Effects of the Shading Rate on the Electrical Parameters of CIGS-Based Solar Modules
- 1 Physics Department, Faculty of Science and Technology, University Cheikh Anta Diop, Dakar, Senegal
- 2 Physics Department, Faculty of Science and Technology, University Cheikh Anta Diop, Dakar, Senegal
- 3 Physics Department, Faculty of Science and Technology, University Cheikh Anta Diop, Dakar, Senegal
- 4 Physics Department, Faculty of Science and Technology, University Cheikh Anta Diop, Dakar, Senegal
- 5 Physics Department, Faculty of Science and Technology, University Cheikh Anta Diop, Dakar, Senegal
- 6 Physics Department, Faculty of Science and Technology, University Cheikh Anta Diop, Dakar, Senegal
- 7 Physics Department, Faculty of Science and Technology of Mohmammadia, Laboratory Laboratory of Materials and Energy and System Control, University Hassan II, Casablanca, Marocco
- 8 Physics Department, Faculty of Science and Technology of Mohmammadia, Laboratory Laboratory of Materials and Energy and System Control, University Hassan II, Casablanca, Marocco
- 9 Physics Department, Faculty of Science and Technology, University Cheikh Anta Diop, Dakar, Senegal
Abstract
The aim of this article is to study the effects of the shading rate on the electrical performance parameters of CIGS PV modules. The study concerns a new flexible CIGS type photovoltaic module with a power of 90 W, manufactured by the company Shenzhen Shine Solar Co . , Ltd. This module, reference SN-CIGS90, is tested under the initial conditions to ensure its correct operation and to determine the initial values of the electrical parameters before shading. After this characterization test, the module is exposed under the actual operating conditions of the Renewable Energies Study and Research Center (CERER), located in Dakar, then 4 types of shading are performed with the same mask: partial shading 25% partial shading, 50% partial shading, 75% partial shading, and 100% full shading. The variation rates obtained on the experimental values of the 4 types of shading carried out determine that the shading phenomenon constitutes a factor that influences negatively on the electrical parameters of a CIGS-based PV module. Indeed, for 25% of the surface of the shaded module, there is a reduction of 58.139% of the maximum power and of 60.507% of the efficiency and for shading of 100%, the module loses 84.436% of its maximum power and 84.135% of its performance.
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