Open Access
| Issue |
E3S Web Conf.
Volume 680, 2025
The 4th International Conference on Energy and Green Computing (ICEGC’2025)
|
|
|---|---|---|
| Article Number | 00074 | |
| Number of page(s) | 16 | |
| DOI | https://doi.org/10.1051/e3sconf/202568000074 | |
| Published online | 19 December 2025 | |
- A. Hasan, J. Sarwar, H. Alnoman, and S. Abdelbaqi, “Yearly energy performance of a photovoltaic-phase change material (PV-PCM) system in hot climate,” Solar Energy, vol. 146, pp. 417–429, Apr. 2017, doi: 10.1016/J.SOLENER.2017.01.070. [Google Scholar]
- X. Cheng, X. Zhai, and R. Wang, “Thermal performance analysis of a packed bed cold storage unit using composite PCM capsules for high temperature solar cooling application,” Appl Therm Eng, vol. 100, pp. 247–255, May 2016, doi: 10.1016/J.APPLTHERMALENG.2016.02.036. [Google Scholar]
- A. Arshad, M. Jabbal, P. T. Sardari, M. A. Bashir, H. Faraji, and Y. Yan, “Transient simulation of finned heat sinks embedded with PCM for electronics cooling,” Thermal Science and Engineering Progress, vol. 18, p. 100520, Aug. 2020, doi: 10.1016/J.TSEP.2020.100520. [Google Scholar]
- A. Verma, S. Shashidhara, and D. Rakshit, “A comparative study on battery thermal management using phase change material (PCM),” Thermal Science and Engineering Progress, vol. 11, pp. 74–83, Jun. 2019, doi: 10.1016/J.TSEP.2019.03.003. [Google Scholar]
- Y. Gao, Z. Liu, Y. Gao, W. Mao, Y. Zuo, and G. Li, “Employing the double-PCM (Phase-Change Material) layer to improve the seasonal adaption of building walls: A comparative studies,” J Energy Storage, vol. 66, p. 107404, Aug. 2023, doi: 10.1016/J.EST.2023.107404. [Google Scholar]
- H. Weinläder, F. Klinker, and M. Yasin, “PCM cooling ceilings in the Energy Efficiency Center—passive cooling potential of two different system designs,” Energy Build, vol. 119, pp. 93–100, May 2016, doi: 10.1016/J.ENBUILD.2016.03.031. [Google Scholar]
- J. C. Park and T. W. Kim, “Analysis of the Thermal Storage Performance of a Radiant Floor Heating System with a PCM,” Molecules 2019, Vol. 24, Page 1352, vol. 24, no. 7, p. 1352, Apr. 2019, doi: 10.3390/MOLECULES24071352. [Google Scholar]
- R. B. Prajapati, M. K. Rathod, and J. Banerjee, “Evaluating Thermal Performance of PCM‐Integrated Roofs: A Numerical Study on Temperature Regulation Across Different Roof Types,” Wiley Online LibraryRB Prajapati, MK Rathod, J BanerjeeEnergy Storage, 2025•Wiley Online Library, vol. 7, no. 4, Jun. 2025, doi: 10.1002/EST2.70199. [Google Scholar]
- M. Ghamari, C. See, D. Hughes, T. Mallick, … K. R.-E. and, and undefined 2024, “Advancing sustainable building through passive cooling with phase change materials, a comprehensive literature review,” ElsevierM Ghamari, CH See, D Hughes, T Mallick, KS Reddy, K Patchigolla, S SundaramEnergy and Buildings, 2024 [Google Scholar]
- R. Hwang, B. Chen, W. C.- Buildings, and undefined 2021, “Analysis of incorporating a phase change material in a roof for the thermal management of school buildings in hot-humid climates,” mdpi.comRL Hwang, BL Chen, WA ChenBuildings, 2021•mdpi.com [Google Scholar]
- S. Yang, Y. Zhang, Y. Zhao, J. Torres, X. W.-E. and Buildings, and undefined 2023, “PCM-based ceiling panels for passive cooling in buildings: A CFD modelling,” ElsevierS Yang, Y Zhang, Y Zhao, JF Torres, X WangEnergy and Buildings, 2023 [Google Scholar]
- C. Arumugam, S. Shaik, A. Roy, … K. K.-J. of E., and undefined 2024, “Analysis of the benefits of adopting roof sandwich panels integrated with PCM versus PUR to mitigate energy costs and carbon dioxide emissions,” ElsevierC Arumugam, S Shaik, A Roy, KJ Kontoleon, E Cuce, AH Shaik, S Chakraborty, M AlwetaishiJournal of Energy Storage, 2024 [Google Scholar]
