International Communications in Heat and Mass Transfer, Journal Year: 2025, Volume and Issue: 165, P. 109040 - 109040
Published: May 8, 2025
Language: Английский
International Communications in Heat and Mass Transfer, Journal Year: 2025, Volume and Issue: 165, P. 109040 - 109040
Published: May 8, 2025
Language: Английский
Results in Physics, Journal Year: 2025, Volume and Issue: unknown, P. 108173 - 108173
Published: March 1, 2025
Language: Английский
Citations
4Multiscale and Multidisciplinary Modeling Experiments and Design, Journal Year: 2025, Volume and Issue: 8(3)
Published: Feb. 19, 2025
Language: Английский
Citations
1Journal of Radiation Research and Applied Sciences, Journal Year: 2025, Volume and Issue: 18(2), P. 101337 - 101337
Published: Feb. 12, 2025
Language: Английский
Citations
0Journal of Radiation Research and Applied Sciences, Journal Year: 2025, Volume and Issue: 18(2), P. 101431 - 101431
Published: May 2, 2025
Language: Английский
Citations
0International Communications in Heat and Mass Transfer, Journal Year: 2025, Volume and Issue: 164, P. 108894 - 108894
Published: March 31, 2025
Language: Английский
Citations
0Physics of Fluids, Journal Year: 2025, Volume and Issue: 37(4)
Published: April 1, 2025
This study investigates a non-Newtonian ternary hybrid ferrofluid's forced convection and magnetohydrodynamic flow within two-dimensional channel featuring cavity cylindrical obstruction. The working fluid is modeled using the Casson rheological framework consists of water as base with suspended copper (Cu), magnetite (Fe3O4), silica (SiO2) nanoparticles. A uniform inclined magnetic field strength B0 applied at an angle ψ, influencing stability convective transport. primary objective to analyze coupled effects behavior, ferrofluid composition, interactions on heat mass transfer. dimensionless governing equations, including Casson-modified incompressible Navier–Stokes, energy, species transport are solved numerically Galerkin-based finite element method. approach chosen for its robustness in handling complex geometries boundary conditions. Key findings indicate that increasing Hartmann number (Ha) suppresses vortex structures, leading reduction 45.7% 58.4% average Nusselt (Nuavg) Sherwood (Shavg) numbers, respectively, ψ=0°. Conversely, ψ=90°, drag coefficient (CD) increases by 47.3%, while pressure difference (ΔP) rises 88.8%, highlighting stronger damping effects. parameter (γ) significantly enhances transfer, Shavg 174% Lewis (Le) rises, transfer remains largely unaffected. Additionally, nanofluid improves Nuavg 2.01% reduces CD 12.96%, though shows slight decrease.
Language: Английский
Citations
0Results in Chemistry, Journal Year: 2025, Volume and Issue: unknown, P. 102284 - 102284
Published: April 1, 2025
Language: Английский
Citations
0Case Studies in Thermal Engineering, Journal Year: 2025, Volume and Issue: unknown, P. 106163 - 106163
Published: April 1, 2025
Language: Английский
Citations
0International Communications in Heat and Mass Transfer, Journal Year: 2025, Volume and Issue: 165, P. 109040 - 109040
Published: May 8, 2025
Language: Английский
Citations
0