AN INVENTIVE COOLING METHOD FOR FLOATING SOLAR PV PANELS: UTILIZING PHASE CHANGE MATERIAL IN MIZORAM, INDIA

Authors

  • Mukul Banerjee Department of Mechanical Engineering, National Institute of Technology Mizoram
  • Sukanta Roy Department of Mechanical Engineering, National Institute of Technology Mizoram https://orcid.org/0000-0002-4762-1352

DOI:

https://doi.org/10.55766/sujst11930

Keywords:

Renewable Energy, Solar PV, Floating Solar Photovoltaic systems, Power enhancement, Cooling technology, Immunostimulatory

Abstract

Water shortage and energy scarcity are two global issues that require cooperation. Consequently, the global popularity of floating photovoltaic solar (FPV) systems, installed on the water's surface, is increasing. A solar panel experiences two primary effects when its temperature rises: thermal degradation and a significant reduction in output power. It significantly reduces the panel’s longevity. Power losses and long-lasting thermal damage are encouraged by an uneven distribution of operating temperatures and, consequently, heat spots. To address such problems, an FPV panel, which is an electronic power generator, needs to remove heat from its surfaces quickly. To increase performance and decrease thermal heat loss from an FPV, the current study uses paraffin wax as a phase change material (PCM) that is mixed with graphene. To remove extra heat from FPV using water and improve overall performance, the suggested cooling solution was experimentally investigated at different tilt angles and climates in outdoor settings in Aizawl, Mizoram, India. This is accomplished by analysing the thermal and electrical performance of the FPV and PCM-FPV at different module tilt angles (12°, 18°, 24°, and 30°). In comparison to the baseline FPV system, the PCM-FPV Cooling system reduced the backside temperature by 8.77°C, resulting in an 18% increase in thermal regulation. Also, it was shown that using novel cooling technology (NCT) was significantly more efficient, with 13.55% more productivity and 5 m/s wind in a 57° direction. The NCT produces 9.15 kWh annually and more than 220 kWh over a 25-year operating lifespan.

References

Abdelrahman, H., Wahba, M., Refaey, H., Moawad, M., & Berbish, N. (2018). Performance enhancement of photovoltaic cells by changing configuration and using PCM (RT35HC) with nanoparticles Al2O3. Solar Energy, 177, 665-671. https://doi.org/10.1016/j.solener.2018.11.022

Ahn, H., Rim, D., Pavlak, G. S., & Freihaut, J. D. (2019). Uncertainty analysis of energy and economic performances of hybrid solar photovoltaic and combined cooling, heating, and power (CCHP + PV) systems using a Monte-Carlo method. Applied Energy, 255, 113753. https://doi.org/10.1016/j.apenergy.2019.113753

Al-Masri, A., Khanafer, K., & Sedaghat, A. (2025). Passive thermal management of PV solar panels using carbon fibre-enhanced phase change materials: A numerical and optimisation study. International Communications in Heat and Mass Transfer, 167, 109278. https://doi.org/10.1016/j.icheatmasstransfer.2025.109278

Almeshaal, M., Babu, P. K., Chinnasamy, S., & Subramanian, S. (2024). Influence of different melting points of phase change material on photovoltaic phase change materials system performance: An energy, exergy, and environmental point of view. Energy Technology, 13(7). https://doi.org/10.1002/ente.202400286

Arenandan, V., Wong, J. K., Ahmed, A. N., & Chow, M. F. (2022). Efficiency enhancement in energy production of photovoltaic modules through green roof installation under tropical climates. Ain Shams Engineering Journal, 13(5), 101741. https://doi.org/10.1016/j.asej.2022.101741

Arunkumar, H. S., Hitesh, N. M., Madhwesh, N., Hegde, A. K., & Karanth, K. V. (2024). Energy, exergy and environmental impact analysis of a jute cloth embedded photovoltaic thermal cooling system wetted with a floating solar fountain. Results in Engineering, 24, 103457. https://doi.org/10.1016/j.rineng.2024.103457

