Efficiency Enhancement of Solar System Using Sun Tracking and Effective Cooling Systems
Keywords:
Solar cells, Solar rays, Sun tracking system, Cooling system, PhotovoltaicAbstract
This paper implements and tests one type of renewable energy, solar energy. Enhancing the performance and efficiency of these sources has become increasingly important to compete with traditional fossil fuel sources in terms of efficiency, power quality, and production cost.
The project explains in detail the methods used to increase solar energy efficiency. The primary approach is the sun tracking system, which continuously directs the solar panels toward the sun to maximize direct solar irradiation. Additionally, maintaining the optimal temperature for photovoltaic (PV) cells improves efficiency and prolongs their lifespan, achieved by integrating a cooling system with the sun tracking system.
PV cells are sensitive to temperature variations. Increased ambient temperature and solar irradiance raise the PV cells’ operating temperature, reducing open-circuit voltage, fill factor, and power output for mono- and polycrystalline PV cells, potentially causing irreversible damage. Proper cooling is necessary to maintain operating temperature within manufacturer-specified values. This review presents passive cooling methods (heat pipe and fins) to enhance the performance of commercial PV and concentrated photovoltaic (CPV) cells.
Results indicate that using the mentioned methods, solar panel efficiency improved by 15% with the tracking system, and after cooling, efficiency reached approximately 85%.
Downloads
References
[1] GECOL "General Electric Company Of Libya Annual Report," 2012 .
[2] Zakariya Rajab, Ashraf Khalil, Muneer Am Hamed and Ali Shelbi,
Economic Feasibility of Solar Powered Street Lighting System in Libya, The
8th International Renewable Energy Congress (IEEE) (IREC2017). DOI:
10.1109/IREC.2017.7926027
[3] "Department of Energy - Solar." Department of Energy -
Homepage. Web. 22 July 2011.
[4] "Clean Energy." EPA. Environmental Protection Agency. Web. 04
Apr. 2012.
[5] Bull, S. R. (2001). Renewable energy today and tomorrow.
Proceedings of the IEEE, 89(8), 1216-1226.
[6] "Solar Electricity." Solar Direct. Web.22 July 2011.
[7] M. Becher if, M. Y. Ayad, A. Henna, and A. A boubou,
“Hybridization of solar panel and batteries for street lighting by passivitybased control,” IEEE International Energy Conference.
[8] "Department of Energy - Solar." Department of Energy. Web. 22
July 2011.
[9] Starr, Robert J. "Solar Energy and the Environment." Solar Radiant.
Web. 04 Apr. 2012. .
[10]https://www.theengineeringprojects.com/2018/06/introduction-toarduino mage2560- .html. /26/1/2021/17:35.
29
[11] Billings, K., & Morey, T. (2011). Switch mode power supply
handbook. McGraw-Hill Education.
[12] Crompton, T. R. (20 March 2000). Battery Reference Book (third
ed.). Newness'. p. Glossary 3. ISBN 978-0-08-
049995-6. Retrieved 18 March 2016. References _57
[13] Pauling, Linus (1988). "15: Oxidation-Reduction Reactions;
Electrolysis". General Chemistry. New York: Dover Publications, Inc. p. 539.
ISBN 978-0-486-65622-9.
[14] https://www.electronicshub.org/arduino-temperature-sensors
/26/1/2021/18:28.
[15] "Choosing a Bathroom Extractor Fan". Extarctor Fan World. July
10, 2018. /26/1/2021/19:10
[16] https://www.elprocus.com/switches-types-working/
/26/1/2021/18:55.
[17] Arakliotis, S., D. G. Nikolos, and E. Kalligeros. "LAWRIS: A rulebased Arduino programming system for young students." 2016 5th
International Conference on Modern Circuits and Systems Technologies
(MOCAST). IEEE, 2016.
[18] Louis, Leo. "WORKING PRINCIPLE OF ARDUINO AND U
SING IT." International Journal of Control, Automation, Communication
and Systems (IJCACS) 1.2 (2016): 21-29.