Manara - Qatar Research Repository
Browse

Enhanced natural convection in a U-shaped baffled cavity: Synergistic effects of magnetic fields and wall oscillations on Nano-encapsulated PCM

Download (19.86 MB)
journal contribution
submitted on 2025-05-21, 06:49 and posted on 2025-05-21, 06:50 authored by Ahmed M. Hassan, Mohammed Azeez Alomari, Abdalrahman Alajmi, Abdellatif M. Sadeq, Faris Alqurashi, Mujtaba A. Flayyih

Thermal management systems incorporating phase change materials have gained significant attention due to their high energy storage capacity and temperature control capabilities. Recent advances in nano-encapsulated phase change materials (NEPCMs) combined with magnetic field control offer promising solutions for enhanced heat transfer applications. However, the combined effects of mechanical oscillations and magnetic fields on NEPCM performance remain unexplored in complex geometries. This study investigates natural convection in a U-shaped baffled cavity filled with a nano-encapsulated phase change material (NEPCM) water mixture, featuring an oscillating bottom wall and subject to an inclined magnetic field. The finite element method is employed to solve the governing equations, with the Arbitrary Lagrangian-Eulerian approach used to handle the moving boundary. A comprehensive parametric study explores the effects of Rayleigh number (103–105), Stefan number (0.1–0.9), fusion temperature (0.1–0.9), nanoparticle volume fraction (0.01–0.04), oscillation amplitude (0.07–0.2), Hartmann number (0−20), and magnetic field angle (0°-90°) on heat transfer performance. Results show that the Rayleigh number has the most significant impact, increasing the time-averaged Nusselt number by 129.8 % as Ra rises from 103 to 105. Nanoparticle volume fraction also significantly enhances heat transfer, with a 58.9 % increase in Nusselt number as ϕ increases from 0.01 to 0.04. The optimal oscillation amplitude of 0.07 achieves a maximum Nusselt number of 1.4377, while larger amplitudes reduce heat transfer efficiency by up to 4.5 %. These findings provide valuable insights for optimizing thermal management systems utilizing NEPCM nanofluids in complex geometries with phase change processes.

Other Information

Published in: International Communications in Heat and Mass Transfer
License: http://creativecommons.org/licenses/by/4.0/
See article on publisher's website: https://dx.doi.org/10.1016/j.icheatmasstransfer.2025.109051

Funding

Open Access funding provided by the Qatar National Library.

History

Language

  • English

Publisher

Elsevier

Publication Year

  • 2025

License statement

This Item is licensed under the Creative Commons Attribution 4.0 International License.

Institution affiliated with

  • Qatar University
  • College of Engineering - QU