Banda, H., Suresh, S., Praveenkumar, S., Kottala, R. K., & Seepana, M. M. (2026). Experimental investigation to enhance the efficiency of solar photovoltaic (PV) panels by integrating phase change materials and nano-enhanced biochar: A techno-econo-environmental assessment. Renewable Energy, 256, 124341. https://doi.org/10.1016/j.renene.2025.124341

Banerjee, M., & Roy, S. (2026). Experimental analysis of the overall performance of a floating solar photovoltaic system employing microcrystalline wax. International Communications in Heat and Mass Transfer, 178(3), 111790. https://doi.org/10.1016/j.icheatmasstransfer.2026.111790

Banerjee, M., Roy, S., & Dutta, S. (2026). Analysis of the performance of a floating solar PV panel combined with sustainable materials. 2026 3rd International Conference on Advancements and Key Challenges in Green Energy and Computing (AKGEC), Ghaziabad, India, 26-28 February 2026, pp. 1-5. IEEE. https://doi.org/10.1109/AKGEC68790.2026.11485870

Banerjee, M., Roy, S., & Saha, S. (2026). Overview of multiport EV fast charging stations with floating solar PV using modified Z-source inverter technology. Suranaree Journal of Science and Technology, 33(2), 010411(1-11). https://doi.org/10.55766/sujst10097

Banerjee, M., Saha, S., & Roy, S. (2025). A comprehensive study of ground mount and floating solar PV system performance in India for electric vehicle green charging. 2025 IEEE North-East India International Energy Conversion Conference and Exhibition (NE-IECCE), 1-4. https://doi.org/10.1109/NE-IECCE64154.2025.11183333

Banerjee, M., Saha, S., & Roy, S. (2026). Assessment of grid-integrated electric vehicle charging station based on floating solar PV: A review. In A. Biswas, D. Bhanja, O. P. Singh, & S. Chakraborty (Eds.), Recent advancements in artificial intelligence and optimization. ICRAME 2025. Lecture notes in mechanical engineering (pp. 1-7). Springer. https://doi.org/10.1007/978-981-95-9268-5_1

Campana, P. E., Wästhage, L., Nookuea, W., Tan, Y., & Yan, J. (2019). Optimisation and assessment of floating and floating-tracking PV systems integrated in on- and off-grid hybrid energy systems. Solar Energy, 177, 782-795. https://doi.org/10.1016/j.solener.2018.11.045

Cazzaniga, R., Cicu, M., Rosa-Clot, M., Rosa-Clot, P., Tina, G., & Ventura, C. (2018). Floating photovoltaic plants: Performance analysis and design solutions. Renewable and Sustainable Energy Reviews, 81(2), 1730-1741. https://doi.org/10.1016/j.rser.2017.05.269

Chirwa, D., Goyal, R., & Mulenga, E. (2023). Floating solar photovoltaic (FSPV) potential in Zambia: Case studies on six hydropower power plant reservoirs. Renewable Energy Focus, 44, 344-356. https://doi.org/10.1016/j.ref.2023.01.007

Elbreki, A.M., Muftah, A.F., Sopian, K., Jarimi, H., Fazlizan, A., & Ibrahim, A. (2020). Experimental and economic analysis of a passive cooling PV module using fins and a planar reflector. Case Studies in Thermal Engineering, 23, 100801. https://doi.org/10.1016/j.csite.2020.100801

Elminshawy, N. A., Elminshawy, A., & Osama, A. (2023). An innovative cooling technique for a floating photovoltaic module: Adoption of partially submerged angle fins. Energy Conversion and Management X, 20, 100408. https://doi.org/10.1016/j.ecmx.2023.100408

Elminshawy, N. A., Ghandour, M. E., Gad, H., El-Damhogi, D., El-Nahhas, K., & Addas, M. F. (2019). The performance of a buried heat exchanger system for PV panel cooling under elevated air temperatures. Geothermics, 82, 7-15. https://doi.org/10.1016/j.geothermics.2019.05.012

Elminshawy, N. A. S., Osama, A., Gagliano, A., Oterkus, E., & Tina, G. M. (2024). A technical and economic evaluation of floating photovoltaic systems in the context of the water-energy nexus. Energy, 303, 131904. https://doi.org/10.1016/j.energy.2024.131904