- R. Vighnesh, P. Viswanath, and K. B. Anand, “Multi-factor thermal analysis of phase change material integrated roofing elements,” Taylor & FrancisR Vighnesh, P Viswanath, KB AnandArchitectural Science Review, 2025•Taylor & Francis, vol. 68, no. 2, pp. 150–164, 2025, doi: 10.1080/00038628.2024.2368662. [Google Scholar]
- F. Noh-Pat, M. Gijón-Rivera, … I. Z.-G.-E. and, and undefined 2024, “Thermo-energy performance of a phase change material integrated into lightweight hollow concrete roofs in warm–subhumid climate,” ElsevierF Noh-Pat, M Gijón-Rivera, I Zavala-Guillén, CI Rivera-Solorio, O May-Tzuc, MY ShihEnergy and Buildings, 2024 [Google Scholar]
- P. Abass, S. M.-N. H. Transfer, P. A, and undefined 2025, “Selection and thermophysical assessment of phase change materials (PCMs) for space cooling applications in buildings,” Taylor & FrancisPJ Abass, S MuthulingamNumerical Heat Transfer, Part A: Applications, 2025•Taylor & Francis, vol. 86, no. 8, pp. 2423–2445, 2025, doi: 10.1080/10407782.2023.2292183. [Google Scholar]
- N. Soares, J. Costa, A. Gaspar, P. S.-E. and buildings, and undefined 2013, “Review of passive PCM latent heat thermal energy storage systems towards buildings’ energy efficiency,” ElsevierN Soares, JJ Costa, AR Gaspar, P SantosEnergy and buildings, 2013 [Google Scholar]
- K. Song et al., “Supercooling degree decrease of barium hydroxide octahydrate employing 3D porous silver foam as supporting material,” ElsevierK Song, Z Jiang, F He, Y Li, Z He, Y Li, P Wang, G He, W YangColloids and Surfaces A: Physicochemical and Engineering Aspects, 2024 [Google Scholar]
- X. Zhang, Z. Tan, L. Geng, J. Zhao, C. L.-J. of E. Storage, and undefined 2024, “Experimental study on supercooling performance optimization of sodium acetate trihydrate phase change energy storage materials,” ElsevierX Zhang, Z Tan, L Geng, J Zhao, C LiuJournal of Energy Storage, 2024 [Google Scholar]
- P. Tan, P. Lindberg, K. Eichler, … P. L.-J. of E., and undefined 2020, “Effect of phase separation and supercooling on the storage capacity in a commercial latent heat thermal energy storage: Experimental cycling of a salt hydrate,” ElsevierP Tan, P Lindberg, K Eichler, P Löveryd, P Johansson, AS KalagasidisJournal of Energy Storage, 2020 [Google Scholar]
- A. Palacios, M. Navarro-Rivero, B. Zou, … Z. J.-J. of E., and undefined 2023, “A perspective on Phase Change Material encapsulation: Guidance for encapsulation design methodology from low to high-temperature thermal energy,” ElsevierA Palacios, ME Navarro-Rivero, B Zou, Z Jiang, MT Harrison, Y DingJournal of Energy Storage, 2023 [Google Scholar]
- P. Abass, S. M.-E. and Buildings, and undefined 2024, “Comprehensive assessment of PCM integrated roof for passive building design: A study in energo-economics,” Elsevier. [Google Scholar]
- P. Rathore, S. Shukla, N. G.-S. C. and Society, and undefined 2020, “Potential of microencapsulated PCM for energy savings in buildings: A critical review,” Elsevier. [Google Scholar]
- E. Alehosseini, S. J.-A. in C. and I. Science, and undefined 2020, “Nanoencapsulation of phase change materials (PCMs) and their applications in various fields for energy storage and management,” ElsevierE Alehosseini, SM JafariAdvances in Colloid and Interface Science, 2020 [Google Scholar]
- P. Rathore, S. S.-E. and Buildings, and undefined 2021, “Enhanced thermophysical properties of organic PCM through shape stabilization for thermal energy storage in buildings: A state of the art review,” ElsevierPKS Rathore, SK ShuklaEnergy and Buildings, 2021 [Google Scholar]
