Influence of Dust Deposition on the Electrical Parameters of Silicon-Based Solar Panels Installed in Senegal (Dakar Region)

Abstract

In recent years, photovoltaic (PV) modules are widely used in many applications around the world. However, this renewable energy is plagued by dust, airborne particles, humidity, and high ambient temperatures. This paper studies the effect of dust soiling on silicon-based photovoltaic panel performance in a mini-solar power plant located in Dakar (Senegal, 14°42'N latitude, 17°28'W longitude). Results of the current-voltage (I - V) characteristics of photovoltaic panels tested under real conditions. We modeled a silicon-based PV cell in a dusty environment as a stack of thin layers of dust, glass and silicon. The silicon layer is modeled as a P-N junction. The study performed under standard laboratory conditions with input data of irradiation at 1000 W/m2, cell temperature at 25°C and solar spectrum with Air Mass (AM) at 1.5 for the monocrystalline silicon PV cell (m-Si). The analysis with an ellipsometer of dust samples collected on photovoltaic panels allowed to obtain the refraction indices (real and imaginary) of these particles which will complete the input parameters of the model. Results show that for a photon flux arriving on dust layer of 70 μm (corresponding to dust deposit of 3.3 g/m2) deposited on silicon-based PV cells, short circuit current decreases from 54 mA (for a clean cell) to 26 mA. Also, conversion efficiency decreases by 50% compared to clean cell and the cell fill factor decreases by 76% - 50% compared to reference PV cell.

Share and Cite:

Diop, D. , Diagne, M. , Sambou, A. , Djicoly Bassene, P. , Abdoul Aziz Niang, S. and Sarr, A. (2021) Influence of Dust Deposition on the Electrical Parameters of Silicon-Based Solar Panels Installed in Senegal (Dakar Region). Energy and Power Engineering, 13, 174-189. doi: 10.4236/epe.2021.135012.

Conflicts of Interest

The authors declare no conflicts of interest regarding the publication of this paper.

