Tracking Photovoltaics Systems at Mountain Heights

Author:

Ilolov MamadshoORCID,Inagaki FumiakiORCID,Ilolov Ahmadsho,Kabirov Sherali,Rahmatov JamshedORCID

Abstract

The expansion of the use of solar energy in most cases depends on the energy capabilities of each specific country. In Tajikistan, where 93% of the territory is mountains, it is necessary to build solar power plants high in the mountains. At mountain heights, the performance of panels increases in winter, in addition, the snow cover that reflects the sun's rays also contributes to an increase in the efficiency of solar panels. Experts note that solar panels receive less radiation in valleys, as clouds and fogs often prevent the passage of sunlight. At the heights of the mountains, there is no air pollution and, as a result, a longer operating time of the solar power plant. In the conditions of Tajikistan, one more drawback of solar stations in the valleys should be added - this is the rapid pollution of the panels due to dust storms in the summer-autumn period. The Chinese company Sun Tech Power Holdings will build a 10 MW power plant in Tibet at an altitude of 4000 meters above sea level.

Publisher

TIB Open Publishing

Reference12 articles.

1. L. Zadeh, “Fuzzy Sets”, Information and Control. vol. 8., no.3, pp. 338-353, 1965.

2. M. A. S. Masoum and M. Sarvi, “Design, simulation and construction of a new fuzzy-based maximum power point tracker for photovoltaic applications”, In Proceedings of the Australian University Power System Engineering Conference (AUPEC’ 02), 2002.

3. F. Z. Zerhouni, M. Zargar, M. T. Benmessaoud, A. B. Stamboli, and A. Midoun, “Proposed methods to increase the output efficiency of a photovoltaics (PV) system”, Aeta Polytechnica Hungarica, vol. 7, no. 2, pp. 55-70, 2013.

4. M. Taherbaneh, A. H. Rezaie, H. Ghafoorifard, K. Rahimi, and M.B. Mehnaj, “Maximizing Output Power of a Solar Panel via Combination of Sun Tracking by Fuzzy Controllers”, International Journal of Photoenergy, vol. 2010 pp.1-13, 2010, doi: https://doi.org/10.1155/2010/312580

5. N. Sagiartha, I. M. Sugina, I. Putra, M. A. Indraswara, L. I. D.Suryani, “Development of an Arduino-based data acquisition device for monitoring solar PV system parameters”, In International Conference of Science and Technology (ICST 2018), Atlantis Press, Paris, pp. 995-999, 2018

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