田雪沁, 冯亚杰, 袁铁江, 杨馥源, 戈阳阳. 考虑电氢负荷柔性的多堆电解槽优化运行[J]. 电网技术, 2025, 49(1): 84-92. DOI: 10.13335/j.1000-3673.pst.2023.1885
引用本文: 田雪沁, 冯亚杰, 袁铁江, 杨馥源, 戈阳阳. 考虑电氢负荷柔性的多堆电解槽优化运行[J]. 电网技术, 2025, 49(1): 84-92. DOI: 10.13335/j.1000-3673.pst.2023.1885
TIAN Xueqin, FENG Yajie, YUAN Tiejiang, YANG Fuyuan, GE Yangyang. Optimal Operation of Multi Alkaline Electrolyzers Considering Flexible Electrical and Hydrogen Load[J]. Power System Technology, 2025, 49(1): 84-92. DOI: 10.13335/j.1000-3673.pst.2023.1885
Citation: TIAN Xueqin, FENG Yajie, YUAN Tiejiang, YANG Fuyuan, GE Yangyang. Optimal Operation of Multi Alkaline Electrolyzers Considering Flexible Electrical and Hydrogen Load[J]. Power System Technology, 2025, 49(1): 84-92. DOI: 10.13335/j.1000-3673.pst.2023.1885

考虑电氢负荷柔性的多堆电解槽优化运行

Optimal Operation of Multi Alkaline Electrolyzers Considering Flexible Electrical and Hydrogen Load

  • 摘要: 可再生能源电解水制氢是降低新能源弃电率,提升绿氢占比的有效途径之一,针对大规模新能源制氢系统的优化运行和高弃电率的问题,建立了考虑电、氢负荷柔性的多堆碱性电解槽优化运行模型。首先考虑用户侧电、氢负荷需求,基于电、氢的可转移特性建立可转移电、氢负荷模型。其次,考虑电解槽的运行特性和电解效率,提出多堆电解槽优化运行策略,满足系统运行约束条件,建立以经济成本最小为目标函数的系统优化运行模型,并采用Yalmip工具箱和Cplex求解。算例结果表明,可转移负荷的参与能够促进风电消纳,减少系统购电量,提升系统经济性,且与多堆电解槽轮值策略相比,该文所提策略有效降低了电解槽的启停次数,使电解槽功率波动标准差稳定在0.27以内,提升电解槽阵列的使用寿命,整体电解效率上升至57%左右。

     

    Abstract: Hydrogen production from renewable energy is one of the effective ways to reduce the high waste electricity of new energy and increase the proportion of green hydrogen. The multi-alkaline electrolyzers optimization operation strategy is proposed considering flexible electric loads and hydrogen loads in response to the optimization operation of large-scale new energy hydrogen production systems and high abandonment of electricity. Firstly, after considering the demand for electricity and hydrogen loads on the user side, transferable electric loads and hydrogen load models are established based on the transferable characteristics of electricity and hydrogen. Secondly, the multi-stack electrolyzer optimization operation strategy is proposed, considering the operating characteristics of a single electrolytic cell and electrolytic efficiency. Satisfying system operation constraints and optimizing the operating model to minimize economic cost is established and solved using the Yalmip toolbox and Cplex. The calculation results show that the participation of transferable loads can promote wind power consumption, reduce system electricity consumption, and improve the system economy. Compared with the multi-stack electrolyzer rotation strategy, the strategy proposed in this article effectively reduces the start and stop times of the electrolyzer, stabilizes the standard deviation of electrolysis cell power fluctuation within 0.27, improves the service life of electrolyzer arrays and increases the overall electrolysis efficiency to about 57%.

     

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