References

[1] IEA (2014) Technology Roadmap: Solar Photovoltaic Energy. International Energy Agency, Paris.
[2] Al-Waeli, A.H.A., Chaichan, M.T., Sopian, K., Kazem, H.A., Mahood, H.B. and Khadom, A.A. (2019) Modeling and Experimental Validation of a PVT System Using Nanofluid Coolant and Nano-PCM. Solar Energy, 177, 178-191.
https://doi.org/10.1016/j.solener.2018.11.016
[3] Drame, M., Ould Bilal, B., Camara, M., Sambou, V. and Gaye, A. (2012) Impacts of Aerosols on Available Solar Energy at Mbour, Senegal. Journal of Renewable and Sustainable Energy, 4, Article ID: 013105.
https://doi.org/10.1063/1.3682078
[4] Diouf, B., Pode, R. and Osei, R. (2013) Initiative for 100% Rural Electrification in Developing Countries: Case Study of Senegal. Energy Policy, 59, 926-930.
https://doi.org/10.1016/j.enpol.2013.04.012
[5] Youm, I., Sarr, J., Sall, M. and Kane, M.M. (2000) Renewable Energy Activities in Senegal: A Review. Renewable and Sustainable Energy Reviews, 4, 75-89.
https://doi.org/10.1016/S1364-0321(99)00009-X
[6] Ndiaye, A., Kébé, C.M., Ndiaye, P.A., Charki, A., Kobi, A. and Sambou, V. (2013) Impact of Dust on the Photovoltaic (PV) Modules Characteristics after an Exposition Year in Sahelian Environment: The Case of Senegal. International Journal of Physical Sciences, 8, 1166-1173.
[7] Dajuma, A., Yahaya, S., Touré, S., Diedhiou, A., Adamou, R., Konaré, A. and Golba, M. (2016) Sensitivity of Solar Photovoltaic Panel Efficiency to Weather and Dust over West Africa: Comparative Experimental Study between Niamey (Niger) and Abidjan (Côte d’Ivoire). Computational Water, Energy, and Environmental Engineering, 5, 123-147.
https://doi.org/10.4236/cweee.2016.54012
[8] Youm, I., Sarr, J., Sall, M., Ndiaye, A. and Kane, M.M. (2005) Analysis of Wind Data and Wind Energy Potential along the Northern Coast of Senegal. Revue des Energies Renouvelables, 8, 95-108.
http://www.webreview.dz/spip.php?rubrique191
[9] Mani, M. and Pillai, R. (2010) Impact of Dust on Solar Photovoltaic (PV) Performance: Research Status, Challenges and Recommendations. Renewable and Sustainable Energy Reviews, 14, 3124-3131.
https://doi.org/10.1016/j.rser.2010.07.065
[10] Heimsath, A. and Nitz, P. (2019) The Effect of Soiling on the Reflectance of Solar Reflector Materials-Model for Prediction of Incidence Angle Dependent Reflectance and Attenuation Due to Dust Deposition. Solar Energy Materials and Solar Cells, 195, 258-268.
https://doi.org/10.1016/j.solmat.2019.03.015
[11] Tanesab, J., Parlevliet, D., Whale, J. and Urmee, T. (2019) The Effect of Dust with Different Morphologies on the Performance Degradation of Photovoltaic Modules. Sustainable Energy Technologies and Assessments, 31, 347-354.
https://doi.org/10.1016/j.seta.2018.12.024
[12] Gupta, V., Sharma, M., Pachauri, R.K. and Babu, K.D. (2019) Comprehensive Review on Effect of Dust on Solar Photovoltaic System and Mitigation Techniques. Solar Energy, 191, 596-622.
https://doi.org/10.1016/j.solener.2019.08.079
[13] Alnasser, T.M., Mahdy, A.M., Abass, K.I., Chaichan, M.T. and Kazem, H.A. (2020) Impact of Dust Ingredient on Photovoltaic Performance: An Experimental Study. Solar Energy, 195, 651-659.
https://doi.org/10.1016/j.solener.2019.12.008
[14] Marticorena, B., Bergametti, G., Aumont, B., Callot, Y., N’Doumé, C. and Legrand, M. (1997) Modeling the Atmospheric Dust Cycle: 2. Simulation of Saharan Dust Sources. Journal of Geophysical Research: Atmospheres, 102, 4387-4404.
https://doi.org/10.1029/96JD02964
[15] Paudyal, B.R. and Shakya, S.R. (2016) Dust Accumulation Effects on Efficiency of Solar PV Modules for Off Grid Purpose: A Case Study of Kathmandu. Solar Energy, 135, 103-110.
https://doi.org/10.1016/j.solener.2016.05.046
[16] Kaldellis, J.K. and Kapsali, M. (2011) Simulating the Dust Effect on the Energy Performance of Photovoltaic Generators Based on Experimental Measurements. Energy, 36, 5154-5161.
https://doi.org/10.1016/j.energy.2011.06.018
[17] Moehlecke, A., Febras, F.S. and Zanesco, I. (2013) Electrical Performance Analysis of PV Modules with Bifacial Silicon Solar Cells and White Diffuse Reflector. Solar Energy, 96, 253-262.
