Empirical Validation of Heat Transfer Performance Simulation of Graphite/PCM Concrete Materials for Thermally Activated Building System
To increase the heat capacity in lightweight construction materials, a phase change material (PCM) can be introduced to building elements. A thermally activated building system (TABS) with graphite/PCM concrete hollow core slab is suggested as an energy-efficient technology to shift and reduce the p...
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Series: | International Journal of Polymer Science |
Online Access: | http://dx.doi.org/10.1155/2017/6792621 |
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doaj-164f2921badc40999bf6d233bb0a5fe52020-11-24T20:44:35ZengHindawi LimitedInternational Journal of Polymer Science1687-94221687-94302017-01-01201710.1155/2017/67926216792621Empirical Validation of Heat Transfer Performance Simulation of Graphite/PCM Concrete Materials for Thermally Activated Building SystemJin-Hee Song0Hye-Sun Jin1Su-Gwang Jeong2Sumin Kim3Seung-Yeong Song4Jae-Han Lim5Department of Architectural Engineering, Ewha Womans University, Seoul, Republic of KoreaDepartment of Architectural Engineering, Ewha Womans University, Seoul, Republic of KoreaSchool of Architecture, Soongsil University, Seoul, Republic of KoreaSchool of Architecture, Soongsil University, Seoul, Republic of KoreaDepartment of Architectural Engineering, Ewha Womans University, Seoul, Republic of KoreaDepartment of Architectural Engineering, Ewha Womans University, Seoul, Republic of KoreaTo increase the heat capacity in lightweight construction materials, a phase change material (PCM) can be introduced to building elements. A thermally activated building system (TABS) with graphite/PCM concrete hollow core slab is suggested as an energy-efficient technology to shift and reduce the peak thermal load in buildings. An evaluation of heat storage and dissipation characteristics of TABS in graphite/PCM concrete has been conducted using dynamic simulations, but empirical validation is necessary to acceptably predict the thermal behavior of graphite/PCM concrete. This study aimed to validate the thermal behavior of graphite/PCM concrete through a three-dimensional transient heat transfer simulation. The simulation results were compared to experimental results from previous studies of concrete and graphite/PCM concrete. The overall thermal behavior for both materials was found to be similar to experiment results. Limitations in the simulation modeling, which included determination of the indoor heat transfer coefficient, assumption of constant thermal conductivity with temperature, and assumption of specimen homogeneity, led to slight differences between the measured and simulated results.http://dx.doi.org/10.1155/2017/6792621 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Jin-Hee Song Hye-Sun Jin Su-Gwang Jeong Sumin Kim Seung-Yeong Song Jae-Han Lim |
spellingShingle |
Jin-Hee Song Hye-Sun Jin Su-Gwang Jeong Sumin Kim Seung-Yeong Song Jae-Han Lim Empirical Validation of Heat Transfer Performance Simulation of Graphite/PCM Concrete Materials for Thermally Activated Building System International Journal of Polymer Science |
author_facet |
Jin-Hee Song Hye-Sun Jin Su-Gwang Jeong Sumin Kim Seung-Yeong Song Jae-Han Lim |
author_sort |
Jin-Hee Song |
title |
Empirical Validation of Heat Transfer Performance Simulation of Graphite/PCM Concrete Materials for Thermally Activated Building System |
title_short |
Empirical Validation of Heat Transfer Performance Simulation of Graphite/PCM Concrete Materials for Thermally Activated Building System |
title_full |
Empirical Validation of Heat Transfer Performance Simulation of Graphite/PCM Concrete Materials for Thermally Activated Building System |
title_fullStr |
Empirical Validation of Heat Transfer Performance Simulation of Graphite/PCM Concrete Materials for Thermally Activated Building System |
title_full_unstemmed |
Empirical Validation of Heat Transfer Performance Simulation of Graphite/PCM Concrete Materials for Thermally Activated Building System |
title_sort |
empirical validation of heat transfer performance simulation of graphite/pcm concrete materials for thermally activated building system |
publisher |
Hindawi Limited |
series |
International Journal of Polymer Science |
issn |
1687-9422 1687-9430 |
publishDate |
2017-01-01 |
description |
To increase the heat capacity in lightweight construction materials, a phase change material (PCM) can be introduced to building elements. A thermally activated building system (TABS) with graphite/PCM concrete hollow core slab is suggested as an energy-efficient technology to shift and reduce the peak thermal load in buildings. An evaluation of heat storage and dissipation characteristics of TABS in graphite/PCM concrete has been conducted using dynamic simulations, but empirical validation is necessary to acceptably predict the thermal behavior of graphite/PCM concrete. This study aimed to validate the thermal behavior of graphite/PCM concrete through a three-dimensional transient heat transfer simulation. The simulation results were compared to experimental results from previous studies of concrete and graphite/PCM concrete. The overall thermal behavior for both materials was found to be similar to experiment results. Limitations in the simulation modeling, which included determination of the indoor heat transfer coefficient, assumption of constant thermal conductivity with temperature, and assumption of specimen homogeneity, led to slight differences between the measured and simulated results. |
url |
http://dx.doi.org/10.1155/2017/6792621 |
work_keys_str_mv |
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