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February 14, 2026Journal of Renewable and Sustainable Energy0 citations

Optimal coupling of battery and green hydrogen storage for variable wind power: A real-world case study

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MBMariem BibihKCKarim ChoukriMKMohamed El Khaili

Key Points

  • The research aims to evaluate the optimal integration of battery and green hydrogen storage for handling variable wind energy demands.
  • Utilized real-world data from a 140 MW wind farm
  • Developed a multi-layer simulation model accounting for time-varying electricity demand
  • Compared battery and green hydrogen storage efficiencies under realistic grid conditions
  • Hybrid storage configuration reduces energy curtailment to approximately 3%
  • Increases renewable energy utilization to about 96.2%
  • Recovers approximately 136 GWh of renewable energy annually
  • Avoids about 95 ktCO2 emissions
  • Identifies economic factors influencing battery and hydrogen storage competitiveness

Abstract

The integration of variable wind power into electrical grids requires innovative storage solutions capable of addressing both short-term fluctuations and long-term energy imbalances. This study presents an empirical assessment of the optimal coupling between battery and green hydrogen storage using real-world data from a 140 MW wind farm. The analysis explicitly considers time-varying electricity demand to reflect realistic grid-connected operating conditions through a multi-layer simulation model. This study demonstrates that while batteries excel at short-term balancing with 90%–95% efficiency, and hydrogen enables seasonal energy shifting despite lower round trip efficiency (30%–45%), their hybrid configuration achieves superior performance. Results show that the hybrid system reduces curtailment to approximately 3%, increases renewable utilization to about 96.2%, and provides comprehensive flexibility across multiple time scales. Compared to a no-storage reference case, the hybrid configuration recovers approximately 136 GWh of renewable energy annually, corresponding to about 95 ktCO2 of avoided emissions. Economic analysis reveals distinct cost drivers: battery competitiveness hinges on capital cost reduction, while hydrogen economics depend primarily on electrolyzer efficiency and electricity prices. This paper provides a robust empirical validation of battery–hydrogen storage complementarity under variable demand, offering a replicable framework for regions targeting high renewable penetration and enhanced grid flexibility.

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Cite This Study

Bibih et al. (2026) studied this question.

synapsesocial.com/papers/699011032ccff479cfe57628https://doi.org/10.1063/5.0311283
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