Investigation of performance of polycrystalline PV module by using hybrid cooling technique
Abstract
This study aims to investigate the enhancement in electrical efficiency of a polycrystalline photovoltaic (PV) module. The performance of a PV module primarily depends upon environmental factors like temperature, irradiance, etc. Mainly, the PV module performance depends upon the panel temperature. The performance of the PV module has an inverse relationship with temperature. The open circuit voltage of a module decreases with the increase in temperature, which consequently leads to the reduction in maximum power, efficiency, and fill factor. This study investigates the increase in the efficiency of the PV module by lowering the panel temperature with the help of water channel cooling and water-channel accompanied with forced convection. The two arrangements, namely, multi-inlet outlet and serpentine, are used to decrease the temperature of the polycrystalline PV module. Copper tubes in the form of the above arrangements are employed at the back surface of the panel. The results demonstrate that the combined technique is more efficient than the simple water-channel cooling technique owing to multi-heat dissipation and effective heat transfer, and it is concluded that the multi-inlet outlet cooling technique is more efficient than the serpentine cooling technique, which is attributed to uniform cooling over the surface and lesser pressure losses.
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1. Zaidi SAH, Danish, Hou F, Mirza FM. The role of renewable and non-renewable energy consumption in CO2 emissions: a disaggregate analysis of Pakistan. Environmental Science and Pollution Research. 2018; 25: 31616–31629. doi: 10.1007/s11356-018-3059-y
2. Wang Y, Zhou S, Huo H. Cost and CO2 reductions of solar photovoltaic power generation in China: Perspectives for 2020. Renewable and Sustainable Energy Reviews. 2014; 39: 370–80. doi: 10.1016/j.rser.2014.07.027
3. Fesharaki VJ, Dehghani M, Fesharaki JJ, Tavasoli H. The Effect of Temperature on Photovoltaic Cell Efficiency. Environmental Science, Engineering, Physics; 2011.
4. Odeh S, Behnia M. Improving Photovoltaic Module Efficiency Using Water Cooling. Heat Transfer Engineering. 2009; 30: 499–505. doi: 10.1080/01457630802529214
5. Bahaidarah H, Subhan A, Gandhidasan P, Rehman S. Performance evaluation of a PV (photovoltaic) module by back surface water cooling for hot climatic conditions. Energy. 2013; 59: 445–453. doi: 10.1016/j.energy.2013.07.050
6. Bhattacharjee S, Acharya S, Potar A, et al. An investigational back surface cooling approach with different designs of heat-absorbing pipe for PV/T system. Int J Energy Res. 2018; 42: 1921–1933. doi: 10.1002/er.3977
7. Bashir MA, Ali HM, Khalil S, et al. Comparison of Performance Measurements of Photovoltaic Modules during Winter Months in Taxila, Pakistan. International Journal of Photoenergy. 2014. doi: 10.1155/2014/898414
8. Smith MK, Selbak H, Wamser CC, et al. Water cooling method to improve the performance of field-mounted, insulated, and concentrating photovoltaic modules. Journal of Solar Energy Engineering, Transactions of the ASME. 2014. doi: 10.1115/1.4026466
9. Hasanuzzaman M, Malek ABMA, Islam MM, et al. Global advancement of cooling technologies for PV systems: A review. Solar Energy. 2016; 137: 25–45. doi: 10.1016/j.solener.2016.07.010
10. Grubišić-Čabo F, Nižetić S, Marco TG. Photovoltaic Panels: A Review of The Cooling Techniques. Transactions of FAMENA; 2016.
11. Sargunanathan S, Elango A, Mohideen ST. Performance enhancement of solar photovoltaic cells using effective cooling methods: A review. Renewable and Sustainable Energy Reviews. 2016; 64: 382–393. doi: 10.1016/j.rser.2016.06.024
12. Ali HM, Mahmood M, Bashir MA, et al. Outdoor testing of photovoltaic modules during summer in Taxila, Pakistan. Thermal Science. 2016; 20: 165–73. doi: 10.2298/TSCI131216025A
13. Dwivedi P, Sudhakar K, Soni A, et al. Advanced cooling techniques of P.V. modules: A state of art. Case Studies in Thermal Engineering. 2020; 21:100674. doi: 10.1016/j.csite.2020.100674
14. Oliphant AJ, Baguskas SA, Fernandez DM. Impacts of low cloud and fog on surface radiation fluxes for ecosystems in coastal California. Theoretical and Applied Climatology; 2021.
15. Pathak SK, Sharma PO, Goel V, et al. A detailed review on the performance of photovoltaic/thermal system using various cooling methods. Sustainable Energy Technologies and Assessments. 2022; 51. doi: j.seta.2021.101844
16. Rahim MSBA, Tajuddin MFN Bin, Saad MS, et al. Power Generation Improvement using Active Water Cooling for Photovoltaic (PV) Panel. In: Proceedings of the 2021 4th International Conference on Electrical, Computer and Communication Technologies, ICECCT 2021, Institute of Electrical and Electronics Engineers Inc.; 2021.
17. Ibrahim OAAM, Kadhim SA, Al-Ghezi MKS. Photovoltaic panels cooling technologies: Comprehensive review. Archives of Thermodynamics. 2023; 44: 581–617. doi: 10.24425/ather.2023.149720
18. Sharaf M, Yousef MS, Huzayyin AS. Review of cooling techniques used to enhance the efficiency of photovoltaic power systems. Environmental Science and Pollution Research. 2022; 29: 26131–59. doi: 10.1007/s11356-022-18719-9
19. Tiwari MK, Mishra V, Dev R, Singh N. Effects of Active Cooling Techniques to Improve the Overall Efficiency of Photovoltaic Module- An Updated Review. E3S Web of Conferences. EDP Sciences. 2023. doi: 10.1051/e3sconf/202338701012
20. Ibrahim T, Abou Akrouch M, Hachem F, et al. Cooling Techniques for Enhanced Efficiency of Photovoltaic Panels—Comparative Analysis with Environmental and Economic Insights. Energies (Basel). 2024. doi: 10.3390/en17030713
DOI: https://doi.org/10.24294/tse11273
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