Enhancing the efficiency of Photovoltaic panel using open-cell copper metal foam fins

Ammar A. Farhan, Duaa Jasim Hasan

Abstract


In this experimental study, a passive cooling technique by open-cell copper metal foam fins was performed for a photovoltaic (PV) panel to enhance its performance by reducing the operating temperature of the PV panel. The experiment was carried out in Baghdad-Iraq climatic conditions during February, March, and April 2019. Three polycrystalline PV panels were used, two panels were equipped with the proposed cooling technique and the other without modification for the purposed of comparing. The open-cell copper metal foam fins mounted on the backside of the PV panel by thermal grease. Four longitudinal fins arrangements (4, 6, 8, and 10 fins) were investigated. The porosity of the metal foam helps the penetration of air through the fins to extract more heat from the PV panel. It was found that the adding of ten longitudinal fins can reduce the average PV panel temperature by about 8.4% and improve the power output by an average of 4.9%.


Keywords


Photovoltaic panel, Photovoltaic efficiency, Metal foal fins, passive cooling

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References


H. G. Teo, P. S. Lee, and M. N. A. Hawlader, “An active cooling system for photovoltaic modules,†Appl. Energy, vol. 90 (1), pp. 309–315, 2012.

H. Mosalam, "Evaluation Study Design and Operation of a Building Integrated Photovoltaic System," 2018 International Conference on Smart Grid (icSmartGrid), Nagasaki, Japan, 2018, pp. 195-201

A. Alkholidi and H. Hamam, “Solar Energy Potentials in Southeastern European Countries: A Case Studyâ€, International Journal of Smart Grid, Vol.3, No.2, June, 2019.

S. Trashchenkov, S. P. Pimentel, V. Astapov, A. Annuk and E. G. Marra, "Kernel Density Estimation for Stochastic Modeling of PV Power Output," 2018 7th International Conference on Renewable Energy Research and Applications (ICRERA), Paris, 2018, pp. 1179-1183.

S. Nižetić, F. Grubišić- Čabo, I. Marinić-Kragić, and A. M. Papadopoulos, “Experimental and numerical investigation of a backside convective cooling mechanism on photovoltaic panels,†Energy, vol. 111, pp. 211–225, 2016.

Q. M. Aish, “Temperature Effect on Photovoltaic Modules Power Drop,†Al-Khawarizmi Eng. J., vol. 11 (2), pp. 62–73, 2015.

P. Royo, V. J. Ferreira, A. M. López-Sabirón, and G. Ferreira, “Hybrid diagnosis to characterise the energy and environmental enhancement of photovoltaic modules using smart materials,†Energy, vol. 101, pp. 174–189, 2016.

M. Caruso, R. Miceli, P. Romano, G. Schettino and F. Viola,†Technical and Economical Performances of Photovoltaic Generation Façades†International Journal of Smart Grid, Vol.2, No.2, 2018

G. Acciari et al., "PV systems in the vertical walls: A comparison of innovative structures," 2016 IEEE International Conference on Renewable Energy Research and Applications (ICRERA), Birmingham, 2016,pp.1185-1190.

F. Grubišić-Čabo, S. Nižetić, and T. G. Marco, “Photovoltaic panels: A review of the cooling techniques,†Trans. Famena, vol. 40, pp. 63–74, 2016.

A. M. Elbreki, M. A. Alghoul, K. Sopian, and T. Hussein, “Towards adopting passive heat dissipation approaches for temperature regulation of PV module as a sustainable solution,†Renewable and Sustainable Energy Reviews, vol. 69. pp. 961–1017, 2017.

W. G. Anderson, P. M. Dussinger, D. B. Sarraf, and S. Tamanna, “Heat pipe cooling of concentrating photovoltaic cells,†33rd IEEE Photovolt. Specialists Conf. ·, no. May, pp. 1–6, 2008.

P. Atkin and M. M. Farid, “Improving the efficiency of photovoltaic cells using PCM infused graphite and aluminium fins,†Sol. Energy, vol. 114, pp. 217–228, 2015.

M. Chandrasekar and T. Senthilkumar, “Experimental demonstration of enhanced solar energy utilization in flat PV (photovoltaic) modules cooled by heat spreaders in conjunction with cotton wick structures,†Energy, vol. 90, pp. 1401–1410, 2015.

Filip Grubišić- Čabo, Sandro Nižetić, Duje Čoko, Ivo Marinić Kragić, and A. Papadopoulos, “Experimental investigation of the passive cooled free-standing photovoltaic panel with fixed aluminum fi ns on the backside surface,†J. Clean. Prod., vol. 176, pp. 119–129, 2018.

A. Abdel-raheimamr, A. A. M. Hassan, M. Abdel-salam, and A. M. El-sayed, “Enhancement of Photovoltaic System Performance via Passive Cooling : Theory versus Experiment,†Renew. Energy, vol. 140, pp. 88-103, Seprember 2019.

G. Popovici, S. Valeriu, T. Dorin, and N.-C. Chereche, “Efficiency improvement of photovoltaic panels by using air cooled heat sinks,†Energy Procedia, vol. 85, pp. 425–432, January 2016.

E. Cuce, T. Bali, and S. A. Sekucoglu, “Effects of passive cooling on performance of silicon photovoltaic cells,†Int. J. Low-Carbon Technol., vol. 6, issue 4, pp. 299–308, December 2011.

H. Chen, X. Chen, S. Li, and H. Ding, “Comparative study on the performance improvement of photovoltaic panel with passive cooling under natural ventilation,†Int. J. Smart Grid Clean Energy, vol. 3, pp. 374–379, 2014.

J. A. Gotmare, D. S. Borkar, and P. R. Hatwar, “Experimental investigation of pv panel with fin cooling under natural convection,†Int. J. Adv. Technol. Eng. Sci., vol. 03, no. 02, pp. 447–454, 2015.

A. El Mays, R. Ammar, M. Hawa, M. Akroush, F.Hachem, M. Khaled, M. Ramsdan, “Improving Photovoltaic Panel Using Finned Plate of Aluminum,†Energy Procedia, vol. 119, pp. 812–817, July 2017.

I. Ahmed, “Enhancement the Performance of PV Panel by Using Fins as Heat Sink,†Eng. Technol. J., vol. 36, no. 7A, pp. 798–805, 2018.

F. Selimefendigil, F. Bayrak, and H. F. Oztop, “Experimental analysis and dynamic modeling of a photovoltaic module with porous fins,†Renew. Energy, vol. 125, pp. 193–205, 2018.

T. Nehari, M. Benlakam, and D. Nehari, “Effect of the fins length for the passive cooling of the photovoltaic panels,†Period. Polytech. Mech. Eng., vol. 60 (2), pp. 89–95, 2016.

L. Tan, A. Date, G. Fernandes, B. Singh, and S. Ganguly, “Efficiency Gains of Photovoltaic System Using Latent Heat Thermal Energy Storage,†Energy Procedia, vol. 110, pp. 83–88, 2017.

J. Chen, D. Yang, J. Jiang, A. Ma, and D. Song, “Research Progress of Phase Change Materials (PCMs) Embedded with Metal Foam (a Review),†Procedia Mater. Sci., vol. 4, pp. 389–394, 2014.

M. Ashby, T. Evans, NA. Fleck, J.W. Hutchinson, H.N.G. Wadley, and L.J. Gibson, “Metal Foams : A Design Guide,†Butterworth-Heinemann publisher, 1st ed., 2000.

K. Sopian, M.A. Alghoul, E.M. Alfegi, M.Y. Sulaiman and E. A. Musa, “Evaluation of thermal efficiency of double-pass solar collector with porous–nonporous media,†Renew. Energy, vol. 34(3), pp. 640–645, 2009.

S. Q. Hussien and A. A. Farhan, “The effect of metal foam fins on the thermo-hydraulic performance of a solar air heater,†IJRER, vol. 9, no. 2, pp. 840–847, 2019.

F. A. Ali, “Optimum Tilt Angle of Photovoltaic Panels for Some Iraq Cities,†J. Univ. Babylon, Eng. Sci., vol. 26, no. 1, pp. 155–163, 2018.

S. Nizetic, D. Coko, A. Yadav, and F. Grubisic-Cabo, “Water spray cooling technique applied on a photovoltaic panel: The performance response,†Energy Convers. Manag., vol. 108, pp. 287–296, 2016.

G. M. Masters, "Renewable and effecient electric power systems ". Wiley-IEEE Press; 2nd , June 2013.




DOI (PDF): https://doi.org/10.20508/ijrer.v9i4.10116.g7789

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