The impact of employing a magnetic field as well as Fe3O4 nanoparticles on the performance of phase change materials
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Date
Authors
Zandie, Mohammad
Moghaddas, Amirhossein
Kazemi, Alireza
Ahmadi, Mohammad Hossein
Feshkache, Hadi Nikbin
Ahmadi, Mohammad Hossein
Sharifpur, Mohsen
Journal Title
Journal ISSN
Volume Title
Publisher
Taylor and Francis
Abstract
In this study a 2Dcubic chamber model filled with paraffin is analyzed with and without the inclusion
of magnetic Fe3O4 nanoparticles at concentrations of 0.5, 1, 1.5 and 2 wt%, and an external magnetic
field of intensities 0.005, 0.01, 0.015 and 0.02 T. It is ascertained that adding magnetic nanoparticles
leads the horizontal temperature gradient to be reduced owing to increments in thermal conductivity.
Additionally, this feature is found to be accelerated by applying an external magnetic field,
which shapes highly conductive cluster formations of nanoparticles. However, since the increase
in nanoparticle concentration and magnetic intensity increases the composite viscosity, there is an
optimum configuration while applying both schemes. As such, the addition of 1 wt% nanoparticles
provides the best results, as the melting time is reduced up to 25% compared to pure paraffin.
Meanwhile, the melting time of a 1 wt% nanoparticle-containing phase change material (PCM) in the
presence of an external magnetic field is improved up to 24% compared to the case with no external
magnetic field. Also, the heat transfer coefficient of a 1 wt% nanoparticle-containing PCM both with
and without an external magnetic field is also staggeringly enhanced compared to pure paraffin.
Good correspondence with experimental data was achieved.
Description
Keywords
Phase change material, Thermal energy storage, Nanocomposites, Magnetic regulation, Nanoparticles, Energy transfer rate
Sustainable Development Goals
Citation
Mohammad Zandie, Amirhossein Moghaddas, Alireza Kazemi, Mohammad
Ahmadi, Hadi Nikbin Feshkache, Mohammad Hossein Ahmadi & Mohsen Sharifpur (2022) The
impact of employing a magnetic field as well as Fe3O4 nanoparticles on the performance of phase
change materials, Engineering Applications of Computational Fluid Mechanics, 16:1, 196-214, DOI: 10.1080/19942060.2021.2006092.