发电技术 ›› 2023, Vol. 44 ›› Issue (3): 305-317.DOI: 10.12096/j.2096-4528.pgt.22173
张春雁1, 窦真兰1, 王俊2, 朱亮亮2, 孙晓彤3, 李根蒂3
收稿日期:
2022-11-14
出版日期:
2023-06-30
发布日期:
2023-06-30
作者简介:
基金资助:
Chunyan ZHANG1, Zhenlan DOU1, Jun WANG2, Liangliang ZHU2, Xiaotong SUN3, Gendi LI3
Received:
2022-11-14
Published:
2023-06-30
Online:
2023-06-30
Supported by:
摘要:
氢能作为清洁无碳、灵活高效的二次能源和工业原料,具有广阔的发展前景。虽然单独的电解水制氢、储氢和供氢技术都已发展相对成熟,但我国电解水制氢-储氢-供氢的耦合发展正处于起步阶段,探索该耦合技术在电力系统中的发展对氢能与传统电力的协同利用具有重要意义。基于此,介绍了电解水制氢、储氢和供氢技术的基本原理、分类及其优缺点,总结了美国、日本和欧盟在电解水制氢-储氢-供氢产业的发展情况,分析我国从制氢到用氢的基本现状,讨论我国电解水制氢-储氢-供氢在电力系统中3种可能的应用模式。最后,基于现状提出推动我国电解水制氢-储氢-供氢在电力系统中发展的建议,为优化氢能的制-储-供-用全技术链发展提供参考。
中图分类号:
张春雁, 窦真兰, 王俊, 朱亮亮, 孙晓彤, 李根蒂. 电解水制氢-储氢-供氢在电力系统中的发展路线[J]. 发电技术, 2023, 44(3): 305-317.
Chunyan ZHANG, Zhenlan DOU, Jun WANG, Liangliang ZHU, Xiaotong SUN, Gendi LI. Development Route of Hydrogen Production by Water Electrolysis, Hydrogen Storage and Hydrogen Supply in Power System[J]. Power Generation Technology, 2023, 44(3): 305-317.
图1 电解水制氢-储氢-供氢全产业链发展示意图
Fig. 1 Diagram of the whole industrial chain development of hydrogen production by water electrolysis, hydrogen storage and hydrogen supply
1 | 朱凯,张艳红 .“双碳”形势下电力行业氢能应用研究[J].发电技术,2022,43(1):65-72. doi:10.12096/j.2096-4528.pgt.21098 |
ZHU K, ZHANG Y H .Research on application of hydrogen in power industry under “double carbon” circumstance[J].Power Generation Technology,2022,43(1):65-72. doi:10.12096/j.2096-4528.pgt.21098 | |
2 | 田江南,蒋晶,罗扬,等 .绿色氢能技术发展现状与趋势[J].分布式能源,2021,6(2):8-13. doi:10.16513/j.2096-2185.DE.2106013 |
TIAN J N, JIANG J, LUO Y,et al .Development status and trend of green hydrogen energy technology[J].Distributed Energy,2021,6(2):8-13. doi:10.16513/j.2096-2185.DE.2106013 | |
3 | 程文姬,赵磊,郗航,等 .“十四五”规划下氢能政策与电解水制氢研究[J].热力发电,51(11):181-188. |
CHENG W J, ZHAO L, XI H,et al .Research on hydrogen energy policy and water-electrolytic hydrogen under the 14th Five-Year Plan[J].Thermal Power Generation,2022,51(11):181-188. | |
4 | 陈鸿琳,刘新苗,余浩,等 .基于近似动态规划的海上风电制氢微网实时能量管理策略[J].电力建设,2022,43(12):94-102. doi:10.12204/j.issn.1000-7229.2022.12.010 |
CHEN H L, LIU X M, YU H,et al .Real-time energy management strategy based on approximate dynamic programming for offshore wind power-to-hydrogen microgrid[J].Electric Power Construction,2022,43(12):94-102. doi:10.12204/j.issn.1000-7229.2022.12.010 | |
5 | 李建林,李光辉,梁丹曦,等 .“双碳目标”下可再生能源制氢技术综述及前景展望[J].分布式能源,2021,6(5):1-9. doi:10.16513/j.2096-2185.DE.2106528 |
LI J L, LI G H, LIANG D X,et al .Review and prospect of hydrogen production technology from renewable energy under targets of carbon peak and carbon neutrality[J].Distributed Energy,2021,6(5):1-9. doi:10.16513/j.2096-2185.DE.2106528 | |
6 | 梁前超,赵建锋,梁一帆,等 .储氢技术发展现状[J].海军工程大学学报,2022,34(3):92-101. doi:10.7495/j.issn.1009-3486.2022.03.016 |
LIANG Q C, ZHAO J F, LIANG Y F,et al .Progress in hydrogen storage technology[J].Journal of Naval University of Engineering,2022,34(3):92-101. doi:10.7495/j.issn.1009-3486.2022.03.016 | |
7 | 冯成,周雨轩,刘洪涛 .氢气存储及运输技术现状及分析[J].科技资讯,2021,19(25):44-46. |
FENG C, ZHOU Y X, LIU H T .Current situation and analysis of hydrogen storage and transportation technology[J].Science & Technology Information,2021,19(25):44-46. | |
8 | 刘金朋,侯焘 .氢储能技术及其电力行业应用研究综述及展望[J].电力与能源,2020,41(2):230-233. |
LIU J P, HOU T .Review and prospect of hydrogen energy storage technology and its application in power industry[J].Power & Energy,2020,41(2):230-233. | |
9 | 李丹枫,褚晓萌,刘磊 .绿氢领域电解水制氢聚合物膜材料研究进展及发展建议[J].科学通报,2022,67(27):3282-3295. doi:10.1360/tb-2022-0246 |
LI D F, CHU X M, LIU L .Polymeric membrane materials for green hydrogen production by water electrolysis:progress and suggestions for future development[J].Chinese Science Bulletin,2022,. doi:10.1360/tb-2022-0246 | |
67(27):3282-3295. doi:10.1360/tb-2022-0246 | |
10 | 黄清鲁,赵丽丽 .新能源制氢及氢能应用的发展前景[J].中国石油和化工标准与质量,2022,42(17):98-100. doi:10.3969/j.issn.1673-4076.2022.17.035 |
HUANG Q L, ZHAO L L .The development prospects of hydrogen production and hydrogen energy application from new energy sources[J].Chinese Petroleum and Chemical Standards and Quality,2022,42(17):98-100. doi:10.3969/j.issn.1673-4076.2022.17.035 | |
11 | 许卫,李桂真,马长山 .大规模电解水制氢系统的发展现状[J].太阳能,2022,3(5):33-39. |
XU W, LI G Z, MA C S .Development status of large-scale water electrolysis hydrogen production system[J].Solar Energy,2022,3(5):33-39. | |
12 | 王红霞,徐婉怡,张早校 .可再生电力电解制绿色氢能的发展现状与建议[J].化工进展,2022,41(S1):118-131. |
WANG H X, XU W Y, ZHANG Z X .Development status and suggestions of green hydrogen energy produced by water electrolysis from renewable energy[J].Chemical Industry and Engineering Progress,2022,41(S1):118-131. | |
13 | 郭博文,罗聃,周红军 .可再生能源电解制氢技术及催化剂的研究进展[J].化工进展,2021,40(6):2933-2951. |
GUO B W, LUO D, ZHOU H J .Recent advances in renewable energy electrolysis hydrogen production technology and related electrocatalysts[J].Chemical Industry and Engineering Progress,2021,40(6):2933-2951. | |
14 | 俞红梅,衣宝廉 .电解制氢与氢储能[J].中国工程科学,2018,20(3):58-65. doi:10.15302/j-sscae-2018.03.009 |
YU H M, YI B L .Hydrogen for energy storage and hydrogen production from electrolysis[J].Strategic Study of CAE,2018,20(3):58-65. doi:10.15302/j-sscae-2018.03.009 | |
15 | 闫庆友,史超凡,秦光宇,等 .基于近端策略优化算法的电化学/氢混合储能系统双层配置及运行优化[J].电力建设,2022,43(8):22-32. doi:10.12204/j.issn.1000-7229.2022.08.003 |
YAN Q Y, SHI C F, QIN G Y,et al .Research on two-layer configuration and operation optimization based on proximal policy optimization for electrochemical/hydrogen hybrid energy storage system[J].Electric Power Construction,2022,43(8):22-32. doi:10.12204/j.issn.1000-7229.2022.08.003 | |
16 | 杨馥源,田雪沁,徐彤,等 .面向碳中和电力系统转型的电氢枢纽灵活性应用[J].电力建设,2021,42(8):110-117. doi:10.12204/j.issn.1000-7229.2021.08.013 |
YANG F Y, TIAN X Q, XU T,et al .Flexibility of electro-hydrogen hub for power system transformation under the goal of carbon neutrality[J].Electric Power Construction,2021,42(8):110-117. doi:10.12204/j.issn.1000-7229.2021.08.013 | |
17 | 宋鹏飞,侯建国,王秀林 .可再生能源氢储能与氢转化利用技术及发展模式分析[J].天然气化工,2022,47(3):26-32. doi:10.3969/j.issn.1001-9219.2022.03.004 |
SONG P F, HOU J G, WANG X L .Analysis of hydrogen energy storage for renewables and hydrogen conversion technology and development model[J].Natural Gas Chemical Industry,2022,47(3):26-32. doi:10.3969/j.issn.1001-9219.2022.03.004 | |
18 | 徐滨,王锐,苏伟,等 .质子交换膜电解水技术关键材料的研究进展与展望[J].储能科学与技术,2022,11(11):3510-3520. |
