Weiguang Su
Development of Composite Microencapsulated Phase Change Materials for Multi-Temperature Thermal Energy Storage
Su, Weiguang; Darkwa, Jo; Zhou, Tongyu; Du, Dengfeng; Kokogiannakis, Georgios; Li, Yilin; Wang, Li; Gao, Liying
Authors
Professor JO DARKWA Jo.Darkwa@nottingham.ac.uk
PROFESSOR OF ENERGY STORAGE TECHNOLOGIES
Tongyu Zhou
Dengfeng Du
Georgios Kokogiannakis
Yilin Li
Li Wang
Liying Gao
Contributors
S. Afflerbach
Editor
Reinhard Trettin
Editor
Abstract
Phase change energy storage materials have been recognized as potential energy-saving materials for balancing cooling and heating demands in buildings. However, individual phase change materials (PCM) with single phase change temperature cannot be adapted to different temperature requirements. To this end, the concept of fabricating different kinds of microencapsulated PCM (MEPCM) and combing them to form a multiphase change material (MPCM) for multi-seasonal applications in buildings has been proposed. To prove the feasibility of this idea, three kinds of MEPCMs were fabricated and used for the development of three different composite MPCMs, classified as MPCM-1, MPCM-2, and MPCM-3. Analysis of the results shows that each MPCM sample was able to release latent heat at two different temperatures thus making them suitable for multi-temperature thermal energy storage applications. The phase change temperatures of the MPCMs were however found to be slightly reduced by 0.09–0.31 °C as compared with the MEPCMs samples. The measured energy storage capacities for the MPCMs were also reduced in the range of 6.3–11.4% as compared with the theoretical values but they displayed relatively good thermal stability behaviour of up to 197.8–218.8 °C. It was further identified that the phase change temperatures and latent heat of the MPCM was attributed to the weight percentages of individual components, as the theoretical values for the three MPCM samples were all in good accordance with the measured values. Therefore, optimizing the weight ratios of the MEPCM in MPCM samples and their corresponding thermophysical properties based on specific climatic conditions would be a necessary step to take in future investigations. Thermal performance enhancement of the MPCM is also being recommended as an essential part of further research.
Citation
Su, W., Darkwa, J., Zhou, T., Du, D., Kokogiannakis, G., Li, Y., Wang, L., & Gao, L. (2023). Development of Composite Microencapsulated Phase Change Materials for Multi-Temperature Thermal Energy Storage. Crystals, 13(8), Article 1167. https://doi.org/10.3390/cryst13081167
Journal Article Type | Article |
---|---|
Acceptance Date | Jul 25, 2023 |
Online Publication Date | Jul 27, 2023 |
Publication Date | 2023-08 |
Deposit Date | Jul 28, 2023 |
Publicly Available Date | Jul 28, 2023 |
Journal | Crystals |
Electronic ISSN | 2073-4352 |
Publisher | MDPI |
Peer Reviewed | Peer Reviewed |
Volume | 13 |
Issue | 8 |
Article Number | 1167 |
DOI | https://doi.org/10.3390/cryst13081167 |
Keywords | Microencapsulated phase change material; thermal energy storage; energy-saving; buildings |
Public URL | https://nottingham-repository.worktribe.com/output/23485658 |
Additional Information | Academic Editors: S. Afflerbach and Reinhard Trettin Received: 27 June 2023 Revised: 25 July 2023 Accepted: 25 July 2023; Du, D.; Kokogiannakis, G.; Li, Y.; Wang, L.; Gao, L. Development of Composite Microencapsulated Phase Change Materials for Multi-Temperature Thermal Energy Storage. Crystals 2023, 13, 1167. Copyright: This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https:// creativecommons.org/licenses/by/ 4.0/). crystals Article |
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Copyright Statement
© 2023 by the authors. Licensee MDPI, Basel, Switzerland.
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