Grid-connected storage hybrid renewable energy plant design: the solar energy institute example
Abstract
In this study, the technical and economic performance of grid-connected hybrid renewable energy systems was evaluated using the actual electricity consumption data for 2024 from the Solar Energy Institute located within the Ege University campus. Within this scope, different system configurations consisting of photovoltaic (PV) systems, wind turbines, the electricity grid, and lithium-ion battery components were modeled using HOMER Pro software, and a total of 5 different scenarios were analyzed, starting from a grid-dependent reference structure. The scenarios were compared based on renewable energy contribution ratio, grid dependency, levelized cost of electricity (LCOE), and net present cost (NPC) indicators. The results showed that wind energy is the most economically advantageous renewable source under the conditions of the location studied. In the scenario including wind turbines, the renewable energy share reached 66.7%, with LCOE calculated at $0.0564/kWh and NPC at $359,173. In the hybrid scenario, which combines PV and wind, the renewable energy share was 72.1%, and a more balanced performance was achieved in terms of production continuity and reduced grid dependency. In scenarios involving energy storage, load balancing was achieved from a technical perspective; however, economic performance was limited due to current battery costs. Furthermore, in scenarios where energy sales to the grid were possible, both the renewable energy utilization rate increased and LCOE values improved significantly. The results demonstrate the technical and economic feasibility of grid-connected hybrid renewable energy systems at the campus scale and indicate that wind-dominated hybrid configurations can be a cost-effective option for similar facilities under the defined assumptions and current market conditions.
Keywords
References
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Details
Primary Language
English
Subjects
Electrical Energy Generation (Incl. Renewables, Excl. Photovoltaics)
Journal Section
Research Article
Publication Date
July 30, 2026
Submission Date
November 23, 2025
Acceptance Date
March 28, 2026
Published in Issue
Year 2026 Volume: 6 Number: 2
APA
Nermiş, D., & Çetin, N. S. (2026). Grid-connected storage hybrid renewable energy plant design: the solar energy institute example. Journal of Innovative Engineering and Natural Science, 6(2), 440-466. https://doi.org/10.61112/jiens.1828875
AMA
1.Nermiş D, Çetin NS. Grid-connected storage hybrid renewable energy plant design: the solar energy institute example. JIENS. 2026;6(2):440-466. doi:10.61112/jiens.1828875
Chicago
Nermiş, Derşan, and Numan Sabit Çetin. 2026. “Grid-Connected Storage Hybrid Renewable Energy Plant Design: The Solar Energy Institute Example”. Journal of Innovative Engineering and Natural Science 6 (2): 440-66. https://doi.org/10.61112/jiens.1828875.
EndNote
Nermiş D, Çetin NS (July 1, 2026) Grid-connected storage hybrid renewable energy plant design: the solar energy institute example. Journal of Innovative Engineering and Natural Science 6 2 440–466.
IEEE
[1]D. Nermiş and N. S. Çetin, “Grid-connected storage hybrid renewable energy plant design: the solar energy institute example”, JIENS, vol. 6, no. 2, pp. 440–466, July 2026, doi: 10.61112/jiens.1828875.
ISNAD
Nermiş, Derşan - Çetin, Numan Sabit. “Grid-Connected Storage Hybrid Renewable Energy Plant Design: The Solar Energy Institute Example”. Journal of Innovative Engineering and Natural Science 6/2 (July 1, 2026): 440-466. https://doi.org/10.61112/jiens.1828875.
JAMA
1.Nermiş D, Çetin NS. Grid-connected storage hybrid renewable energy plant design: the solar energy institute example. JIENS. 2026;6:440–466.
MLA
Nermiş, Derşan, and Numan Sabit Çetin. “Grid-Connected Storage Hybrid Renewable Energy Plant Design: The Solar Energy Institute Example”. Journal of Innovative Engineering and Natural Science, vol. 6, no. 2, July 2026, pp. 440-66, doi:10.61112/jiens.1828875.
Vancouver
1.Derşan Nermiş, Numan Sabit Çetin. Grid-connected storage hybrid renewable energy plant design: the solar energy institute example. JIENS. 2026 Jul. 1;6(2):440-66. doi:10.61112/jiens.1828875
