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  5. Effects of the position and melting point of the PCM layer on the comprehensive thermal performance of a Trombe wall under mixed dry climate

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Article
English
2024

Effects of the position and melting point of the PCM layer on the comprehensive thermal performance of a Trombe wall under mixed dry climate

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English
2024
Energy and Buildings
Vol 307 (March 2024)
Indexed: Science Citation Index Expanded (SCI-Expanded)
DOI: 10.1016/j.enbuild.2024.113932dx.doi.org/10.1016/j.enbuild.2024.113932

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Institutional SSO
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A Ghani Razaqpur
A Ghani Razaqpur

McMaster University

Verified
Shiqiang Zhou
Mengjie Song
A Ghani Razaqpur
+2 more

Abstract

PCM Trombe walls have been an effective passive technology to achieve energy efficiency. However, the majority of previous research investigated the PCM Trombe walls primarily focused on structural improvement, and very few studies have focused on mixed-dry climate Therefore, in this study, ten scenarios were created and simulated by the validated CFD model under a mixed dry climate. The findings indicate that in summer, an external PCM layer with a melting point of 38 °C could reduce the maximum peak load by 48.9 %, decrease the fluctuation amplitude by 76 %, reduce the cooling load by 14.4 %, compared to the reference case, and yields time lags of 4.5 h and 6.1 h for the maximum and minimum indoor temperatures, respectively. In winter, an external PCM layer with a melting point of 30 °C can reduce the thermal load by 38.2 %, decrease the fluctuation amplitude by 28.5 %, compared to the reference case, and achieve time lags of 4.0 h and 1.7 h for the minimal and maximum indoor temperatures, respectively. Overall, the PCM layer should be placed adjacent to the air channel, and the appropriate PCM melting points in summer and winter are different.

How to cite this publication

Shiqiang Zhou, Mengjie Song, A Ghani Razaqpur, Shan Kui, Jinhui Jeanne Huang (2024). Effects of the position and melting point of the PCM layer on the comprehensive thermal performance of a Trombe wall under mixed dry climate. Energy and Buildings, 307(March 2024), pp. 1-9, DOI: 10.1016/j.enbuild.2024.113932.

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Publication Details

Type

Article

Year

2024

Authors

5

Datasets

0

Total Files

0

Language

English

Journal

Energy and Buildings

DOI

10.1016/j.enbuild.2024.113932

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