Author
Listed:
- Burak Şafak
(Department of Electrical and Electronics Engineering, Faculty of Engineering, Trakya University, Edirne 22030, Türkiye)
- Alper Çiçek
(Department of Electrical and Electronics Engineering, Faculty of Engineering, Trakya University, Edirne 22030, Türkiye)
Abstract
The transportation sector is a significant contributor to global carbon emissions, thus necessitating a transition toward renewable energy sources (RESs) and electric vehicles (EVs). Among EV technologies, fuel-cell EVs (FCEVs) offer distinct advantages in terms of refueling time and operational efficiency, thus rendering them a promising solution for sustainable transportation. Nevertheless, the integration of FCEVs in rural areas poses challenges due to the limited availability of refueling infrastructure and constraints in energy access. In order to address these challenges, this study proposes a multi-objective energy management model for a hydrogen refueling station (HRS) integrated with RESs, a battery storage system, an electrolyzer (EL), a fuel cell (FC), and a hydrogen tank, serving diverse FCEVs in rural areas. The model, formulated using mixed-integer linear programming (MILP), optimizes station operations to maximize both cost and load factor performance. Additionally, bi-directional trading with the power grid and hydrogen network enhances energy flexibility and grid stability, enabling a more resilient and self-sufficient energy system. To the best of the authors’ knowledge, this study is the first in the literature to present a multi-objective optimal management approach for grid-interactive, renewable-supported HRSs serving hydrogen-powered vehicles in rural areas. The simulation results demonstrate that RES integration improves economic feasibility by reducing costs and increasing financial gains, while maximizing the load factor enhances efficiency, cost-driven strategies that may impact stability. The impact of the EL on cost is more significant, while RES capacity has a relatively smaller effect on cost. However, its influence on the load factor is substantial. The optimization of RES-supported hydrogen production has been demonstrated to reduce external dependency, thereby enabling surplus trading and increasing financial gains to the tune of USD 587.83. Furthermore, the system enhances sustainability by eliminating gasoline consumption and significantly reducing carbon emissions, thus supporting the transition to a cleaner and more efficient transportation ecosystem.
Suggested Citation
Burak Şafak & Alper Çiçek, 2025.
"Multi-Objective Optimal Energy Management Strategy for Grid-Interactive Hydrogen Refueling Stations in Rural Areas,"
Sustainability, MDPI, vol. 17(6), pages 1-20, March.
Handle:
RePEc:gam:jsusta:v:17:y:2025:i:6:p:2663-:d:1614318
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References listed on IDEAS
- Raafat George Saade & Xue Zhang & Ce Yu & Junchen Yao, 2025.
"A Thematic Analysis, Definition, and a Green Aviation Conceptual Model—Putting It All Together,"
Sustainability, MDPI, vol. 17(2), pages 1-25, January.
- Aviel Verbruggen & Gulzhan Yermekova & Kanat Baigarin, 2025.
"Dubious Promises of Hydrogen Energy in a Climate-Constrained World,"
Energies, MDPI, vol. 18(3), pages 1-17, January.
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