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The microencapsulation, thermal enhancement, and applications of medium and high-melting temperature phase change materials: A review

Sinaga, Rizal; Darkwa, Jo; Omer, Siddig A.; Worall, Mark

The microencapsulation, thermal enhancement, and applications of medium and high-melting temperature phase change materials: A review Thumbnail


Authors

Rizal Sinaga

JO DARKWA Jo.Darkwa@nottingham.ac.uk
Professor of Energy Storage Technologies

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SIDDIG OMER SIDDIG.OMER@NOTTINGHAM.AC.UK
Associate Professor

MARK WORALL mark.worall@nottingham.ac.uk
Senior Research Fellow



Abstract

Microencapsulated phase change materials (MEPCMs) have made tremendous advancements in recent years, owing to their increased demand for a variety of energy storage applications. In this paper, current microencapsulation techniques, enhancement, and use of medium- and high-melting phase change materials (PCMs) are reviewed, as well as their potential benefits and limitations. The most frequently employed PCMs for medium- and high-temperature applications were recognized as salt-based, metallic, inorganic compound, and eutectic. Meanwhile, polymethyl methacrylate (PMMA), polystyrene-butylacrylate (PSBA), polyethyl-2-cyanoacrylate (PECA), and polyurethane were widely used as polymer shell materials for encapsulating medium- and high-melting point PCMs via chemical method, whereas inorganic silica shell was synthesized via various techniques. Hydrolysis followed by heat-oxidation treatment has been extensively studied since 2015 to encapsulate either metal or alloy within Al2O3 shells. Different techniques were developed to generate void between core and shell material to accommodate volume expansion during phase transition. Numerous approaches, including the incorporation of metal particles, carbon, and ceramic, have been found as ways to enhance the thermal performance of PCMs. Multiple storage arrangements were also established to be an effective way of enhancing the overall efficiency of medium-high melting PCM storage systems. Finally, the paper highlights the potential of medium- and high-melting temperature PCMs for solar power generation, solar cooking, and industrial waste heat recovering applications.

Citation

Sinaga, R., Darkwa, J., Omer, S. A., & Worall, M. (2022). The microencapsulation, thermal enhancement, and applications of medium and high-melting temperature phase change materials: A review. International Journal of Energy Research, 46(8), 10259-10300. https://doi.org/10.1002/er.7860

Journal Article Type Review
Acceptance Date Mar 8, 2022
Online Publication Date Mar 18, 2022
Publication Date Jun 25, 2022
Deposit Date Mar 18, 2022
Publicly Available Date Mar 18, 2022
Journal International Journal of Energy Research
Print ISSN 0363-907X
Electronic ISSN 1099-114X
Peer Reviewed Peer Reviewed
Volume 46
Issue 8
Pages 10259-10300
DOI https://doi.org/10.1002/er.7860
Keywords phase change material (PCM); microencapsulation; thermal enhancement; medium high-melting temperature; solar energy; industrial waste heat
Public URL https://nottingham-repository.worktribe.com/output/7568832
Publisher URL https://onlinelibrary.wiley.com/doi/10.1002/er.7860

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