Skip to content

1 paper indexed here

We haven’t gathered this author’s papers yet. Follow them and we’ll fetch their work.

Not the right person? Other researchers publish under this name.

Open access Jul 2026

Electro-Hydrogen Synergistic Dispatch for Wind-Solar-Tidal Port Microgrids: A Two-Stage Stochastic Framework with Adaptive Progressive Hedging

The decarbonization of multi-energy coupled ports necessitates addressing the complex interplay between renewable energy fluctuations and flexible load management. However, existing research has clear limitations in describing multi-source uncertainties and clarifying the synergistic mechanism of electro-hydrogen energy storage systems. To fill this gap, this study addresses the core problem of the coordinated operation of port microgrids under multiple uncertainties. A comprehensive physical model is established for wind–solar–tidal–hydrogen systems, capturing the intricate dynamics of the “generation–consumption–storage–conversion” chain. A novel two-stage stochastic optimization framework, integrating day-ahead pre-decision with real-time compensation, is proposed. To overcome computational bottlenecks, an adaptive progressive hedging algorithm is introduced. Comparative analyses show that the proposed strategy reduces the total port operational costs by 60.8% and grid transaction costs by 74.4%, compared with the single-stage deterministic mode. The adaptive PH algorithm also achieves 4–6 times higher computational efficiency than quadratic integer Benders decomposition, while maintaining an optimality gap below 2%. These findings elucidate the critical synergy between electro-hydrogen storage and stochastic optimization, offering a theoretical basis for sustainable port operations.

Yutao Gao, Sheng Xiang, Ming Yang · 0 citations