XU B, WANG R, SU W,et al .Research progress and prospect of key materials of proton exchange membrane water electrolysis[J].Energy Storage Science and Technology,2022,11(11):3510-3520. | |
19 | 位召祥,张淑兴,刘世学 .固体氧化物电解制氢技术现状及面临问题分析[J].科技创新与应用,2021,11(35):36-39. |
WEI Z X, ZHANG S X, LIU S X .Analysis of the current situation and problems of solid oxide electrolytic hydrogen production technology[J].Technological Innovation and Application,2021,11(35):36-39. | |
20 | 王培灿,万磊,徐子昂,等 .碱性膜电解水制氢技术现状与展望[J].化工学报,2021,72(12):6161-6175. doi:10.11949/0438-1157.20211264 |
WANG P C, WAN L, XU Z A,et al .Hydrogen production based-on anion exchange membrane water electrolysis:a critical review and perspective[J].CIESC Journal,2021,72(12):6161-6175. doi:10.11949/0438-1157.20211264 | |
21 | 雷超,李韬 .碳中和背景下氢能利用关键技术及发展现状[J].发电技术,2021,42(2):207-217. doi:10.12096/j.2096-4528.pgt.20015 |
LEI C, LI T .Key technologies and development status of hydrogen energy utilization under the background of carbon neutrality[J].Power Generation Technology,2021,42(2):207-217. doi:10.12096/j.2096-4528.pgt.20015 | |
22 | 黄宣旭,练继建,沈威,等 .中国规模化氢能供应链的经济性分析[J].南方能源建设,2020,7(2):1-13. doi:10.16516/j.gedi.issn2095-8676.2020.02.001 |
HUANG X X, LIAN J J, SHEN W,et al .Economic analysis of China’s large-scale hydrogen energy supply chain[J].Southern Energy Construction,2020,7(2):1-13. doi:10.16516/j.gedi.issn2095-8676.2020.02.001 | |
23 | 李建,张立新,李瑞懿,等 .高压储氢容器研究进展[J].储能科学与技术,2021,10(5):1835-1844. |
LI J, ZHANG L X, LI R Y,et al .High-pressure gaseous hydrogen storage vessels:current status and prospects[J].Energy Storage Science and Technology,2021,10(5):1835-1844. | |
24 | ADE J O .Hydrogen energy,economy and storage:review and recommendation[J].International Journal of Hydrogen Energy,2019,44(29):15078-15086. doi:10.1016/j.ijhydene.2019.04.068 |
25 | ZHAO Y, GONG M, ZHOU Y,et al .Thermo-dynamics analysis of hydrogen storage based on compressed gaseous hydrogen,liquid hydrogen and cryo-compressed hydrogen[J].International Journal of Hydrogen Energy,2019,44(31):16833-16840. doi:10.1016/j.ijhydene.2019.04.207 |
26 | BARTHÉLÉMY H, WEBER M, BARBIER F .Hydrogen storage:recent improvements and industrial perspectives[J].International Journal of Hydrogen Energy,2017,11(42):7254-7262. |
27 | 杨文刚,李文斌,林松 .碳纤维缠绕复合材料储氢气瓶的研制与应用进展[J].玻璃钢/复合材料,2015(12):99-104. doi:10.3969/j.issn.1003-0999.2015.12.017 |
YANG W G, LI W B, LIN S .Research and application progress of carbon fiber composite[J].Fiber Reinforced Plastics/Composites,2015(12):99-104. doi:10.3969/j.issn.1003-0999.2015.12.017 | |
28 | CYLINDERHOON H L, HYUNG K K, KI H H .Hydrogen storage system for fuel cell vehicle:US20090155648[P].2009-06-18. |
29 | KOHLI D, KHARDEKR R K, SINGH R .Glass micro-container based hydrogen storage scheme[J].International Journal of Hydrogen Energy,2008,33(1):417-422. doi:10.1016/j.ijhydene.2007.07.044 |
30 | 程玉峰 .高压氢气管道氢脆问题明晰[J].油气储运,2023,42(1):1-8. |
CHENG Y F .Essence and gap analysis for hydrogen embrittlement of pipelines in high-pressure hydrogen environments[J].Oil & Gas Storage and Transportation,2023,42(1):1-8. | |
31 | HELMOLT R, EBERLE U .Fuel cell vehicles:status[J].Journal of Power Source,2007,165(2):833-843. doi:10.1016/j.jpowsour.2006.12.073 |
32 | 陈国邦 .低温工程材料[M].杭州:浙江大学出版社,1998. doi:10.1016/s0921-5093(97)00526-1 |
