Nanoencapsulation of phase change materials for advanced thermal energy storage systems
Наноинкапсуляция фазопереходных материалов для современных систем накопления тепловой энергии
2018-01-01
SCID: 54.1/pzp4ur7a
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latent heat storagenanoencapsulationphase change materialsthermal energy storagethermal regulation
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Abstract (AI)
Phase change materials (PCMs) allow the storage of large amounts of latent heat during phase transition. They have the potential to both increase the efficiency of renewable energies such as solar power through storage of excess energy, which can be used at times of peak demand; and to reduce overall energy demand through passive thermal regulation. 198.3 million tons of oil equivalent were used in the EU in 2013 for heating. However, bulk PCMs are not suitable for use without prior encapsulation. Encapsulation in a shell material provides benefits such as protection of the PCM from the external environment and increased specific surface area to improve heat transfer. This review highlights techniques for the encapsulation of both organic and inorganic PCMs, paying particular attention to nanoencapsulation (capsules with sizes <1 μm). We also provide insight on future research, which should focus on (i) the development of multifunctional shell materials to improve lifespan and thermal properties and (ii) advanced mass manufacturing techniques for the economically viable production of PCM capsules, making it possible to utilize waste heat in intelligent passive thermal regulation systems, employing controlled, "on demand" energy release/uptake.
Key Findings
1
Bulk phase change materials require encapsulation before practical use because shells protect the PCM and increase surface area for heat transfer.
2
Economically viable mass manufacturing of PCM capsules is needed to enable waste-heat utilization and controlled, on-demand thermal energy release and uptake.
3
Future research should develop multifunctional shell materials that extend capsule lifespan and improve thermal properties.
4
Phase change materials can store substantial latent heat, supporting renewable-energy integration and passive thermal regulation.
5
The review examines encapsulation techniques for both organic and inorganic PCMs, with particular emphasis on capsules smaller than 1 μm.
Research Object
Nanoencapsulated organic and inorganic phase change materials (PCMs) for thermal energy storage
Research Subject
Encapsulation techniques and the resulting protection, heat-transfer enhancement, thermal properties, lifespan, and scalable manufacturing of PCM capsules
Publication Details
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2018-01-01
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