https://doi.org/10.1016/j.solener.2013.07.028
[18] Chanchangi, Y.N., Ghosh, A., Sundaram, S. and Mallick, T.K. (2020) An Analytical Indoor Experimental Study on the Effect of Soiling on PV, Focusing on Dust Properties and PV Surface Material. Solar Energy, 203, 46-68.
https://doi.org/10.1016/j.solener.2020.03.089
[19] Adıgüzel, E., Özer, E., Akgündoğdu, A. and Yılmaz, A.E. (2019) Prediction of Dust particle Size Effect on Efficiency of Photovoltaic Modules with ANFIS: An Experimental Study in Aegean Region, Turkey. Solar Energy, 177, 690-702.
https://doi.org/10.1016/j.solener.2018.12.012
[20] Hachicha, A.A., Al-Sawafta, I. and Said, Z. (2019) Impact of Dust on the Performance of Solar Photovoltaic (PV) Systems under United Arab Emirates Weather Conditions. Renewable Energy, 141, 287-297.
https://doi.org/10.1016/j.renene.2019.04.004
[21] Jiang, H., Lu, L. and Sun, K. (2011) Experimental Investigation of the Impact of Airborne Dust Deposition on the Performance of Solar Photovoltaic (PV) Modules. Atmospheric Environment, 45, 4299-4304.
https://doi.org/10.1016/j.atmosenv.2011.04.084
[22] Said, S.A. and Walwil, H.M. (2014) Fundamental Studies on Dust Fouling Effects on PV Module Performance. Solar Energy, 107, 328-337.
https://doi.org/10.1016/j.solener.2014.05.048
[23] Rao, A., Pillai, R., Mani, M. and Ramamurthy, P. (2014) Influence of Dust Deposition on Photovoltaic Panel Performance. Energy Procedia, 54, 690-700.
https://doi.org/10.1016/j.egypro.2014.07.310
[24] Faye, D., Gueye, S., Ndiaye, M., Ba, M.L., Diatta, I., Traore, Y. and Sissoko, G. (2020) Lamella Silicon Solar Cell under Both Temperature and Magnetic Field: Width Optimum Determination. Journal of Electromagnetic Analysis and Applications, 12, 43-55.
https://doi.org/10.4236/jemaa.2020.124005
[25] Diao, A., Wade, M., Thiame, M. and Sissoko, G. (2017) Bifacial Silicon Solar Cell Steady Photoconductivity under Constant Magnetic Field and Junction Recombination Velocity Effects. Journal of Modern Physics, 8, 2200-2208.
https://doi.org/10.4236/jmp.2017.814135
[26] Mahfoud, A. (2018) Modélisation des cellules solaires tandem à couches minces et à haut rendement (Doctoral Dissertation).
[27] Ghandhi, S.K. (1977) Semiconductor Power Devices: Physics of Operation and Fabrication Technology. Wiley, New York, 329.
http://dspace.univ-setif.dz:8888/jspui/handle/123456789/1785
[28] Adolf, G., Joachim, K. and Bernhard, V. (1998) Crystalline Silicon Solar Cells. Fraunhofer Institute for Solar Energy Systems, Freiburg.
[29] Orieux, A., Versteegh, M.A., Jöns, K.D. and Ducci, S. (2017) Semiconductor Devices for Entangled Photon Pair Generation: A Review. Reports on Progress in Physics, 80, Article ID: 076001.
https://doi.org/10.1088/1361-6633/aa6955
[30] Jain, V.K. and Verma, A. (2013) Physics of Semiconductor Devices: 17th International Workshop on the Physics of Semiconductor Devices. Springer Science & Business Media, Berlin.
https://doi.org/10.1007/978-3-319-03002-9
[31] Thompson, G.H.B. (1980) Physics of Semiconductor Laser Devices.
[32] Chen, Y., Wang, D., Liu, Y., Dong, Y. and Liu, J. (2019) Research on Photovoltaic Performance Reduction Due to Dust Deposition: Modelling and Experimental Approach. Journal of Thermal Science, 28, 1186-1194.
https://doi.org/10.1007/s11630-019-1177-6
[33] Colinge, J.P. and Colinge, C.A. (2005) Physics of Semiconductor Devices. Springer Science & Business Media, Berlin.
[34] Colarco, P.R., Toon, O.B., Torres, O. and Rasch, P.J. (2002) Determining the UV Imaginary Index of Refraction of Saharan Dust Particles from Total Ozone Mapping Spectrometer Data Using a Three-Dimensional Model of Dust Transport. Journal of Geophysical Research: Atmospheres, 107, AAC 4-1-AAC 4-18.
https://doi.org/10.1029/2001JD000903
https://agupubs.onlinelibrary.wiley.com/action/doSearch?ContribAuthorStored=Rasch%2C+Philip+J
[35] Sokolik, I.N. and Toon, O.B. (1999) Incorporation of Mineralogical Composition into Models of the Radiative Properties of Mineral Aerosol from UV to IR Wavelengths. Journal of Geophysical Research: Atmospheres, 104, 9423-9444.
https://doi.org/10.1029/1998JD200048
