Article detail · 2024
Performance evaluation of nano-enhanced phase change materials for thermal energy storage: An experimental study
- Year
- 2024
- Type
- article
Data source split
- YÖKSİS YÖKSİS article record
- YÖKSİS venue Case Studies in Thermal Engineering
- Catalog match (ISSN) Case Studies in Thermal Engineering
- OpenAlex OpenAlex enrichment (abstract, citations, topics)
Abstract
OpenAlex · English
In rapidly developing economies, the increasing energy demand and fossil fuel consumption have made the need for renewable energy sources and efficient thermal energy storage (TES) solutions more urgent than ever. This study focuses on enhancing the thermal energy storage capabilities of paraffin-based phase change materials (PCMs) by incorporating Al 2 O 3 , MgO, and CuO nanoparticles. The evaluation of nano-enhanced PCMs focused on their melting temperatures, thermal storage capacities, thermal conductivities, and charge/discharge times. The experimental results revealed significant changes in the thermal properties of the nano-enhanced PCMs compared to pure paraffin. The melting temperature was raised by 2°C due to Al 2 O 3 nanoparticles, whereas CuO and MgO nanoparticles decreased it by 1.7°C and 1.8°C, respectively. Compared to pure paraffin, Al 2 O 3 -PW, MgO-PW, and CuO-PW exhibited improvements of 13%, 39%, and 48% in thermal conductivities, respectively. CuO-doped paraffin showed an 11.8% decrease in discharge time, suggesting its suitability for rapid heat transfer applications like defrosting systems or thermal management in electronics. On the other hand, paraffin doped with MgO showed a minimal 2.24% reduction in discharge time, indicating its effectiveness in applications requiring heat retention, particularly for improved thermal insulation in building materials. The results highlighted the potential of nano-enhanced PCMs in energy storage and construction is underlined, offering a sustainable approach to improving energy efficiency in various sectors.
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Citations
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17 citations
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1 publications in the local catalog that cite this work (OpenAlex reference match; not the full global list).