
International Communications in Heat and Mass Transfer, Journal Year: 2025, Volume and Issue: 165, P. 109051 - 109051
Published: May 9, 2025
Language: Английский
International Communications in Heat and Mass Transfer, Journal Year: 2025, Volume and Issue: 165, P. 109051 - 109051
Published: May 9, 2025
Language: Английский
Results in Engineering, Journal Year: 2025, Volume and Issue: unknown, P. 104346 - 104346
Published: Feb. 1, 2025
Language: Английский
Citations
1International Communications in Heat and Mass Transfer, Journal Year: 2024, Volume and Issue: 161, P. 108455 - 108455
Published: Dec. 7, 2024
Language: Английский
Citations
4Applied Thermal Engineering, Journal Year: 2025, Volume and Issue: unknown, P. 125651 - 125651
Published: Jan. 1, 2025
Language: Английский
Citations
0Case Studies in Thermal Engineering, Journal Year: 2025, Volume and Issue: unknown, P. 106013 - 106013
Published: March 1, 2025
Language: Английский
Citations
0Case Studies in Thermal Engineering, Journal Year: 2025, Volume and Issue: unknown, P. 106131 - 106131
Published: April 1, 2025
Language: Английский
Citations
0International Journal of Thermofluids, Journal Year: 2025, Volume and Issue: unknown, P. 101081 - 101081
Published: Jan. 1, 2025
Language: Английский
Citations
0Results in Engineering, Journal Year: 2025, Volume and Issue: unknown, P. 104646 - 104646
Published: March 1, 2025
Language: Английский
Citations
0Energy Science & Engineering, Journal Year: 2025, Volume and Issue: unknown
Published: April 17, 2025
ABSTRACT This study investigates double‐diffusive transport and entropy generation in a wavy cylindrical enclosure containing Cu─H 2 O Casson nanofluid under magnetic field thermal radiation effects. The governing equations were solved numerically using the finite element method with Galerkin formulation. investigation covered parametric ranges including Rayleigh number (10³ ≤ Ra 10⁶), Hartmann (0 Ha 40), inclination (0° γ 90°), nanoparticle volume fraction φ 0.15), parameter (0.1 η 1), Rd 4), conductivity λ Lewis (0.5 Le 5), buoyancy ratio (0.25 Nz 1.5). Results demonstrated that increasing from 10³ to 10⁶ enhanced heat transfer by 60%, while 40 reduced fluid circulation 75%. significantly influenced flow characteristics, stream function values 75% as approached Newtonian behavior. Thermal parameters jointly moderated temperature gradients, causing 15%–20% reduction stratification. showed strong coupled effects, Sherwood 150% increased 0.5 5. These findings have practical applications advanced exchanger design, energy storage systems, electronic cooling technologies, biomedical devices, where controlled mass of non‐Newtonian fluids is crucial.
Language: Английский
Citations
0International Communications in Heat and Mass Transfer, Journal Year: 2025, Volume and Issue: 165, P. 109051 - 109051
Published: May 9, 2025
Language: Английский
Citations
0