Ho, C., Chou, W., & Lai, C. (2015). Thermal and electrical performances of a water-surface floating PV integrated with double water-saturated MEPCM layers. Applied Thermal Engineering, 94, 122-132. https://doi.org/10.1016/j.applthermaleng.2015.10.097

Huang, M., Eames, P., Norton, B., & Hewitt, N. (2011). Natural convection in an internally finned phase change material heat sink for the thermal management of photovoltaics. Solar Energy Materials and Solar Cells, 95(7), 1598-1603. https://doi.org/10.1016/j.solmat.2011.01.008

Lo Brano, V., Ciulla, G., Piacentino, A., & Cardona, F. (2013). On the efficacy of PCM to shave peak temperature of crystalline photovoltaic panels: An FDM model and field validation. Energies, 6(12), 6188-6210. https://doi.org/10.3390/en6126188

Lu, S., Liang, R., Zhang, J., & Zhou, C. (2019). Performance improvement of solar photovoltaic/thermal heat pump system in winter by employing the vapour injection cycle. Applied Thermal Engineering, 155, 135-146. https://doi.org/10.1016/j.applthermaleng.2019.03.038

Maghrabie, H. M., Mohamed, A.S.A., Fahmy, A. M., & Samee, A. A. A. (2023). Performance enhancement of PV panels using phase change material (PCM): An experimental implementation. Case Studies in Thermal Engineering, 42, 102741. https://doi.org/10.1016/j.csite.2023.102741

Mankani, K., Chaudhry, H. N., & Calautit, J. K. (2022). Optimisation of an air-cooled heat sink for cooling of a solar photovoltaic panel: A computational study. Energy and Buildings, 270, 112274. https://doi.org/10.1016/j.enbuild.2022.112274

Prasetyo, S. D., Trisnoaji, Y., Arifin, Z., & Prabowo, A. R. (2025). Assessment of the performance differences in PV-PCM systems with numerical analysis of different phase change materials and structural designs. Solar Energy Materials and Solar Cells, 295, 114019. https://doi.org/10.1016/j.solmat.2025.114019

Sadati, K., Dahim, A., & Golabchi, M. (2020). Technology introduction and global development investigation of floating solar power plants. Journal of Renewable and New Energy, 7(1), 1-11.

Saha, S., Roy, S., Banerjee, M., Mahato, S. K., & Banerjee, S. (2026). Performance enhancement of solar PV using octacosane phase change material: an energy and exergy analysis. Physica Scripta, 101(4), 045006. https://doi.org/10.1088/1402-4896/ae3921

Shokri, A., & Fard, M. S. (2023). Water-energy nexus: Cutting-edge water desalination technologies and hybridised renewable-assisted systems; challenges and future roadmaps. Sustainable Energy Technologies and Assessments, 57, 103173. https://doi.org/10.1016/j.seta.2023.103173

Stropnik, R., and Stritih, U. (2016). Increasing the efficiency of the PV panel with the use of PCM. Renewable Energy, 97, 671-679. https://doi.org/10.1016/j.renene.2016.06.011

Sutanto, B., Indartono, Y. S., Wijayanta, A. T., & Iacovides, H. (2022). Enhancing the performance of a floating photovoltaic system by using the thermosiphon cooling method: Numerical and experimental analyses. International Journal of Thermal Sciences, 180, 107727. https://doi.org/10.1016/j.ijthermalsci.2022.107727

Togun, H., Basem, A., Jweeg, M. J., Mohammed, H. I., Abed, A. M., Anqi, A. E., Chattopadhyay, A., & Biswas, N. (2025). Development and innovation using PCM in PV cooling systems: passive and active approaches. Journal of Thermal Analysis and Calorimetry, 150, 10725-10760. https://doi.org/10.1007/s10973-025-14388-1

Downloads

Published

2026-08-27

How to Cite

Banerjee, M., & Sukanta Roy. (2026). AN INVENTIVE COOLING METHOD FOR FLOATING SOLAR PV PANELS: UTILIZING PHASE CHANGE MATERIAL IN MIZORAM, INDIA. Suranaree Journal of Science and Technology, 33(4), 010447(1–19). https://doi.org/10.55766/sujst11930