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September 10, 2025Solar0 citationsOpen Access

Optimization Study of the Electrical Microgrid for a Hybrid PV–Wind–Diesel–Storage System in an Island Environment

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FMFahad MaoulidaKAKassim Mohamed AboudouRDRabah Djedjig

Key Points

  • The results show that the optimal microgrid configuration meets 100% of electricity demand using solar PV and battery storage.
  • The levelized cost of energy achieved is 0.563 USD/kWh, emphasizing economic competitiveness in remote settings.
  • The system generates a 63.7% energy surplus, indicating potential for community applications and future expansion.
  • Sensitive parameters like solar irradiance and wind speed were analyzed using HOMER Energy for efficient modeling.

Abstract

The Union of the Comoros, located in the Indian Ocean, faces persistent energy challenges due to its geographic isolation, heavy dependence on imported fossil fuels, and underdeveloped electricity infrastructure. This study investigates the techno-economic optimization of a hybrid microgrid designed to supply electricity to a rural village in Grande Comore. The proposed system integrates photovoltaic (PV) panels, wind turbines, a diesel generator, and battery storage. Detailed modeling and simulation were conducted using HOMER Energy, accompanied by a sensitivity analysis on solar irradiance, wind speed, and diesel price. The results indicate that the optimal configuration consists solely of PV and battery storage, meeting 100% of the annual electricity demand with a competitive levelized cost of energy (LCOE) of 0.563 USD/kWh and zero greenhouse gas emissions. Solar PV contributes over 99% of the total energy production, while wind and diesel components remain unused under optimal conditions. Furthermore, the system generates a substantial energy surplus of 63.7%, which could be leveraged for community applications such as water pumping, public lighting, or future system expansion. This study highlights the technical viability, economic competitiveness, and environmental sustainability of 100% solar microgrids for non-interconnected island territories. The approach provides a practical and replicable decision-support framework for decentralized energy planning in remote and vulnerable regions.

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Cite This Study

Maoulida et al. (2025) studied this question.

synapsesocial.com/papers/68c1b19354b1d3bfb60e8b0fhttps://doi.org/10.3390/solar5030039
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