THERMAL SCIENCE
International Scientific Journal
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INVESTIGATING THE IMPACT OF ALUMINUM HEAT SINKS ON PASSIVE COOLING OF PHOTOVOLTAIC PANELS
ABSTRACT
As the temperature of photovoltaic panels rises, a drop in electrical conversion efficiency and output power is unavoidable. Therefore, a simple and low-cost cooling solution is needed - one that requires little or no maintenance and consumes no electricity. In this paper, we experimentally and numerically investigated passive cooling of photovoltaic panels using heat sinks of different geometries. Our experiments showed that these heat sinks reduce the average back-side temperature of the cooled panel by 13.6°C compared to a reference panel. They also increased the open-circuit voltage by 0.27 V relative to the reference. We also performed numerical simulations using Ansys Fluent 2025 R2. The simulated temperatures agreed well with the experimental data - the average difference was less than 1°C (approximately 1.9% relative difference). The simulations gave us a good insight into heat dissipation from the heat sinks. They revealed better cooling due to proper fin spacing, but also a limitation caused by the small contact area between the heat sink and the photovoltaic panel. These results confirm that passive cooling with aluminum heat sinks is a good method for improving photovoltaic panel performance, while the developed numerical model represents an accurate tool for heat sink design optimization.
KEYWORDS
PAPER SUBMITTED: 2026-03-28
PAPER REVISED: 2026-06-17
PAPER ACCEPTED: 2026-07-07
PUBLISHED ONLINE: 2026-08-08
DOI REFERENCE: https://doi.org/10.2298/TSCI260328162P
[1] Tripathi, M. N. and Singh D., A review on performance improvement of solar photovoltaic using various cooling methods, International Conference on Advances and Soft Computing Applications in Design and Manufacturing (ASCADM-2018), NIT Patna, Bihar, India, 2018, pp. 4-6
[2] Reteri, A., et al., The 3-D performance improvement of photovoltaic systems with PCM and fin-based cooling, Thermal Science, 29 (2025), 4 Part B, pp. 3097-3104
[3] Ali, H. M., et al., Outdoor testing of photovoltaic modules during summer in Taxila, Pakistan, Thermal Science, 20 (2016), 1, pp. 165-173, 10.2298/TSCI131216025A
[4] Soliman, A. M. A., et al., An experimental study of the performance of the solar cell with the heat sink cooling system, Special Issue on Emerging and Renewable Energy: Generation and Automation, Energy Procedia 162 (2019) 127-135
[5] Al-Amri, F. and Mallick T. K., Effects of nonuniform incident illumination on the thermal performance of a concentrating triple junction solar cell, International Journal of Photoenergy, 2014 (2014), 1, 642819
[6] Egab, K., et al., Enhancing a solar panel cooling system using an air heat sink with different fin configurations, 2020 IOP Conf. Ser.: Mater. Sci. Eng. 671, 012133
[7] Hudișteanu, S. V., et al., Enhancement of PV Panel Power Production by Passive Cooling Using Heat Sinks with Perforated Fins, Applied Sciences, 2021, 11, 11323, 10.3390/app112311323
[8] Arifin, Z., et al., Experimental Investigation of Air Cooling for Photovoltaic Panels Using Aluminum Heat Sinks, International Journal of Photoenergy, 2020, Article ID 1574274, 9 pages, 10.1155/2020/1574274
[9] Ahmad, E. Z., et al., Recent advances in passive cooling methods for photovoltaic performance enhancement, International Journal of Electrical and Computer Engineering, 11 (2021), 1, pp. 146-154
[10] Idoko, I., et al., Enhancing PV modules efficiency and power output using multi-concept cooling technique, Energy Reports, 4 (2018), pp. 357-369, 10.1016/j.egyr.2018.05.004
[11] Mohsin, L., et al., Optimized cleaning and cooling for photovoltaic modules based on the output performance, Thermal Science, 22 (2018), 1 Part A, pp. 237-246
[12] Jakhrani, A. Q., et al., Analysis and Fabrication of an Active Cooling System for Reducing Photovoltaic Module Temperature, Engineering, Technology & Applied Science Research, 7, No. 5, 2017, 1980-1986
[13] Micheli, L., et al., Performance, limits and economic perspectives for passive cooling of High Concentrator Photovoltaics, Solar Energy Materials and Solar Cells, 153, pp. 164-178, 2016
[14] Cuce, E., et al., Effects of passive cooling on silicon photovoltaic cell performance, International Journal of Low-Carbon Technologies, 6 (2011), pp. 299-308, 10.1093/ijlct/ctr018
[15] Firoozzadeh, M., et al., An experimental study on cooling the photovoltaic modules by fins to improve power generation: economic assessment, Iranian (Iranica) Journal of Energy and Environment, 10 (2019), 2, pp. 80-84
[16] Arifin, Z., et al., Numerical and Experimental Investigation of Air Cooling for Photovoltaic Panels Using Aluminum Heat Sinks, International Journal of Photoenergy, 2020; 9: 1574274, 10.1155/2020/1574274
[17] Popovici, C. G., et al., Efficiency improvement of photovoltaic panels by using air cooled heat sinks, Energy Procedia, 85 (2016), pp. 425-432
[18] Johnston, E., et al., Cooling silicon photovoltaic cells using finned heat sinks and the effect of inclination angle, Thermal Science and Engineering Progress, 23 (2021), 100902, 10.1016/j.tsep.2021.100902
[19] Krstic, M., et al., Passive cooling of photovoltaic panel by aluminum heat sinks and numerical simulation. Ain Shams Engineering Journal, 15(1), 102330, 10.1016/j.asej.2023.102330
[20] ***, Heat sink, wikipedia, https://en.wikipedia.org/wiki/Heat_sink
[21] ***, Solar module passive cooling with lapping fins, pv-magazine, 2020, https://www.pv-magazine.com/2020/12/14/solar-module-passive-cooling-with-lapping-fins/
[22] Micheli, L., et al., Plate micro-fins in natural convection: an opportunity for passive concentrating photovoltaic cooling, Energy Procedia, 82 (2015), pp. 301-308, 10.1016/j.egypro.2015.12.037
[23] Incropera, F. P. and DeWitt D. P., Fundamentals of Heat and Mass Transfer, 6th ed., John Wiley & Sons, 2007
[24] Bar-Cohen, A., et al., Design of optimum plate-fin natural convective heat sinks, Journal of Heat Transfer, 125 (2003), pp. 208-216, 10.1115/1.1568361
[25] Elenbaas, W., Heat dissipation of parallel plates by free convection, Physica 9 (1942) 1e28
[26] Cengel, Y. A. and Khajar A. J., Heat and Mass Transfer: Fundamentals and Applications, 6th ed., McGraw-Hill Education, New York, USA, 2020
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© 2026 Society of Thermal Engineers of Serbia. Published by the Vinča Institute of Nuclear Sciences, National Institute of the Republic of Serbia, Belgrade, Serbia. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution 4.0 International licence


