A Review of Factors Affecting the Efficiency and Output of PV Systems Applied in the Tropical Climate of South-South Nigeria
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Abstract
The increasing adoption of renewable energy for electricity generation has led to a growing application of photovoltaic (PV) systems in residential and commercial settings across Nigeria. This study aims to provide a comprehensive review of the factors affecting the efficiency and output of PV systems applied in the tropical climate of South-South Nigeria. The environmental benefits of PV systems further enhance their appeal as a direct method of converting solar energy into electricity. For remote communities in South-South Nigeria, often disconnected from the national grid, PV systems offer a viable alternative electricity source. However, the efficiency and output of PV systems are significantly influenced by various environmental conditions prevalent in the tropical climate of South-South Nigeria. The methodology employed in this study includes an extensive literature review and analysis of PV system installations in the region. Data was collected from various sources, including journal articles, conference proceedings, and reports, to identify the key factors impacting PV system performance in South-South Nigeria. The findings highlight that high temperatures, humidity levels, frequent dust accumulation, and potential sea salt effects due to coastal proximity are among the critical environmental factors affecting PV system efficiency in this tropical zone. The study concludes that while the region's climate provides advantages for solar energy harvesting, it also presents unique challenges that need to be addressed when implementing PV systems in South-South Nigeria. The authors recommend strategies to mitigate the environmental challenges faced by PV systems in this tropical climate, contributing to the optimization of solar energy utilization in the region.
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Copyright (c) 2024 Tofa Haruna, Prof. A. N. Ikot, Dr. (Mrs) A. Big-Alabo (Author)
This work is licensed under a Creative Commons Attribution 4.0 International License.
Aberle, A. G. (2000). Progress in Photovoltaics: Research and Applications, 8(5), 473-487.
https://doi.org/10.1002/1099-159X(200009/10)8:5<473::AID-PIP337>3.3.CO;2-4
Akinyele, D. O., Rayudu, R. K., & Nair, N. K. C. (2015). Global progress in photovoltaic technologies and the scenario of development of solar panel plant and module performance estimation−Application in Nigeria. Renewable and Sustainable Energy Reviews, 48, 112-139.
https://doi.org/10.1016/j.rser.2015.03.021
Akinyele, D.O., et al. (2017). Techno-economic and performance evaluation of 2.5 kWp grid-connected photovoltaic systems in Nigeria. Energy for Sustainable Development, 36, 57-65.
Akpan, U.S., et al. (2022). Sustainable Energy Technologies and Assessments, 49, 101695.
https://doi.org/10.1016/j.seta.2021.101695
Amokparie, O.E., et al. (2020). Performance comparison of different photovoltaic module technologies under tropical climate conditions. Renewable Energy, 148, 1159-1168.
Dubey, S., Sarvaiya, J. N., & Seshadri, B. (2013). Energy Procedia, 33, 311-321.
https://doi.org/10.1016/j.egypro.2013.05.072
Duffie, J. A., & Beckman, W. A. (2013). Solar engineering of thermal processes. John Wiley & Sons.
https://doi.org/10.1002/9781118671603
Emetere, M. E., Akinyemi, M. L., & Edeghe, E. B. (2016). A simple technique for sustaining solar energy production in active convective coastal regions. International Journal of Photoenergy, 2016.
https://doi.org/10.1155/2016/3567502
Emetere, M.E., et al. (2019). Hybrid cooling system for photovoltaic module efficiency enhancement in tropical climate. International Journal of Photoenergy, 2019, 1-10.
https://doi.org/10.1155/2019/1892148
Green, M. A. (2002). Physica E: Low-dimensional Systems and Nanostructures, 14(1-2), 65-70.
https://doi.org/10.1016/S1386-9477(02)00361-2
Häberlin, H. (2012). Photovoltaics: system design and practice. John Wiley & Sons.
https://doi.org/10.1002/9781119976998
Honsberg, C. B., & Bowden, S. G. (2019). Photovoltaics: devices, systems and applications. John Wiley & Sons.
Ike, C. U. (2013). The effect of temperature on the performance of a photovoltaic solar system in Eastern Nigeria. International Journal of Engineering and Science, 3(12), 10-14.
Kalogirou, S. A. (2014). Solar energy engineering: processes and systems. Academic Press.
Luque, A., & Hegedus, S. (Eds.). (2011). Handbook of photovoltaic science and engineering. John Wiley & Sons.
https://doi.org/10.1002/9780470974704
Markvart, T., & Castañer, L. (Eds.). (2003). Practical handbook of photovoltaics: fundamentals and applications. Elsevier.
Melodi, A. O., & Famakin, S. R. (2015). Assessment of the viability of solar photovoltaic system in southern Nigeria. International Journal of Renewable Energy Research (IJRER), 5(1), 54-60.
Messenger, R. A., & Ventre, J. (2010). Photovoltaic systems engineering. CRC press.
Ndiaye, A., Charki, A., Kobi, A., Kébé, C. M., Ndiaye, P. A., & Sambou, V. (2013). Solar Energy, 96, 140-151.
https://doi.org/10.1016/j.solener.2013.07.005
Nelson, J. (2003). The physics of solar cells. World Scientific Publishing Company.
Nwokocha, C. O., Okoro, U. K., & Usoh, C. I. (2018). Photovoltaics in Nigeria-Awareness, attitude and expected benefit based on a qualitative survey across regions. Renewable Energy, 116, 176-182.
https://doi.org/10.1016/j.renene.2017.09.070
Nwokocha, C.O., et al. (2018). Evaluation of heat sink geometry effect on photovoltaic cell performance in tropical Nigeria. Solar Energy, 173, 497-505.
Ogbomo, O.O., et al. (2017). A review of photovoltaic module technologies for increased performance in tropical climate. Renewable and Sustainable Energy Reviews, 75, 1225-1238.
https://doi.org/10.1016/j.rser.2016.11.109
Ohunakin, O. S., Adaramola, M. S., Oyewola, O. M., & Fagbenle, R. O. (2014). Solar energy applications and development in Nigeria: Drivers and barriers. Renewable and Sustainable Energy Reviews, 32, 294-301.
https://doi.org/10.1016/j.rser.2014.01.014
Okonkwo, E.C., et al. (2021). Comparative analysis of water cooling techniques for photovoltaic module in tropical climate. Renewable Energy, 171, 1232-1246.
Okoye, C. O., & Taylan, O. (2017). Performance analysis of a solar photovoltaic system in Nigeria. Renewable and Sustainable Energy Reviews, 74, 172-179.
Okoye, C.O., et al. (2016). International Journal of Renewable Energy Research, 6(3), 1031-1038.
Shockley, W., & Queisser, H. J. (1961). Journal of applied physics, 32(3), 510-519.
https://doi.org/10.1063/1.1736034
Sinton, R. A., & Cuevas, A. (1996). Applied Physics Letters, 69(17), 2510-2512.
https://doi.org/10.1063/1.117723
SolarDesignGuide. (2021, February 2). An introduction to solar PV systems - SolarDesignGuide. https://solardesignguide.com/an-introduction-to-solar-pv-systems/?vm=r
Würfel, P., & Würfel, U. (2016). Physics of solar cells: from basic principles to advanced concepts. John Wiley & Sons.