Numerical Study of the Solar Energy-Powered Embedded Pipe Envelope System

This study introduces a Solar Energy-Powered Embedded Pipe Envelope System (SEPES) designed to enhance indoor thermal comfort and reduce heating loads during the heating season. To achieve this objective, a dynamic simulation model coupling a SEPES and building thermal environment was established un...

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Main Authors: Wang, Linfeng, Onn, Chiu Chuen, Chew, Bee Teng, Li, Wuyan, Li, Yongcai
Format: Article
Published: MDPI 2024
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Online Access:http://eprints.um.edu.my/45536/
https://doi.org/10.3390/buildings14030613
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spelling my.um.eprints.455362024-10-28T03:07:59Z http://eprints.um.edu.my/45536/ Numerical Study of the Solar Energy-Powered Embedded Pipe Envelope System Wang, Linfeng Onn, Chiu Chuen Chew, Bee Teng Li, Wuyan Li, Yongcai TA Engineering (General). Civil engineering (General) This study introduces a Solar Energy-Powered Embedded Pipe Envelope System (SEPES) designed to enhance indoor thermal comfort and reduce heating loads during the heating season. To achieve this objective, a dynamic simulation model coupling a SEPES and building thermal environment was established under the TRNSYS environment. Based on the model, a case analysis was conducted to investigate the operational characteristics of the system during the heating season in a rural building in Beijing. The results indicate that, on the coldest heating day, the system can elevate the indoor temperature by 14.5 degrees C, reducing the daily heat load from 76.3 kWh to 20.3 kWh, achieving a remarkable energy savings of 73.4%. Additionally, due to the utilization of lower solar heat collection temperatures, the energy efficiency of the system reaches 26.9%. Throughout the entire heating season, the SEPES system enhances the natural indoor temperature by 13.3 degrees C to 16.6 degrees C, demonstrating significant effectiveness. Moreover, regional adaptability analysis indicates that the SEPES achieves energy savings ranging from 43.9% to 66% during the heating season in cold regions and regions with hot summers and cold winters in China. Overall, the SEPES is most suitable for climates characterized by both low temperatures and abundant solar radiation in order to achieve optimal performance. MDPI 2024-03 Article PeerReviewed Wang, Linfeng and Onn, Chiu Chuen and Chew, Bee Teng and Li, Wuyan and Li, Yongcai (2024) Numerical Study of the Solar Energy-Powered Embedded Pipe Envelope System. Buildings, 14 (3). p. 613. ISSN 2075-5309, DOI https://doi.org/10.3390/buildings14030613 <https://doi.org/10.3390/buildings14030613>. https://doi.org/10.3390/buildings14030613 10.3390/buildings14030613
institution Universiti Malaya
building UM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaya
content_source UM Research Repository
url_provider http://eprints.um.edu.my/
topic TA Engineering (General). Civil engineering (General)
spellingShingle TA Engineering (General). Civil engineering (General)
Wang, Linfeng
Onn, Chiu Chuen
Chew, Bee Teng
Li, Wuyan
Li, Yongcai
Numerical Study of the Solar Energy-Powered Embedded Pipe Envelope System
description This study introduces a Solar Energy-Powered Embedded Pipe Envelope System (SEPES) designed to enhance indoor thermal comfort and reduce heating loads during the heating season. To achieve this objective, a dynamic simulation model coupling a SEPES and building thermal environment was established under the TRNSYS environment. Based on the model, a case analysis was conducted to investigate the operational characteristics of the system during the heating season in a rural building in Beijing. The results indicate that, on the coldest heating day, the system can elevate the indoor temperature by 14.5 degrees C, reducing the daily heat load from 76.3 kWh to 20.3 kWh, achieving a remarkable energy savings of 73.4%. Additionally, due to the utilization of lower solar heat collection temperatures, the energy efficiency of the system reaches 26.9%. Throughout the entire heating season, the SEPES system enhances the natural indoor temperature by 13.3 degrees C to 16.6 degrees C, demonstrating significant effectiveness. Moreover, regional adaptability analysis indicates that the SEPES achieves energy savings ranging from 43.9% to 66% during the heating season in cold regions and regions with hot summers and cold winters in China. Overall, the SEPES is most suitable for climates characterized by both low temperatures and abundant solar radiation in order to achieve optimal performance.
format Article
author Wang, Linfeng
Onn, Chiu Chuen
Chew, Bee Teng
Li, Wuyan
Li, Yongcai
author_facet Wang, Linfeng
Onn, Chiu Chuen
Chew, Bee Teng
Li, Wuyan
Li, Yongcai
author_sort Wang, Linfeng
title Numerical Study of the Solar Energy-Powered Embedded Pipe Envelope System
title_short Numerical Study of the Solar Energy-Powered Embedded Pipe Envelope System
title_full Numerical Study of the Solar Energy-Powered Embedded Pipe Envelope System
title_fullStr Numerical Study of the Solar Energy-Powered Embedded Pipe Envelope System
title_full_unstemmed Numerical Study of the Solar Energy-Powered Embedded Pipe Envelope System
title_sort numerical study of the solar energy-powered embedded pipe envelope system
publisher MDPI
publishDate 2024
url http://eprints.um.edu.my/45536/
https://doi.org/10.3390/buildings14030613
_version_ 1814933236252409856
score 13.211869