Araştırma Makalesi
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Optimizing solar panel efficiency utilizing reflectors and water treatment techniques

Yıl 2024, Cilt: 8 Sayı: 2, 116 - 129, 30.06.2024
https://doi.org/10.30521/jes.1352390

Öz

Energy that can be obtained from natural resources and constantly replenished by nature is called “renewable energy”. To harness solar energy and convert it into electricity, a device known as a solar panel is utilized. However, solar panels encounter certain drawbacks, including reduced efficiency as the panel temperature rises and the partial absorption of sunlight due to its reflection by the top glass layer. This study aims to optimize solar panel efficiency by innovatively integrating a cooling system with water treatments and an aluminum foil reflector to enhance energy output. The study focused on a 700 mm × 510 mm × 30 mm monocrystalline solar panel. Initial efficiency improved significantly after implementing the cooling and reflector system. Based on measurement data, incorporating the reflector, revealed an average temperature of 61.3°C and solar radiation of 871.10 W/m². The cooling duration of 40.64 seconds was achieved with a water pump flow rate of 0.29 lt/s. Notably, the combined approach yielded substantial efficiency enhancements, with the solar panel reaching peak efficiency levels of 10.36%.

Kaynakça

  • [1] Mohammad, A. and Mahjabeen, F. Revolutionizing Solar Energy: The Impact of Artificial Intelligence on Photovoltaic Systems. International Journal of Multidisciplinary Sciences and Arts 2023; 2: 117–127, DOI: 10.47709/ijmdsa.vxix.xxxx
  • [2] RHODES, C. J. Solar energy: principles and possibilities. Science Progress (1933-) 2010; 93: 37–112.
  • [3] Walker, A. Solar energy: technologies and project delivery for buildings. John Wiley & Sons, 2013.
  • [4] Hafemeister, D. Sustainable Energy—Without the Hot Air. American Association of Physics Teachers, 2010.
  • [5] Hosenuzzaman, M., N. A. Rahim, J. Selvaraj, and M. Hasanuzzaman Factors affecting the PV based power generation. In: 3rd IET International Conference on Clean Energy and Technology (CEAT) 2014; IET, pp. 1-6.
  • [6] Deivakumaran, S., Y. L. Chua, and Y. Y. Koh Active cooling system for solar panels with silver nanofluid and water. IOP Conference Series: Earth and Environmental Science 2023; 1–10, DOI: 10.1088/1755-1315/1205/1/012012
  • [7] Schiro, F., A. Benato, A. Stoppato, and N. Destro Improving photovoltaics efficiency by water cooling: Modelling and experimental approach. Energy 2017; 137: 798–810.
  • [8] Peng, Z., M. R. Herfatmanesh, and Y. Liu Cooled solar PV panels for output energy efficiency optimisation. Energy conversion and management 2017; 150: 949–955.
  • [9] Sumarno, R. N. and K. Kinasih Rooftop Solar Power Plant Design on Campus Cafe. In: The 1st Lawang Sewu International Symposium 2022, pp. 159–166.
  • [10] Buni, M. J. B., Al-Walie, A. A. K., Al, K. A. N. and Al-Asadi, K. A. N. Effect of solar radiation on photovoltaic cell. International Research Journal of Advanced Engineering and Science 2018; 3: 47–51.
  • [11] Suyanto, H., Pasra, N., and Mauriraya, K. T. Optimization Analysis of Output of Photovoltaic Types on The Effect of Solar Temperature and Radiation. In: The 4th International Conference on Green Technology and Design 2022, pp. 17–26.
  • [12] Wijesuriya, D. T. P., Wickramathilaka, K., Wijesinghe, L. S., Vithana, D. M., and Perera, H. Y. R. Reduction of solar PV payback period using optimally placed reflectors. Energy Procedia 2017; 134: 480–489.
