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Influence of Darcy-Forchheimer Effects on 3D MHD Rotating Flow of Casson Hybrid Nanofluid with Velocity Slip and Convective Boundary Conditions

Waqas Ahmad

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Source: Crossref

Published: Jan 17, 2026

DOI: 10.62762/jam.2025.945696

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Source abstract

In order to improve heat transfer efficiency, it is essential to examine that MHD hybrid nanofluid flows behave under convective and slip boundary conditions. Researchers have looked at a variety of factors when adding hybrid nanofluids to these flows, including Forchheimer number, radiation, magnetic fields, Biot number, and the Joule heating. The novelty of the current study lies in investigating the consequences of Casson fluid in the Darcy Forchheimer flow of a three-dimensional rotating hybrid nanofluid, which have not been thoroughly covered in the literature. This includes combinations of heat sources/sinks, magnetic parameters, and radiation absorption as well as convective conditions, slip boundary conditions, and Joule heating. By shedding light on these specific components, this endeavor seeks to bridge this knowledge gap. Hybrid nanofluids disperse two distinct nanoparticles in a fluid to increase heat conductivity for industrial purposes. The bvp5c approach may be used to, after converting non-linear PDEs into non-linear ODEs with similarity variables. The velocity pattern falls with increasing magnetic, suction, and slip parameters, however the sheet temperature profile rises with increasing Eckert and radiative values. The research discovered that a stretched sheet's temperature increases with a larger magnetic field, whereas a shrinking sheet has the reverse effect. Detailed explanations of the numerical data accompanying the skin friction coefficient and local Nusselt number graphs for various parameter values are provided. This work uses a new non-Newtonian three-dimensional model that offers more authentic and precise visualizations of heat transport and fluid movement than traditional two-dimensional simulations. This study, in contrast to other studies, considers the dispersion of Hybrid nanofluid, three-dimensional flow, and water as the regular fluid.

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Influence of Darcy-Forchheimer Effects on 3D MHD Rotating Flow of Casson Hybrid Nanofluid with Velocity Slip and Convective Boundary Conditions — Mathematical Frontier Network