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April 3, 2026Sustainability2 citationsOpen Access

Sustainable Day-Ahead Scheduling Optimization of a Wind–Solar Coupled Hydrogen DC Microgrid with Hybrid Energy Storage Considering Electrolyzer Lifetime

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HWH. Holly WangXXXingyi XieMMMeiQin Mao

Key Points

  • The central aim is to optimize energy scheduling in a wind-solar hydrogen microgrid to enhance renewable energy use and extend electrolyzer lifespan.
  • Developed a two-stage energy scheduling optimization framework
  • Utilized DBSCAN–K-means hybrid clustering for wind-solar scenarios
  • Implemented empirical mode decomposition for power fluctuation mitigation
  • Established a dual-scenario-driven electrolyzer scheduling strategy based on wind-solar output
  • Reduced electrolyzer start-stop cycles by 73%
  • Enhanced hydrogen production and economic performance
  • Improved renewable energy utilization and reduced curtailment
  • Lowered overall lifecycle costs

Abstract

Wind–solar coupled hydrogen production DC microgrids have significant potential for improving renewable energy utilization and reducing the cost of hydrogen production. However, the randomness of wind–solar power causes frequent electrolyzer start–stop operations, accelerating lifetime degradation, while a single energy storage system cannot simultaneously suppress power fluctuations and regulate energy. Therefore, this study proposes a two-stage day-ahead energy scheduling optimization framework. A DBSCAN–K-means hybrid clustering method generates representative wind–solar power scenarios. A supercapacitor-based strategy mitigates high-frequency power fluctuations using empirical mode decomposition. Furthermore, a dual-scenario-driven electrolyzer scheduling strategy adapted to different wind–solar output conditions is developed, where power allocation is determined by battery state-of-charge and electrolyzer operating states, enabling stepwise power compensation and dynamic operating-state optimization. Case studies comparing wind–solar-only supply, a conventional strategy, and the proposed strategy demonstrate that the proposed strategy balances hydrogen production and economic objectives, and reduces annual electrolyzer start–stop cycles by 73%, thereby prolonging electrolyzer lifetime. Furthermore, the proposed framework enhances renewable energy utilization, reduces curtailment, and lowers lifecycle costs, thereby contributing to the development of sustainable hydrogen production systems.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69cf5f425a333a821460e38bhttps://doi.org/10.3390/su18073435
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