[1] MARTINEZ CESENA E A, MANCARELLA P. Energy systems integration in smart districts: robust optimisation of multi-energy flows in integrated electricity, heat and gas networks[J]. IEEE Transactions on Smart Grid, 2019, 10(1): 1122–1131. [2] Hydrogen Europe. Hydrogen roadmap Europe: a sustainable pathway for the european energy transition[EB/OL].(2019-02-11)[2020-02-10]. https://www.fch.europa.eu/sites/default/files/Hydrogen%20Roadmap%20Europe_Report.pdf. [3] 陈彬彬, 孙宏斌, 陈瑜玮, 等. 综合能源系统分析的统一能路理论(一): 气路[J]. 中国电机工程学报, 2020, 40(2): 436–444 CHEN Binbin, SUN Hongbin, CHEN Yuwei, et al. Energy circuit theory of integrated energy system analysis (I): gaseous circuit[J]. Proceedings of the CSEE, 2020, 40(2): 436–444 [4] 郭梦婕, 严正, 周云, 等. 含风电制氢装置的综合能源系统优化运行[J]. 中国电力, 2020, 53(1): 115–123, 161 GUO Mengjie, YAN Zheng, ZHOU Yun, et al. Optimized operation design of integrated energy system with wind power hydrogen production[J]. Electric Power, 2020, 53(1): 115–123, 161 [5] World Energy Council. Innovation insights brief-five steps to energy storage[EB/OL]. (2020-02-20)[2020-03-10]. https://www.worldenergy.org/publications/entry/innovation insights brief five steps to energy storage. [6] International Energy Agency. Technology road map: hydrogen and fuel cells[EB/OL]. (2015-06-15)[2020-03-01]. https://www.iea.org/reports/technology-roadmap-hydrogen-and-fuel-cells. [7] 彭生江, 杨淑霞, 袁铁江, 等. 广义风-氢-煤能源系统的挑战与展望[J]. 电力系统自动化, 2019, 43(24): 6–12 PENG Shengjiang, YANG Shuxia, YUAN Tiejiang, et al. Challenges and prospects of generalized wind-hydrogen-coal energy system[J]. Automation of Electric Power Systems, 2019, 43(24): 6–12 [8] Pöyry. Hydrogen from natural gas: the key to deep decarbonisation[EB/OL]. (2019-07-11)[2020-02-20]. https://www.poyry.com/news/articles/hydrogen-natural-gas-key-deep-decarbonisation. [9] 孔令国. 风光氢综合能源系统优化配置与协调控制策略研究[D]. 北京: 华北电力大学, 2017. KONG Lingguo. Research on optimal sizing and coordinated control strategy of integrated energy system of wind photovoltaic and hydrogen[D]. Beijing: North China Electric Power University, 2017. [10] LI J R, LIN J, SONG Y H, et al. Operation optimization of power to hydrogen and heat (P2HH) in ADN coordinated with the district heating network[J]. IEEE Transactions on Sustainable Energy, 2019, 10(4): 1672–1683. [11] 霍现旭, 王靖, 蒋菱, 等. 氢储能系统关键技术及应用综述[J]. 储能科学与技术, 2016, 5(2): 197–203 HUO Xianxu, WANG Jing, JIANG Ling, et al. Review on key technologies and applications of hydrogen energy storage system[J]. Energy Storage Science and Technology, 2016, 5(2): 197–203 [12] 许世森, 张瑞云, 程健, 等. 电解制氢与高温燃料电池在电力行业的应用与发展[J]. 中国电机工程学报, 2019, 39(9): 2531–2537 XU Shisen, ZHANG Ruiyun, CHENG Jian, et al. Application and development of electrolytic hydrogen production and high temperature fuel cell in electric power industry[J]. Proceedings of the CSEE, 2019, 39(9): 2531–2537 [13] GAHLEITNER G. Hydrogen from renewable electricity: an international review of power-to-gas pilot plants for stationary applications[J]. International Journal of Hydrogen Energy, 2013, 38(5): 2039–2061. [14] International Renewable Energy Agency. Hydrogen from renewable power: technology outlook for the energy transition[EB/OL]. (2018-09-20)[2020-02-20]. https://irena.org/publications/2018/Sep/Hydrogen-from-renewable-power. [15] ROSEN M A, KOOHI-FAYEGH S. The prospects for hydrogen as an energy carrier: an overview of hydrogen energy and hydrogen energy systems[J]. Energy, Ecology and Environment, 2016, 1(1): 10–29. [16] FISCHEDICK M, NITSCH J, RAMESOHL S. The role of hydrogen for the long term development of sustainable energy systems: a case study for Germany[J]. Solar Energy, 2005, 78(5): 678–686. [17] Adelphi Consult Gmbh. The role of clean hydrogen in the future energy systems of Japan and Germany[EB/OL]. (2019-09-20)[2020-03-01]. https://www.adelphi.de/en/publication/role-clean-hydrogen-future-energy-systems-japan-and-germany. [18] International Energy Agency. The future of hydrogen seizing todays opportynities[EB/OL]. (2019-06-14)[2020-03-10]. https://www.iea.org/events/the-future-of-hydrogen-seizing-todays-opportunities. [19] Hydrogen Council. Path to hydrogen competitiveness: a cost perspective[EB/OL]. (2020-01-20)[2020-02-20]. https://hydrogencouncil.com/en/path-to-hydrogen-competitiveness-a-cost-perspective. [20] GAO D, JIANG D F, LIU P, et al. An integrated energy storage system based on hydrogen storage: process configuration and case studies with wind power[J]. Energy, 2014, 66: 332–341. [21] BECHERIF M, RAMADAN H S, CABARET K, et al. Hydrogen energy storage: new techno-economic emergence solution analysis[J]. Energy Procedia, 2015, 74: 371–380. [22] KOPANOS G M, LIU P, GEORGIADIS M C. Advances in energy systems engineering[M]. Cham: Springer International Publishing, 2017. [23] DE SANTOLI L, LO BASSO G, BRUSCHI D. Energy characterization of CHP (combined heat and power) fuelled with hydrogen enriched natural gas blends[J]. Energy, 2013, 60: 13–22. [24] GUTIÉRREZ-MARTÍN F, CONFENTE D, GUERRA I. Management of variable electricity loads in wind-hydrogen systems: the case of a Spanish wind farm[J]. International Journal of Hydrogen Energy, 2010, 35(14): 7329–7336. [25] GAMBINI M, GUIZZI G L, VELLINI M. H2/O2 cycles: thermodynamic potentialities and limits[J]. Journal of Engineering for Gas Turbines and Power, 2005, 127(3): 553–563.
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