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Entropy generation and heat transfer in nonlinear Buoyancy–driven Darcy–Forchheimer hybrid nanofluids with activation energy

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dc.contributor.author Sharma, Bhupendra Kumar
dc.contributor.author Yadav, Sangita
dc.date.accessioned 2025-09-19T07:25:27Z
dc.date.available 2025-09-19T07:25:27Z
dc.date.issued 2025-04
dc.identifier.uri https://www.degruyterbrill.com/document/doi/10.1515/ntrev-2025-0158/html
dc.identifier.uri http://dspace.bits-pilani.ac.in:8080/jspui/handle/123456789/19466
dc.description.abstract This study investigates the influence of a magnetic field, activation energy, and heat source on the heat and mass transfer within a cross fluid embedded with mono-, di-, and tri-nanoparticles, considering thermal radiation and Darcy–Forchheimer effects. Utilizing the Cattaneo–Christov theory, non-Fourier heat transfer is modeled for a vertical moving surface. A mathematical model is developed and subsequently converted into a dimensionless form through an appropriate similarity transformation, resulting in a system of first-order ordinary differential equations. The numerical approach to solve the system is BVP4C solver in MATLAB, a tool specifically designed for boundary value problems. Graphical representations have been analyzed for velocity profiles, temperature profiles, and concentration distributions for different values of physical parameters. It is observed that the velocity profiles exhibit an upward trend with an increase in the parameters associated with nonlinear thermal convection and nonlinear concentration convection. Additionally, the analysis of surface shear stress, heat transfer coefficients, and mass transfer coefficients revealed that an increase in the porosity parameter and Forchheimer number results in decreased shear stress. Entropy generation is also investigated to quantify irreversibilities in the system. The analysis showed that increasing the Brinkman number, diffusion parameter, and temperature and concentration difference parameters leads to higher entropy generation, indicating greater irreversibility in the system. A comparative analysis demonstrates that tri-nanoparticles substantially improve flow velocity, thermal conductivity, and solute diffusion compared to di- and mono-nanoparticles, with tri-nanofluids exhibiting the most optimal overall performance. en_US
dc.language.iso en en_US
dc.publisher De Gruyter en_US
dc.subject Mathematics en_US
dc.subject Darcy–forchheimer en_US
dc.subject Porous medium en_US
dc.subject Cross fluid en_US
dc.subject Activation energy en_US
dc.subject Heat transfer en_US
dc.title Entropy generation and heat transfer in nonlinear Buoyancy–driven Darcy–Forchheimer hybrid nanofluids with activation energy en_US
dc.type Article en_US


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