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Comparative evaluation of three thermal conductivity model for AA7072-AA7075-ethylene glycol–water viscoelastic hybrid nanofluid with porous medium using Levenberg Marquardt technique

Muhammad Azhar IqbalDepartment of Mathematics, The Islamia University of Bahawalpur, Bahawalpur, 63100, PakistanSaba LiaqatDepartment of Computer Engineering, Biruni University, 34010, Istanbul, TurkeyMunawar AbbasDepartment of Mathematics, Firat University, 23119, Elazig, TurkeyAsma A. AlhashmiCybersecurity Department, College of Engineering and Information Technology, Al-Qalam University for Humanities and Applied Sciences, Ibb City, YemenIlkhom KhaydarovNational University of UzbekistanDurdana Rustamova FarkhadHead of Mechanics and Mathematics Department of the Western Caspian University, Baku, AzerbaijanHakim AL GarallehDepartment of Mathematical Science, College of Engineering, University of Business and Technology, 21361, Jeddah, Saudi ArabiaAmr AlalawiDepartment of Mathematical Science, College of Engineering, University of Business and Technology, 21361, Jeddah, Saudi Arabia
2026en
ABI

Annotatsiya

The purpose of this investigation is to assess the outcome of Soret and Dufour effects on viscoelastic hybrid nanofluid flow across a sheet with convective conditions. The Levenberg–Marquardt technique is notable for its novel approach and convergent stability in the field of artificial neural networks. Using regression plots, state transition measures, histogram representations, and mean squared errors, this proposed model generates a numerical approach. The thermal–solutal convective flow of viscoelastic hybrid nanofluid based on AA7072–AA7075-ethylene glycol–water that is appropriate for complex industrial heat transfer systems where simultaneous mass and heat transport is essential. Heat exchanger design and optimization, cooling systems for metallurgical and chemical processing facilities, polymer production, and energy systems needing improved thermal performance under intricate flow circumstances are all areas in which it is especially helpful. The model helps enhance thermal efficiency, regulate concentration gradients, and guarantee stable operation in high-performance industrial applications by taking into consideration Soret-Dufour effects in addition to viscoelastic behavior. This study investigates mass and heat transmission enhancement in a laminar, steady, and incompressible flow of AA7072–AA7075/EG–H₂O Boger hybrid nanofluid across a sheet. Dufour–Soret effects, convective boundary conditions, thermal radiation, magnetic fields, and Darcy–Forchheimer porous resistance all affect the flow.

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