  • [13] Sharma, A. and Bajpai, V. K. Enhancement of power generation efficiency of PV system using mirror reflector. International Journal of Ambient Energy 2022; 43: 8036–8045, DOI: 10.1080/01430750.2022.2088615
  • [14] Ahmed, S., Mia, M. M. A., Acharjee, S., and Ansary, M. A. A. More efficient use of photovoltaic solar panel using multiple fixed directed mirrors or aluminum foils instead of solar trackers in rural perspective of Bangladesh. International Journal of Scientific and Technology Research 2014; 3: 294–298.
  • [15] Sodhi, M., Banaszek, L., Magee, C., and Rivero-Hudec, M. Economic Lifetimes of Solar Panels. In: Procedia CIRP; 2022: Elsevier B.V., pp. 782–787.
  • [16] Akbarudin Rahman, R. and Putranto, H. Performance Comparative Analysis of Monocrystalline and Polycrystalline Single Diode Solar Panel Models using the Five Parameters Method 2019.
  • [17] Karellas, S., Roumpedakis, T. C., Tzouganatos, N., and Braimakis, K. Solar Cooling Technologies. New York: Taylor & Francis Group, LLC, 2019.
  • [18] Saga, T. Advances in crystalline silicon solar cell technology for industrial mass production. NPG Asia Materials 2010; 2: 96–102, DOI: 10.1038/asiamat.2010.82
  • [19] Neukom, M. Martin Neukom: Charge Carrier Dynamics of Methylammonium Lead-Iodide Perovskite Solar Cells, From Microseconds to Minutes, 2016.
  • [20] Singh, M. and Sharma, G. Simplified Mirror Techniques for Improving Solar Cell Performance 2022.
  • [21] Kumar, M., Reddy, B. V., and Reddy, P. V. Experimental Comparison of Solar Paraboloid Collector with and without Mirror in Aluminum Foil as Reflectors. International Journal of Mechanical and Production Engineering Research and Development (IJMPERD) 2018; 8: 1117–1124.
  • [22] Richards, B. S. and Howard, I. A. Luminescent solar concentrators for building integrated photovoltaics: opportunities and challenges. Energy & Environmental Science 2023; 16: 3214–3239, DOI: 10.1039/D3EE00331K
  • [23] Win, T. N. Comparison of Power Output from Solar Panel with Reflector and without Reflector.
  • [24] Keyhani, A. Design of smart power grid renewable energy systems. John Wiley & Sons, 2016.
  • [25] Tawfik, M., Tonnellier, X., and Sansom, C. Light source selection for a solar simulator for thermal applications: A review. Renewable and Sustainable Energy Reviews, 90: 802–813, DOI: 10.1016/j.rser.2018.03.059
  • [26] Soetedjo, A., Nakhoda, Y. I., Lomi, A., and Suryanto, T. A. Solar simulator using halogen lamp for PV research. In: Proceedings of Second International Conference on Electrical Systems, Technology and Information 2015 (ICESTI 2015); 2016: Springer, pp. 239–245.
  • [27] Cedric, S. Peningkatan Efisiensi Panel Surya Monocrystalline dengan Menggunakan Metode Water Treatments. 2020
  • [28] Kim, M. K., Abdulkadir, K. O., Liu, J., Choi, J.-H., and Wen, H. Optimal Design Strategy of a Solar Reflector Combining Photovoltaic Panels to Improve Electricity Output: A Case Study in Calgary, Canada. Sustainability 2021; 13: 6115.
  • [29] Euy Gun, S. Monocrystalline Solar Panel Efficiency Enhancement using Water Treatments and Solar Tracking Dual-Axis Methods with Fuzzy Logic. Parahyangan Catholic University, Bandung, 2022.
  • [30] Arshad, R., Tariq, S., Niaz, M. U., & Jamil, M. Improvement in solar panel efficiency using solar concentration by simple mirrors and by cooling. International Conference on Robotics and Emerging Allied Technologies in Engineering; 2014: IEEE Computer Society, 292–295. 10.1109/iCREATE.2014.6828382
Yıl 2024, Cilt: 8 Sayı: 2, 116 - 129, 30.06.2024
https://doi.org/10.30521/jes.1352390

