Optimal Configuration Strategy of Electricity–Hydrogen Coupled Rural Microgrid Considering Long-Term Hydrogen Storage Characteristics
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Abstract
The limited flexibility of rural microgrids in accommodating long-term renewable energy fluctuations poses a major challenge to achieving low-carbon and cost-effective operation. To address this issue, an optimal configuration strategy for an electricity–hydrogen coupled rural microgrid (EH-RM) system is developed, considering the long-term operational characteristics of hydrogen storage. Firstly, detailed models of key energy conversion and storage devices, including electrolyzers, fuel cells, combined heat and power (CHP) units, and hydrogen storage tanks, are established to capture multi-energy coupling relationships among electricity, heat, gas, and hydrogen. Then, a bilevel optimization framework is proposed, where the upper-level capacity configuration model minimizes the annualized total cost, and the lower-level scheduling model minimizes daily operating cost under multi-energy balance constraints. Subsequently, a Benders decomposition–based algorithm is employed to decouple capacity planning and operational scheduling, iteratively generating feasibility and optimality cuts to ensure convergence and computational efficiency. Finally, case study results show that the proposed bilevel configuration model effectively reduces the total system cost and carbon emissions in rural applications, demonstrating its economic efficiency and low-carbon advantages for rural integrated scenarios.
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References
O. Alavi, I. Kaaya, R. De Jong, et al., “Assessing the impact of PV panel climate-based degradation rates on inverter reliability in grid-connected solar energy systems,” Heliyon, vol. 10, no. 3, Art. no. e25839, 2024.
F. Dawood, M. Anda, and G. M. Shafiullah, “Hydrogen production for energy: An overview,” Int. J. Hydrogen Energy, vol. 45, no. 7, pp. 3847–3869, 2020.
A. Mohammadi and M. Mehrpooya, “A comprehensive review on coupling different types of electrolyzer to renewable energy sources,” Energy, vol. 158, pp. 632–655, 2018.
M. Shi, P. Xie, L. Yao, et al., “Electricity-hydrogen coupled energy storage bilevel optimization for offshore wind-powered zero-carbon port microgrids considering multiple uncertainties,” Appl. Energy, vol. 401, Art. no. 126672, 2025.
X. Yu and G. Xu, “Optimized configuration of integrated energy system for parks with hydrogen storage and electric heat storage,” Power Demand Side Manage., vol. 26, no. 6, pp. 30–36, 2024.
Y. Xiong, Y. Si, T. Zheng, et al., “Optimal configuration of hydrogen storage in industrial park integrated energy system based on Stackelberg game,” Trans. China Electrotech. Soc., vol. 36, no. 3, pp. 507–516, 2021.
G. Pan, W. Gu, H. Qiu, et al., “Bi-level mixed-integer planning for electricity-hydrogen integrated energy system considering levelized cost of hydrogen,” Appl. Energy, vol. 270, Art. no. 115176, 2020.
N. Liu, K. Zhang, and K. Zhang, “Coordinated configuration of hybrid energy storage for electricity-hydrogen integrated energy system,” J. Energy Storage, vol. 95, Art. no. 112590, 2024.
S. Zhu, B. Du, X. Lu, et al., “Design and optimization of a cascade hydrogen storage system for integrated energy utilization,” J. Energy Storage, vol. 96, Art. no. 112732, 2024.
M. Laimon and T. Yusaf, “Towards energy freedom: Exploring sustainable solutions for energy independence and self-sufficiency using integrated renewable energy-driven hydrogen system,” Renew. Energy, vol. 222, Art. no. 119948, 2024.
J. Park, S. Kang, S. Kim, et al., “Optimizing green hydrogen systems: Balancing economic viability and reliability in the face of supply-demand volatility,” Appl. Energy, vol. 368, Art. no. 123492, 2024.
Z. Sun, Q. Ai, A. Julaiti, et al., “Annual planning study of integrated energy system considering seasonal hydrogen storage and futures carbon trading,” Electric Power, vol. 55, no. 8, pp. 2–13, 2022.
M. Liu, G. Zeng, P. Dong, et al., “Bi-level robust stochastic optimal configuration method for hydrogen energy storage system,” J. South China Univ. Technol. (Nat. Sci. Ed.), vol. 52, no. 9, pp. 12–23, 2024.
X. Gao, X. Wang, L. Zheng, et al., “Techno-economic optimization of a coupled electricity-heat-hydrogen energy system considering seasonal hydrogen storage and demand response,” Int. J. Hydrogen Energy, vol. 180, Art. no. 151642, 2025.
Y. Zhu and Q. Geng, “Capacity allocation and operation optimization of integrated energy park system coupled with hydrogen energy storage,” Modern Electric Power, vol. 40, no. 6, pp. 931–938, 2023.
L. Sun, L. Chen, Y. Xiong, et al., “Capacity optimization configuration of hydrogen energy storage cogeneration integrated energy system considering photothermal collector module,” Electric Power Autom. Equip., vol. 43, no. 12, pp. 70–76, 2023.
Y. Chen, L. Feng, I. Mansir, et al., “A new coupled energy system consisting of fuel cell, solar thermal collector, and organic Rankine cycle; Generation and storing of electrical energy,” Sustain. Cities Soc., vol. 81, Art. no. 103824, 2022.
Y. Cheng, Research on Operation Optimization and Optimal Configuration of Hydrogen Energy Storage in Integrated Energy Systems with Hydrogen Production from Wind Power. South China Univ. Technol., 2021.
K. Zhang, Optimal Capacity Allocation of Wind-Solar-Hydrogen Storage Integrated Energy System Based on Energy Storage Control Strategy and Improved NSGA-II Algorithm. Ningxia Univ., 2019.
R. Li, X. Peng, H. Lv, et al., “Two-layer optimal configuration for integrated energy system regarding hydrogen storage and demand response,” J. North China Electric Power Univ. (Nat. Sci. Ed.), vol. 51, no. 1, pp. 74–82, 111, 2024.
L. Sun, Z. Lin, and W. Li, “Research on multi-objective comprehensive energy optimization configuration scheme considering hydrogen storage,” High Voltage Apparatus, vol. 60, no. 7, pp. 88–96, 2024.
L. Lin, K. Ou, Q. Lin, et al., “Two-stage multi-strategy decision-making framework for capacity configuration optimization of grid-connected PV/battery/hydrogen integrated energy system,” J. Energy Storage, vol. 97, Art. no. 112862, 2024.
G. Wang, K. Verleysen, M. De, et al., “Multi-objective optimization of hybrid energy storage systems under uncertainty,” J. Energy Storage, vol. 111, Art. no. 115218, 2025.
A. Miao, Y. Yuan, Y. Huang, et al., “Stochastic optimization model of capacity configuration for integrated energy production system considering source-load uncertainty,” Sustainability, vol. 15, no. 19, Art. no. 14247, 2023.
Z. Xu, F. Chen, X. Yang, et al., “Optimal configuration of hybrid energy storage capacity in a grid-connected microgrid considering laddering carbon trading and demand response,” Energies, vol. 17, no. 1, Art. no. 139, 2024.