow over Darcy-Forchheimer surface
title_fullStr Optimizing renewable systems with nonlinear thermal radiation and inclined magnetic field using radiative Maxwell hybrid nanofluid flow over Darcy-Forchheimer surface
title_full_unstemmed Optimizing renewable systems with nonlinear thermal radiation and inclined magnetic field using radiative Maxwell hybrid nanofluid flow over Darcy-Forchheimer surface
title_short Optimizing renewable systems with nonlinear thermal radiation and inclined magnetic field using radiative Maxwell hybrid nanofluid flow over Darcy-Forchheimer surface
title_sort optimizing renewable systems with nonlinear thermal radiation and inclined magnetic field using radiative maxwell hybrid nanofluid flow over darcy forchheimer surface
topic Maxwell hybrid nanofluid
Darcy Forchhemier
nonlinear thermal radiation
inclined magnetic field
url https://www.tandfonline.com/doi/10.1080/19397038.2024.2449384
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AT shashiprabhagogates optimizingrenewablesystemswithnonlinearthermalradiationandinclinedmagneticfieldusingradiativemaxwellhybridnanofluidflowoverdarcyforchheimersurface
AT dineshpa optimizingrenewablesystemswithnonlinearthermalradiationandinclinedmagneticfieldusingradiativemaxwellhybridnanofluidflowoverdarcyforchheimersurface
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