Numerical investigation on PCM melting in triangular cylinders

A numerical study has been provided to investigate the characteristics of PCM melting in triangular cylinder containers. Commercial paraffin wax has been selected as a PCM and a hot air stream is used as a source of heat energy for the melting process. The flow structure and convective heat transfer...

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Main Author: Amr Owes Elsayed
Format: Article
Language:English
Published: Elsevier 2018-12-01
Series:Alexandria Engineering Journal
Online Access:http://www.sciencedirect.com/science/article/pii/S1110016818300796
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spelling doaj-f70eae7d33774bc89c90dfa4c686526a2021-06-02T04:06:10ZengElsevierAlexandria Engineering Journal1110-01682018-12-0157428192828Numerical investigation on PCM melting in triangular cylindersAmr Owes Elsayed0Department of Mechanical Power Engineering, Faculty of Engineering, Zagazig University, EgyptA numerical study has been provided to investigate the characteristics of PCM melting in triangular cylinder containers. Commercial paraffin wax has been selected as a PCM and a hot air stream is used as a source of heat energy for the melting process. The flow structure and convective heat transfer around the triangular cylinders have been determined and discussed. Three triangular cylinders of equal volume and different in apex angles (24°, 60° and 100°) have been investigated. The influence of apex angle variation on the flow behavior and on the mechanism of heat transfer to the cylinder walls is presented. Assessment of heat storage capacity is introduced for the various containers. The modeling of the flow field and heat transfer as well as the melting process has been carried out by using Ansys Fluent–CFD software. Finite volume technique is applied and SIMPLE algorithm is used. The results showed that the apex angle and the triangle base length have a remarkable effect on the container surface temperature and on the heat storage efficiency. Keywords: Melting in triangular containers, Phase change materials, Latent energy storage, Numerical modeling of meltinghttp://www.sciencedirect.com/science/article/pii/S1110016818300796
collection DOAJ
language English
format Article
sources DOAJ
author Amr Owes Elsayed
spellingShingle Amr Owes Elsayed
Numerical investigation on PCM melting in triangular cylinders
Alexandria Engineering Journal
author_facet Amr Owes Elsayed
author_sort Amr Owes Elsayed
title Numerical investigation on PCM melting in triangular cylinders
title_short Numerical investigation on PCM melting in triangular cylinders
title_full Numerical investigation on PCM melting in triangular cylinders
title_fullStr Numerical investigation on PCM melting in triangular cylinders
title_full_unstemmed Numerical investigation on PCM melting in triangular cylinders
title_sort numerical investigation on pcm melting in triangular cylinders
publisher Elsevier
series Alexandria Engineering Journal
issn 1110-0168
publishDate 2018-12-01
description A numerical study has been provided to investigate the characteristics of PCM melting in triangular cylinder containers. Commercial paraffin wax has been selected as a PCM and a hot air stream is used as a source of heat energy for the melting process. The flow structure and convective heat transfer around the triangular cylinders have been determined and discussed. Three triangular cylinders of equal volume and different in apex angles (24°, 60° and 100°) have been investigated. The influence of apex angle variation on the flow behavior and on the mechanism of heat transfer to the cylinder walls is presented. Assessment of heat storage capacity is introduced for the various containers. The modeling of the flow field and heat transfer as well as the melting process has been carried out by using Ansys Fluent–CFD software. Finite volume technique is applied and SIMPLE algorithm is used. The results showed that the apex angle and the triangle base length have a remarkable effect on the container surface temperature and on the heat storage efficiency. Keywords: Melting in triangular containers, Phase change materials, Latent energy storage, Numerical modeling of melting
url http://www.sciencedirect.com/science/article/pii/S1110016818300796
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