Energy Storage Science and Technology ›› 2025, Vol. 14 ›› Issue (10): 3814-3823.doi: 10.19799/j.cnki.2095-4239.2025.0404

• Energy Storage System and Engineering • Previous Articles     Next Articles

Multi-objective optimization of the grid-connected wind-solar-storage coupled hydrogen production system based on a genetic algorithm

Yanwen WANG1(), Bo WEI1, Lifang ZHANG1, Xiaojun PAN1, Ruyi LIU1, Miao GUO1, Kang CHEN2, Yanglong DUAN2, Feng YE1(), Huaiwu PENG2, Chao XU1   

  1. 1.North China Electric Power University, Beijing 102206, China
    2.Northwest Engineering Corporation Limited, Power China, Xi'an 710065, Shaanxi, China
  • Received:2025-04-24 Revised:2025-05-09 Online:2025-10-28 Published:2025-10-20
  • Contact: Feng YE E-mail:15195965577@163.com;fye@ncepu.edu.cn

Abstract:

Under the "dual carbon" goals, renewable energy-based hydrogen production has become a key pathway to advance the transition toward a low-carbon, clean, and efficient energy system. However, grid-connected hydrogen production faces challenges such as limited renewable energy accommodation and mismatches between hydrogen production efficiency and operational economics. This study develops a multi-objective optimization model to minimize the levelized cost of hydrogen (LCOH) and maximize the grid-feed-in ratio of renewable energy, hydrogen yield, and equivalent full-load hours of the electrolyzer. The Non-dominated Sorting Genetic Algorithm II (NSGA-II) is employed to generate a Pareto solution set, and the Technique for Order Preference by Similarity to an Ideal Solution (TOPSIS) method with entropy-based weights is applied to identify the optimal configuration. A comparative analysis is performed with and without an energy storage system. Results show that the grid-connected hydrogen production system with energy storage achieves a grid-feed-in ratio of 5.78%, a hydrogen yield of 2899.3 tons, and a curtailment ratio of 6.49% relative to total renewable generation. In contrast, the system without energy storage records a higher grid-feed-in ratio of 6.84%, a lower hydrogen yield of 2771.82 tons, and a curtailment ratio of 11.34%. These findings demonstrate that energy storage effectively reduces grid feed-in and curtailment, thereby enhancing hydrogen production. Furthermore, the operational characteristics of the optimized system on four representative days—vernal equinox, summer solstice, autumnal equinox, and winter solstice are examined. Results indicate that integrating energy storage not only mitigates renewable energy fluctuations but also reduces electrolyzer load variability, thereby improving intra-day operational stability and renewable energy utilization. This study provides theoretical support and engineering reference for the optimal configuration of grid-connected hydrogen production systems.

Key words: grid-connected hydrogen production, new energy, energy storage system, multi-objective optimization

CLC Number: