Thermal response of mortar panels with different forms of macro-encapsulated phase change materials: A finite element study

This paper presents a numerical investigation of thermal response of mortar panels, incorporating macro-encapsulated paraffin in different forms. Two types of macro capsules were fabricated and tested in this study using an instrumented hot plate device. The experimental results show that macro enca...

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Main Authors: Kong, S.Y., Yang, X., Paul, S.C., Wong, L.S., Šavija, B.
Format: Article
Language:English
Published: 2020
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spelling my.uniten.dspace-133462020-08-17T06:28:39Z Thermal response of mortar panels with different forms of macro-encapsulated phase change materials: A finite element study Kong, S.Y. Yang, X. Paul, S.C. Wong, L.S. Šavija, B. This paper presents a numerical investigation of thermal response of mortar panels, incorporating macro-encapsulated paraffin in different forms. Two types of macro capsules were fabricated and tested in this study using an instrumented hot plate device. The experimental results show that macro encapsulated paraffin reduced the temperature and increased time lag in the mortar panels due to the latent heat capacity of paraffin. Finite element models adopting the effective heat capacity method to model phase change effects were able to capture the overall thermal response of panels incorporated with paraffin well. Then, a parametric study was conducted using the validated finite element (FE) modelling technique to investigate the effects of different forms of macro capsules, the quantity of paraffin and the position of macro capsules. It was found that the tube and sphere macro capsules showed similar thermal responses, while the plate shaped capsules may cause a non-uniform temperature distribution in mortar panels. The quantity and position of paraffin have significant effects on the thermal response of the mortal panels. A higher paraffin content results in a significantly longer temperature lag and a lower temperature during the phase transition of paraffin. Furthermore, placing the paraffin away from the heating face can cause a longer temperature lag on the other face, which is desirable for building façade applications. © 2019 by the authors. 2020-02-03T03:31:59Z 2020-02-03T03:31:59Z 2019-07 Article 10.3390/en12132636 en
institution Universiti Tenaga Nasional
building UNITEN Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Tenaga Nasional
content_source UNITEN Institutional Repository
url_provider http://dspace.uniten.edu.my/
language English
description This paper presents a numerical investigation of thermal response of mortar panels, incorporating macro-encapsulated paraffin in different forms. Two types of macro capsules were fabricated and tested in this study using an instrumented hot plate device. The experimental results show that macro encapsulated paraffin reduced the temperature and increased time lag in the mortar panels due to the latent heat capacity of paraffin. Finite element models adopting the effective heat capacity method to model phase change effects were able to capture the overall thermal response of panels incorporated with paraffin well. Then, a parametric study was conducted using the validated finite element (FE) modelling technique to investigate the effects of different forms of macro capsules, the quantity of paraffin and the position of macro capsules. It was found that the tube and sphere macro capsules showed similar thermal responses, while the plate shaped capsules may cause a non-uniform temperature distribution in mortar panels. The quantity and position of paraffin have significant effects on the thermal response of the mortal panels. A higher paraffin content results in a significantly longer temperature lag and a lower temperature during the phase transition of paraffin. Furthermore, placing the paraffin away from the heating face can cause a longer temperature lag on the other face, which is desirable for building façade applications. © 2019 by the authors.
format Article
author Kong, S.Y.
Yang, X.
Paul, S.C.
Wong, L.S.
Šavija, B.
spellingShingle Kong, S.Y.
Yang, X.
Paul, S.C.
Wong, L.S.
Šavija, B.
Thermal response of mortar panels with different forms of macro-encapsulated phase change materials: A finite element study
author_facet Kong, S.Y.
Yang, X.
Paul, S.C.
Wong, L.S.
Šavija, B.
author_sort Kong, S.Y.
title Thermal response of mortar panels with different forms of macro-encapsulated phase change materials: A finite element study
title_short Thermal response of mortar panels with different forms of macro-encapsulated phase change materials: A finite element study
title_full Thermal response of mortar panels with different forms of macro-encapsulated phase change materials: A finite element study
title_fullStr Thermal response of mortar panels with different forms of macro-encapsulated phase change materials: A finite element study
title_full_unstemmed Thermal response of mortar panels with different forms of macro-encapsulated phase change materials: A finite element study
title_sort thermal response of mortar panels with different forms of macro-encapsulated phase change materials: a finite element study
publishDate 2020
_version_ 1678595900210937856
score 13.214268