含混合电解槽的绿电-绿氢系统能量管理策略研究

潘禹, 任永峰, 薛宇, 云平平, 贺彬

太阳能学报 ›› 2025, Vol. 46 ›› Issue (1) : 335-344.

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太阳能学报 ›› 2025, Vol. 46 ›› Issue (1) : 335-344. DOI: 10.19912/j.0254-0096.tynxb.2023-1278

含混合电解槽的绿电-绿氢系统能量管理策略研究

  • 潘禹1, 任永峰1, 薛宇2, 云平平3, 贺彬1
作者信息 +

RESEARCH ON ENERGY MANAGEMENT STRATEGY OF GREEN ELECTRICITY-GREEN HYDROGEN SYSTEM WITH MIXED ELECTROLYZER

  • Pan Yu1, Ren Yongfeng1, Xue Yu2, Yun Pingping3, He Bin1
Author information +
文章历史 +

摘要

提出绿电-绿氢一体化能量管理策略,以实现多时间尺度下系统协调稳定运行。基于层次分析法和熵权法计算碱性电解槽(AEL)和质子交换膜电解槽(PEMEL)混合电解槽最优容量配比方案,以期提升绿氢系统的承载能力。考虑AEL和PEMEL工作特性建立包含风电-制氢-储氢单元的精细化仿真模型,采用分层控制方法提高系统协调运行能力,同时提出余电制氢、负荷功率补偿及源荷协调运行等7种复杂工况能量管理策略,促进风电资源的高效利用,有效改善绿电-绿氢一体化系统的功率平衡关系。

Abstract

This paper proposes an integrated energy management strategy of green electric-green hydrogen to achieve coordinated and stable operation of the system under multiple time scales. Based on analytic hierarchy process(AHP) and entropy weight method, the optimal capacity ratio scheme of alkaline electrolzser(AEL) and proton exchange membrane electrolyzer(PEMEL) was calculated to improve the carrying capacity of green hydrogen system. Considering the working characteristics of AEL and PEMEL, a refined simulation model is established that includes wind power hydrogen production hydrogen storage units. A hierarchical control method is adopted to improve the coordinated operation ability of the system. At the same time, nine complex energy management strategies are proposed, including residual electricity hydrogen production, load power compensation, and source load coordinated operation, to promote the efficient utilization of wind power resources and effectively improve the power balance relationship of the green power green hydrogen integrated system.

关键词

清洁能源 / 氢能 / 能量管理 / 绿电-绿氢 / 层次分析法 / 熵权法 / 混合电解槽

Key words

clean energy / hydrogen energy / energy management / green electricity green hydrogen / analytic hierarchy process / entropy weight method / mixed electrolytic cell

引用本文

导出引用
潘禹, 任永峰, 薛宇, 云平平, 贺彬. 含混合电解槽的绿电-绿氢系统能量管理策略研究[J]. 太阳能学报. 2025, 46(1): 335-344 https://doi.org/10.19912/j.0254-0096.tynxb.2023-1278
Pan Yu, Ren Yongfeng, Xue Yu, Yun Pingping, He Bin. RESEARCH ON ENERGY MANAGEMENT STRATEGY OF GREEN ELECTRICITY-GREEN HYDROGEN SYSTEM WITH MIXED ELECTROLYZER[J]. Acta Energiae Solaris Sinica. 2025, 46(1): 335-344 https://doi.org/10.19912/j.0254-0096.tynxb.2023-1278
中图分类号: TK89   