- A. El Majd, S. Sair, H. A. Ousaleh, … U. B.-J. of B., and undefined 2024, “Advancing PCM research in building efficiency: A comprehensive investigation into PCM selection and critical integration strategies,” ElsevierA El Majd, S Sair, H Ait Ousaleh, U Berardi, K Moulakhnif, N Belouaggadia, Z YounsiJournal of Building Engineering, 2024 [Google Scholar]
- S. Yang, Y. Zhang, X. Zhai, J. Torres, … Y. L.-T. S. and, and undefined 2025, “Exploring the potential of independent PCM-based free cooling in climate-dominant building structures,” Elsevier. [Google Scholar]
- B. Yeşilata, M. Bayram, A. Ustaoğlu, … B. K.-T. S. and, and undefined 2025, . “Effects of Cavity-Shapes in 3D printed PCM encapsulation plates on sustainable thermal energy efficiency in buildings,” Elsevier. [Google Scholar]
- P. Abass, S. M.-C. S. in T. Engineering, and undefined 2025, “Energy-efficient concrete roofs for buildings: Integrating macroencapsulated nano-enhanced PCMs for hot climate adaptation,” ElsevierPJ Abass, S MuthulingamCase Studies in Thermal Engineering, 2025 [Google Scholar]
- C. Sarkar, A. Bhattacharya, T. Ashagre, R. V.-R. Energy, and undefined 2025, “Facile fabrication of shape-stable phase change materials based green composite for passive conditioning in buildings,” ElsevierC Sarkar, A Bhattacharya, TB Ashagre, R Verma, D Rakshit, S SahaRenewable Energy, 2025 [Google Scholar]
- P. Abass, S. M.-J. of E. Storage, and undefined 2024, “Thermal energy storage performance of biaxial voided RCC roof slab integrated with macroencapsulated PCM for passive cooling of buildings,” ElsevierPJ Abass, S MuthulingamJournal of Energy Storage, 2024 [Google Scholar]
- L. Jiang et al., “Experiment verification and simulation optimization of phase change material cool roof in summer--A case study of Chongqing, China,” ElsevierL Jiang, Y Gao, C Zhuang, C Feng, X Zhang, J GuanEnergy, 2024 [Google Scholar]
- Q. Al-Yasiri, M. S.-E. and Buildings, and undefined 2023, “Experimental study of PCM-enhanced building envelope towards energy-saving and decarbonisation in a severe hot climate,” ElsevierQ Al-Yasiri, M SzabóEnergy and Buildings, 2023 [Google Scholar]
- I. Baskar and M. Chellapandian, “Experimental and finite element analysis on the developed real-time form stable PCM based roof system for thermal energy storage applications,” Energy Build, vol. 276, p. 112514, Dec. 2022, doi: 10.1016/J.ENBUILD.2022.112514. [Google Scholar]
- P. Boobalakrishnan et al., “Thermal management of metal roof building using phase change material (PCM),” Mater Today Proc, vol. 47, pp. 5052–5058, Jan. 2021, doi: 10.1016/J.MATPR.2021.05.012. [Google Scholar]
- M. Brahimi, M. Maliki, N. Laredj, … F. K.-J. of E., and undefined 2025, “Investigation of the thermal efficiency of hollow bricks filled with bio-organic phase change material mixture,” ElsevierME Brahimi, M Maliki, N Laredj, F Kuznik, M Sardou, H MissoumJournal of Energy Storage, 2025 [Google Scholar]
- C. Wang, C. Cheng, T. Jin, and H. Dong, “Water evaporation inspired biomass-based PCM from daisy stem and paraffin for building temperature regulation,” Renew Energy, vol. 194, pp. 211–219, Jul. 2022, doi: 10.1016/J.RENENE.2022.05.107. [Google Scholar]
- Y. Konuklu, M. Ostry, H. O. Paksoy, and P. Charvat, “Review on using microencapsulated phase change materials (PCM) in building applications,” Energy Build, vol. 106, pp. 134–155, Nov. 2015, doi: 10.1016/J.ENBUILD.2015.07.019. [Google Scholar]
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