LAPSE:2023.10794
Published Article

LAPSE:2023.10794
Preparation and Characterization of Microencapsulated Phase Change Materials for Solar Heat Collection
February 27, 2023
Abstract
In this paper, a new type of microencapsulated phase change materials (MPCMs) with docosane as the core and titanium dioxide (TiO2) as the shell was prepared by in situ polymerization. Its phase transition temperature was approximately 40 °C, and it can be used as a phase change material (PCM) in a low-temperature solar heat collection system. The properties of the new material were examined including the microstructure, the chemical elements on the surface of the microcapsules, and thermal conductivity. In addition, to obtain the optimized formula of the microcapsules, single-factor analysis on the emulsifier type, its mass fraction, ultrasonic oscillation time, pH, and core−shell ratio were performed. The results showed that the MPCMs prepared in this paper had a particle size of 2−5 μm and were spherical. Its surface was uniform and smooth without cracks, and the TiO2 was well dispersed around the docosane, completely coating the docosane without impurities. The MPCMs had good performance in terms of thermal properties and heat storage when using 0.40% SDS as an emulsifier, 10 min ultrasonic, a 3.5 pH value, and a 1:1 core−shell ratio. However, the stirring method, time, and experimental reaction temperature also affected the properties of the material, which was not studied in this experiment. We will continue to study these factors in the future.
In this paper, a new type of microencapsulated phase change materials (MPCMs) with docosane as the core and titanium dioxide (TiO2) as the shell was prepared by in situ polymerization. Its phase transition temperature was approximately 40 °C, and it can be used as a phase change material (PCM) in a low-temperature solar heat collection system. The properties of the new material were examined including the microstructure, the chemical elements on the surface of the microcapsules, and thermal conductivity. In addition, to obtain the optimized formula of the microcapsules, single-factor analysis on the emulsifier type, its mass fraction, ultrasonic oscillation time, pH, and core−shell ratio were performed. The results showed that the MPCMs prepared in this paper had a particle size of 2−5 μm and were spherical. Its surface was uniform and smooth without cracks, and the TiO2 was well dispersed around the docosane, completely coating the docosane without impurities. The MPCMs had good performance in terms of thermal properties and heat storage when using 0.40% SDS as an emulsifier, 10 min ultrasonic, a 3.5 pH value, and a 1:1 core−shell ratio. However, the stirring method, time, and experimental reaction temperature also affected the properties of the material, which was not studied in this experiment. We will continue to study these factors in the future.
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Keywords
core–shell ratio, microencapsulated phase change material, nanoparticles, thermal property
Subject
Suggested Citation
Chen H, Zhao R, Wang C, Feng L, Li S, Gong Y. Preparation and Characterization of Microencapsulated Phase Change Materials for Solar Heat Collection. (2023). LAPSE:2023.10794
Author Affiliations
Chen H: School of Environment and Energy Engineering, Beijing University of Civil Engineering and Architecture, Beijing 102616, China
Zhao R: State Key Laboratory of Building Safety and Environment, China Academy of Building Research, Beijing 100013, China
Wang C: School of Environment and Energy Engineering, Beijing University of Civil Engineering and Architecture, Beijing 102616, China
Feng L: School of Civil Engineering, Hebei University of Water Resources and Electric Engineering, Cangzhou 061001, China; Hebei Technology Innovation Center of Phase Change, Thermal Management of Data Center, Cangzhou 061001, China
Li S: School of Civil Engineering, Hebei University of Water Resources and Electric Engineering, Cangzhou 061001, China; Hebei Technology Innovation Center of Phase Change, Thermal Management of Data Center, Cangzhou 061001, China
Gong Y: School of Environment and Energy Engineering, Beijing University of Civil Engineering and Architecture, Beijing 102616, China
Zhao R: State Key Laboratory of Building Safety and Environment, China Academy of Building Research, Beijing 100013, China
Wang C: School of Environment and Energy Engineering, Beijing University of Civil Engineering and Architecture, Beijing 102616, China
Feng L: School of Civil Engineering, Hebei University of Water Resources and Electric Engineering, Cangzhou 061001, China; Hebei Technology Innovation Center of Phase Change, Thermal Management of Data Center, Cangzhou 061001, China
Li S: School of Civil Engineering, Hebei University of Water Resources and Electric Engineering, Cangzhou 061001, China; Hebei Technology Innovation Center of Phase Change, Thermal Management of Data Center, Cangzhou 061001, China
Gong Y: School of Environment and Energy Engineering, Beijing University of Civil Engineering and Architecture, Beijing 102616, China
Journal Name
Energies
Volume
15
Issue
15
First Page
5354
Year
2022
Publication Date
2022-07-23
ISSN
1996-1073
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PII: en15155354, Publication Type: Journal Article
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LAPSE:2023.10794
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https://doi.org/10.3390/en15155354
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