参考文献

[1] 曹蕃, 郭婷婷, 陈坤洋, 等. 风电耦合制氢技术进展与发展前景[J]. 中国电机工程学报, 2021, 41(6): 2187-2201.
CAO F, GUO T T, CHEN K Y, et al.Progress and development prospect of coupled wind and hydrogen systems[J]. Proceedings of the CSEE, 2021, 41(6): 2187-2201.
[2] 陈国平, 董昱, 梁志峰. 能源转型中的中国特色新能源高质量发展分析与思考[J]. 中国电机工程学报, 2020, 40(17): 5493-5506.
CHEN G P, DONG Y, LIANG Z F.Analysis and reflection on high-quality development of new energy with Chinese characteristics in energy transition[J]. Proceedings of the CSEE, 2020, 40(17): 5493-5506.
[3] 李亮荣, 彭建, 付兵, 等. 碳中和愿景下绿色制氢技术发展趋势及应用前景分析[J]. 太阳能学报, 2022, 43(6): 508-520.
LI L R, PENG J, FU B, et al.Development trend and application prospect of green hydrogen production technologies under carbon neutrality vision[J]. Acta energiae solaris sinica, 2022, 43(6): 508-520.
[4] ROUHOLAMINI M, WANG C S, NEHRIR H, et al.A review of modeling, management, and applications of grid-connected Li-ion battery storage systems[J]. IEEE transactions on smart grid, 2022, 13(6): 4505-4524.
[5] AMIN M, SHAH H H, FAREED A G, et al.Hydrogen production through renewable and non-renewable energy processes and their impact on climate change[J]. International journal of hydrogen energy, 2022, 47(77): 33112-33134.
[6] 任永峰, 薛宇, 云平平, 等. 马尔可夫预测的多目标优化储能系统平抑风电场功率波动[J]. 电力系统自动化, 2020, 44(6): 67-74.
REN Y F, XUE Y, YUN P P, et al.Multi-objective optimization of energy storage system with Markov prediction for power fluctuation suppression of wind farm[J]. Automation of electric power systems, 2020, 44(6): 67-74.
[7] MA G L, LI J N, ZHANG X P.Energy storage capacity optimization for improving the autonomy of grid-connected microgrid[J]. IEEE transactions on smart grid, 2023, 14(4): 2921-2933.
[8] 郑博, 白章, 袁宇, 等. 多类型电解协同的风光互补制氢系统与容量优化[J]. 中国电机工程学报, 2022, 42(23): 8486-8496.
ZHENG B, BAI Z, YUAN Y, et al.Hydrogen production system and capacity optimization based on synergistic operation with multi-type electrolyzers under wind-solar power[J]. Proceedings of the CSEE, 2022, 42(23): 8486-8496.
[9] TEBIBEL H.Methodology for multi-objective optimization of wind turbine/battery/electrolyzer system for decentralized clean hydrogen production using an adapted power management strategy for low wind speed conditions[J]. Energy conversion and management, 2021, 238: 114125.
[10] 李佳蓉, 林今, 陈凯旋, 等. 考虑尾流效应的分布式海上风电制氢集群容量优化配置[J]. 电力系统自动化, 2023, 47(11): 9-17.
LI J R, LIN J, CHEN K X, et al.Optimal capacity configuration of distributed offshore wind power-to-hydrogen cluster considering wake effect[J]. Automation of electric power systems, 2023, 47(11): 9-17.
[11] 杨紫娟, 田雪沁, 吴伟丽, 等. 考虑电解槽组合运行的风电-氢能-HCNG耦合网络容量优化配置[J]. 电力系统自动化, 2023, 47(12): 76-85.
YANG Z J, TIAN X Q, WU W L, et al.Optimal capacity configuration of wind-hydrogen-HCNG coupled network considering combined electrolyzer operation[J]. Automation of electric power systems, 2023, 47(12): 76-85.
[12] 沈小军, 聂聪颖, 吕洪. 计及电热特性的离网型风电制氢碱性电解槽阵列优化控制策略[J]. 电工技术学报, 2021, 36(3): 463-472.
SHEN X J, NIE C Y, LYU H.Coordination control strategy of wind power-hydrogen alkaline electrolyzer bank considering electrothermal characteristics[J]. Transactions of China Electrotechnical Society, 2021, 36(3): 463-472.
[13] ZHAO Y Y, ZHU Z Z, TANG S H, et al.Electrolyzer array alternate control strategy considering wind power prediction[J]. Energy reports, 2022, 8: 223-232.
[14] LIU Z, WANG H, ZHOU B W, et al.Optimal operation strategy for wind-hydrogen-water power grids facing offshore wind power accommodation[J]. Sustainability, 2022, 14(11): 6871.
[15] 卢捷, 于立军, 郑培, 等. 风氢耦合系统超前控制策略研究[J]. 太阳能学报, 2022, 43(3): 53-60.
LU J, YU L J, ZHENG P, et al.Research on advanced control strategy of wind hydrogen coupling system[J]. Acta energiae solaris sinica, 2022, 43(3): 53-60.
[16] 邓浩, 陈洁, 腾扬新, 等. 风氢耦合系统能量管理策略研究[J]. 太阳能学报, 2021, 42(1): 256-263.
DENG H, CHEN J, TENG Y X, et al.Energy management strategy of wind power coupled with hydrogen system[J]. Acta energiae solaris sinica, 2021, 42(1): 256-263.
[17] 谢元皓, 林声宏, 朱建全. 基于广义纳什议价的多微电网配电系统多主体协同能量管理策略[J]. 电力自动化设备, 2024, 44(5): 199-207.
XIE Y H, LIN S H, ZHU J Q.Multi-stakeholder collaborative energy management strategy for multi-microgrid distribution system based on generalized Nash bargaining[J]. Electric power automation equipment, 2024, 44(5): 199-207.
[18] 蔡国伟, 陈冲, 孔令国, 等. 风氢耦合并网系统控制策略[J]. 太阳能学报, 2018, 39(10): 2970-2980.
CAI G W, CHEN C, KONG L G, et al.Control strategy of hybrid grid-connected system of wind and hydrogen[J]. Acta energiae solaris sinica, 2018, 39(10): 2970-2980.
[19] WANG W, LIU L, LIU J Z, et al.Energy management and optimization of vehicle-to-grid systems for wind power integration[J]. CSEE journal of power and energy systems, 2021, 7(1): 172-180.
[20] 李建林, 梁忠豪, 赵文鼎, 等. 混合电解槽制氢系统选型及评估方法[J]. 高电压技术, 2024, 50(6): 2653-2662.
LI J L, LIANG Z H, ZHAO W D, et al.Selection and evaluation method of hydrogen production system in hybrid electrolytic cell[J]. High voltage engineering, 2024, 50(6): 2653-2662.

基金

国家自然科学基金(52367022; 51967016); 内蒙古自治区重点研发和成果转化项目(2023YFHH0077; 2023YFHH0097); 内蒙古自治区科技创新重大示范工程“揭榜挂帅”项目(2023JBGS0013)

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