Analysis of double‐diffusive transport and entropy generation in a wavy cylindrical enclosure with inner heated core : effects of MHD and radiation on Casson Cu─H 2 O nanofluid
Alomari, Mohammed Azeez and Hassan, Ahmed M. and Alajmi, Abdalrahman and Salho, Ameer K. and Sadeq, Abdellatif M. and Alqurashi, Faris and Flayyih, Mujtaba A. (2025) Analysis of double‐diffusive transport and entropy generation in a wavy cylindrical enclosure with inner heated core : effects of MHD and radiation on Casson Cu─H 2 O nanofluid. Energy Science and Engineering. ISSN 2050-0505 (https://doi.org/10.1002/ese3.70069)
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Abstract
This study investigates double‐diffusive transport and entropy generation in a wavy cylindrical enclosure containing Cu─H2O Casson nanofluid under magnetic field and thermal radiation effects. The governing equations were solved numerically using the finite element method with Galerkin formulation. The investigation covered parametric ranges including Rayleigh number (10³ ≤ Ra ≤ 10⁶), Hartmann number (0 ≤ Ha ≤ 40), magnetic field inclination (0° ≤ γ ≤ 90°), nanoparticle volume fraction (0 ≤ φ ≤ 0.15), Casson parameter (0.1 ≤ η ≤ 1), radiation parameter (0 ≤ Rd ≤ 4), thermal conductivity parameter (0 ≤ λ ≤ 4), Lewis number (0.5 ≤ Le ≤ 5), and buoyancy ratio (0.25 ≤ Nz ≤ 1.5). Results demonstrated that increasing Ra from 10³ to 10⁶ enhanced heat transfer by 60%, while increasing Ha to 40 reduced fluid circulation by 75%. The Casson parameter significantly influenced flow characteristics, with stream function values increasing by 75% as η approached Newtonian behavior. Thermal radiation parameters jointly moderated temperature gradients, with Rd causing a 15%–20% reduction in thermal stratification. The Lewis number and buoyancy ratio showed strong coupled effects, with the Sherwood number increasing by 150% as Le increased from 0.5 to 5. These findings have practical applications in advanced heat exchanger design, thermal energy storage systems, electronic cooling technologies, and biomedical devices, where controlled heat and mass transfer of non‐Newtonian fluids is crucial.
ORCID iDs
Alomari, Mohammed Azeez, Hassan, Ahmed M., Alajmi, Abdalrahman
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Item type: Article ID code: 92642 Dates: DateEvent17 April 2025Published17 April 2025Published Online10 March 2025Accepted4 December 2024SubmittedSubjects: Technology > Electrical engineering. Electronics Nuclear engineering > Production of electric energy or power Department: Faculty of Engineering > Mechanical and Aerospace Engineering Depositing user: Pure Administrator Date deposited: 22 Apr 2025 10:06 Last modified: 30 Apr 2025 07:11 URI: https://strathprints.strath.ac.uk/id/eprint/92642