Öz

Kaynakça

  • [1] Mohammad, A. and Mahjabeen, F. Revolutionizing Solar Energy: The Impact of Artificial Intelligence on Photovoltaic Systems. International Journal of Multidisciplinary Sciences and Arts 2023; 2: 117–127, DOI: 10.47709/ijmdsa.vxix.xxxx
  • [2] RHODES, C. J. Solar energy: principles and possibilities. Science Progress (1933-) 2010; 93: 37–112.
  • [3] Walker, A. Solar energy: technologies and project delivery for buildings. John Wiley & Sons, 2013.
  • [4] Hafemeister, D. Sustainable Energy—Without the Hot Air. American Association of Physics Teachers, 2010.
  • [5] Hosenuzzaman, M., N. A. Rahim, J. Selvaraj, and M. Hasanuzzaman Factors affecting the PV based power generation. In: 3rd IET International Conference on Clean Energy and Technology (CEAT) 2014; IET, pp. 1-6.
  • [6] Deivakumaran, S., Y. L. Chua, and Y. Y. Koh Active cooling system for solar panels with silver nanofluid and water. IOP Conference Series: Earth and Environmental Science 2023; 1–10, DOI: 10.1088/1755-1315/1205/1/012012
  • [7] Schiro, F., A. Benato, A. Stoppato, and N. Destro Improving photovoltaics efficiency by water cooling: Modelling and experimental approach. Energy 2017; 137: 798–810.
  • [8] Peng, Z., M. R. Herfatmanesh, and Y. Liu Cooled solar PV panels for output energy efficiency optimisation. Energy conversion and management 2017; 150: 949–955.
  • [9] Sumarno, R. N. and K. Kinasih Rooftop Solar Power Plant Design on Campus Cafe. In: The 1st Lawang Sewu International Symposium 2022, pp. 159–166.
  • [10] Buni, M. J. B., Al-Walie, A. A. K., Al, K. A. N. and Al-Asadi, K. A. N. Effect of solar radiation on photovoltaic cell. International Research Journal of Advanced Engineering and Science 2018; 3: 47–51.
  • [11] Suyanto, H., Pasra, N., and Mauriraya, K. T. Optimization Analysis of Output of Photovoltaic Types on The Effect of Solar Temperature and Radiation. In: The 4th International Conference on Green Technology and Design 2022, pp. 17–26.
  • [12] Wijesuriya, D. T. P., Wickramathilaka, K., Wijesinghe, L. S., Vithana, D. M., and Perera, H. Y. R. Reduction of solar PV payback period using optimally placed reflectors. Energy Procedia 2017; 134: 480–489.
  • [13] Sharma, A. and Bajpai, V. K. Enhancement of power generation efficiency of PV system using mirror reflector. International Journal of Ambient Energy 2022; 43: 8036–8045, DOI: 10.1080/01430750.2022.2088615
  • [14] Ahmed, S., Mia, M. M. A., Acharjee, S., and Ansary, M. A. A. More efficient use of photovoltaic solar panel using multiple fixed directed mirrors or aluminum foils instead of solar trackers in rural perspective of Bangladesh. International Journal of Scientific and Technology Research 2014; 3: 294–298.
  • [15] Sodhi, M., Banaszek, L., Magee, C., and Rivero-Hudec, M. Economic Lifetimes of Solar Panels. In: Procedia CIRP; 2022: Elsevier B.V., pp. 782–787.
  • [16] Akbarudin Rahman, R. and Putranto, H. Performance Comparative Analysis of Monocrystalline and Polycrystalline Single Diode Solar Panel Models using the Five Parameters Method 2019.
  • [17] Karellas, S., Roumpedakis, T. C., Tzouganatos, N., and Braimakis, K. Solar Cooling Technologies. New York: Taylor & Francis Group, LLC, 2019.