[36] Péré, J.C., Rivellini, L., Crumeyrolle, S., Chiapello, I., Minvielle, F., Thieuleux, F. and Popovici, I. (2018) Simulation of African Dust Properties and Radiative Effects during the 2015 SHADOW Campaign in Senegal. Atmospheric Research, 199, 14-28.
https://doi.org/10.1016/j.atmosres.2017.07.027
[37] Fouquart, Y., Bonnel, B., Brogniez, G., Buriez, J.C., Smith, L., Morcrette, J.J. and Cerf, A. (1987) Observations of Saharan Aerosols: Results of ECLATS Field Experiment. Part II: Broadband Radiative Characteristics of the Aerosols and Vertical Radiative Flux Divergence. Journal of Climate and Applied Meteorology, 26, 38-52.
https://doi.org/10.1175/1520-0450(1987)026<0038:OOSARO>2.0.CO;2
[38] Kaufman, Y.J., Karnieli, A. and Tanré, D. (2000) Detection of Dust over Deserts Using Satellite Data in the Solar Wavelengths. IEEE Transactions on Geoscience and Remote Sensing, 38, 525-531.
https://doi.org/10.1109/36.823947
[39] Veselovskii, I., Goloub, P., Podvin, T., Bovchaliuk, V., Derimian, Y., Augustin, P. and Diallo, A. (2016) Retrieval of Optical and Physical Properties of African Dust from Multiwavelength Raman Lidar Measurements during the SHADOW Campaign in Senegal. Atmospheric Chemistry and Physics, 16, 7013.
https://doi.org/10.5194/acp-16-7013-2016
[40] Jiang, Y. and Lu, L. (2016) Experimentally Investigating the Effect of Temperature Differences in the Particle Deposition Process on Solar Photovoltaic (PV) Modules. Sustainability, 8, 1091.
https://doi.org/10.3390/su8111091
[41] Abdolzadeh, M. and Nikkhah, R. (2019) Experimental Study of Dust Deposition Settled over Tilted PV Modules Fixed in Different Directions in the Southeast of Iran. Environmental Science and Pollution Research, 26, 31478-31490.
https://doi.org/10.1007/s11356-019-06246-z
[42] Klugmann-Radziemska, E. (2015) Degradation of Electrical Performance of a Crystalline Photovoltaic Module Due to Dust Deposition in Northern Poland. Renewable Energy, 78, 418-426.
https://doi.org/10.1016/j.renene.2015.01.018
[43] Majeed, R., Waqas, A., Sami, H., Ali, M. and Shahzad, N. (2020) Experimental Investigation of Soiling Losses and a Novel Cost-Effective Cleaning System for PV Modules. Solar Energy, 201, 298-306.
https://doi.org/10.1016/j.solener.2020.03.014
[44] Nimmo, B.R. and Said, S.A. (1981) Effects of Dust on the Performance of Thermal and Photovoltaic Flat Plate Collectors in Saudi Arabia: Preliminary Results. Alternative Energy Sources II, 1, 145-152.
https://ui.adsabs.harvard.edu/abs/1981aes.....1..145N/abstract
[45] Guan, Y., Zhang, H., Xiao, B., Zhou, Z. and Yan, X. (2017) In-Situ Investigation of the Effect of Dust Deposition on the Performance of Polycrystalline Silicon Photovoltaic Modules. Renewable Energy, 101, 1273-1284.
https://doi.org/10.1016/j.renene.2016.10.009
[46] Ramli, M.A., Prasetyono, E., Wicaksana, R.W., Windarko, N.A., Sedraoui, K. and Al-Turki, Y.A. (2016) On the Investigation of Photovoltaic Output Power Reduction Due to Dust Accumulation and Weather Conditions. Renewable Energy, 99, 836-844.
https://doi.org/10.1016/j.renene.2016.07.063
[47] Hegazy, A.A. (2001) Effect of Dust Accumulation on Solar Transmittance through Glass Covers of Plate-Type Collectors. Renewable Energy, 22, 525-540.
https://doi.org/10.1016/S0960-1481(00)00093-8
[48] Ahmed, Z., Kazem, H.A. and Sopian, K. (2013) Effect of Dust on Photovoltaic Performance: Review and Research Status. Latest Trends in Renewable Energy and Environmental Informatics, 34, 193-199.
[49] Boccard, M. and Ballif, C. (2020) Influence of the Subcell Properties on the Fill Factor of Two-Terminal Perovskite-Silicon Tandem Solar Cells. ACS Energy Letters, 5, 1077-1082.
https://doi.org/10.1021/acsenergylett.0c00156
[50] Martini, L., Serenelli, L., Menchini, F., Izzi, M. and Tucci, M. (2020) Silicon Heterojunction Solar Cells toward Higher Fill Factor. Progress in Photovoltaics: Research and Applications, 28, 307-320.
https://doi.org/10.1002/pip.3241

Copyright © 2024 by authors and Scientific Research Publishing Inc.

Creative Commons License

This work and the related PDF file are licensed under a Creative Commons Attribution 4.0 International License.