  • [18] Saga, T. Advances in crystalline silicon solar cell technology for industrial mass production. NPG Asia Materials 2010; 2: 96–102, DOI: 10.1038/asiamat.2010.82
  • [19] Neukom, M. Martin Neukom: Charge Carrier Dynamics of Methylammonium Lead-Iodide Perovskite Solar Cells, From Microseconds to Minutes, 2016.
  • [20] Singh, M. and Sharma, G. Simplified Mirror Techniques for Improving Solar Cell Performance 2022.
  • [21] Kumar, M., Reddy, B. V., and Reddy, P. V. Experimental Comparison of Solar Paraboloid Collector with and without Mirror in Aluminum Foil as Reflectors. International Journal of Mechanical and Production Engineering Research and Development (IJMPERD) 2018; 8: 1117–1124.
  • [22] Richards, B. S. and Howard, I. A. Luminescent solar concentrators for building integrated photovoltaics: opportunities and challenges. Energy & Environmental Science 2023; 16: 3214–3239, DOI: 10.1039/D3EE00331K
  • [23] Win, T. N. Comparison of Power Output from Solar Panel with Reflector and without Reflector.
  • [24] Keyhani, A. Design of smart power grid renewable energy systems. John Wiley & Sons, 2016.
  • [25] Tawfik, M., Tonnellier, X., and Sansom, C. Light source selection for a solar simulator for thermal applications: A review. Renewable and Sustainable Energy Reviews, 90: 802–813, DOI: 10.1016/j.rser.2018.03.059
  • [26] Soetedjo, A., Nakhoda, Y. I., Lomi, A., and Suryanto, T. A. Solar simulator using halogen lamp for PV research. In: Proceedings of Second International Conference on Electrical Systems, Technology and Information 2015 (ICESTI 2015); 2016: Springer, pp. 239–245.
  • [27] Cedric, S. Peningkatan Efisiensi Panel Surya Monocrystalline dengan Menggunakan Metode Water Treatments. 2020
  • [28] Kim, M. K., Abdulkadir, K. O., Liu, J., Choi, J.-H., and Wen, H. Optimal Design Strategy of a Solar Reflector Combining Photovoltaic Panels to Improve Electricity Output: A Case Study in Calgary, Canada. Sustainability 2021; 13: 6115.
  • [29] Euy Gun, S. Monocrystalline Solar Panel Efficiency Enhancement using Water Treatments and Solar Tracking Dual-Axis Methods with Fuzzy Logic. Parahyangan Catholic University, Bandung, 2022.
  • [30] Arshad, R., Tariq, S., Niaz, M. U., & Jamil, M. Improvement in solar panel efficiency using solar concentration by simple mirrors and by cooling. International Conference on Robotics and Emerging Allied Technologies in Engineering; 2014: IEEE Computer Society, 292–295. 10.1109/iCREATE.2014.6828382
Toplam 30 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Güneş Enerjisi Sistemleri
Bölüm Araştırma Makaleleri
Yazarlar

Mathilda Laurensia Bu kişi benim 0009-0000-4561-2826

Levin Halim 0000-0002-2398-9160

Erken Görünüm Tarihi 23 Haziran 2024
Yayımlanma Tarihi 30 Haziran 2024
Kabul Tarihi 24 Nisan 2024
Yayımlandığı Sayı Yıl 2024 Cilt: 8 Sayı: 2

Kaynak Göster

Vancouver Laurensia M, Halim L. Optimizing solar panel efficiency utilizing reflectors and water treatment techniques. Journal of Energy Systems. 2024;8(2):116-29.

Journal of Energy Systems is the official journal of 

European Conference on Renewable Energy Systems (ECRES8756 and


Electrical and Computer Engineering Research Group (ECERG)  8753


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