CHEN G B .Low temperature engineering materials[M].Hangzhou:Zhejiang University Press,1998. doi:10.1016/s0921-5093(97)00526-1 | |
33 | 郭志钒,巨永林 .低温液氢储存的现状及存在问题[J].低温与超导,2019,47(6):21-29. |
GUO Z F, JU Y L .Status and problems of cryogenic liquid hydrogen storage[J].Cryogenics & Super-conductivity,2019,47(6):21-29. | |
34 | DOGAN M, SELEK A, TURHAN O .Different functional groups functionalized hexagonal boron nitride (h-BN) nanoparticles and multi-walled carbon nanotubes (MWCNT) for hydrogen storage[J].Fuel,2021,303(3):121335. doi:10.1016/j.fuel.2021.121335 |
35 | 曹军文,覃祥富,耿嘎,等 .氢气储运技术的发展现状与展望[J].石油学报(石油加工),2021,37(6):1461-1478. doi:10.3969/j.issn.1001-8719.2021.06.026 |
CAO J W, QIN X F, GENG G,et al .Current status and prospects of hydrogen storage and transportation technology[J].Acta Petrolei Sinica (Petroleum Processing Section),2021,37(6):1461-1478. doi:10.3969/j.issn.1001-8719.2021.06.026 | |
36 | 秦天像,杨天虎,甘生萍 .储氢材料现状和发展前景的研究[J].甘肃科技,2016,32(21):56-57. doi:10.3969/j.issn.1000-0952.2016.21.021 |
QIN T X, YANG T H, GAN S P .Research on the current situation and development prospects of hydrogen storage materials[J].Gansu Science and Technology,32(21):56-57. doi:10.3969/j.issn.1000-0952.2016.21.021 | |
37 | 龙沛沛,程绍娟,赵强 .金属-有机骨架材料的合成及其研究进展[J].山西化工,2008,28(6):21-25. doi:10.3969/j.issn.1004-7050.2008.06.007 |
LONG P P, CHENG S J, ZHAO Q .Development of synthesis of metal organic frameworks[J].Shanxi Chemical Industry,2008,28(6):21-25. doi:10.3969/j.issn.1004-7050.2008.06.007 | |
38 | LOKSHIN K A, ZHAO Y, HE D .Structure and dynamics of hydrogen molecules in the novel clathrate hydrate by high pressure neutron dffraction[J].Physical Review Letters,2004,93(12):125503. doi:10.1103/physrevlett.93.125503 |
39 | 于驰 .新型水合物复合储氢技术研究[D].广州:华南理工大学,2018. |
YU C .Study of a novel hydrate-based hybrid hydrogen storage technology[D].Guangzhou:China South China University of Technology,2018. | |
40 | 陈俊,陈秋雄,陈运文 .水合物储能技术研究现状[J].储能科学与技术,2015,4(2):131-140. doi:10.3969/j.issn.2095-4239.2015.02.002 |
CHEN J, CHEN Q X, CHEN Y W .Current status of energy storage using hydrates[J].Energy Storage Science and Technology,2015,4(2):131-140. doi:10.3969/j.issn.2095-4239.2015.02.002 | |
41 | AN X H, PAN Y B, LUO Q .Application of a new kinetic model for the hydriding kinetics of La Ni5- x Al x (0≤x≤1.0) alloys[J].Journal of Alloys and Compound,2010,506:63-69. doi:10.1016/j.jallcom.2010.07.016 |
42 | 张国芳,张羊换,许剑轶 .Ni-5% RE x O y 复合添加剂对Mg2Ni电化学储氢性能的影响[J].材料工程,2017,45(11):72-77. doi:10.11868/j.issn.1001-4381.2016.000345 |
ZHANG G F, ZHANG Y H, XU J Y .Effects of Ni-5% RE x O y composite additives on electrochemical hydrogen storage performances of Mg2Ni[J].Journal of Materials Engineering,2017,45(11):72-77. doi:10.11868/j.issn.1001-4381.2016.000345 | |
43 | KLUMPP F .Comparison of pumped hydro,hydrogen storage and compressed air energy storage for integrating high shares of renewable energies-Potential,cost-comparison and ranking[J].Journal of Energy Storage,2016,8:119-128. doi:10.1016/j.est.2016.09.012 |
44 | 张彦纯 .各类加氢站及加氢合建站的建站模式及特点[J].上海煤气,2022(1):9-13. doi:10.32604/ee.2022.019450 |
ZHANG Y C .Construction mode and characteristic of various hydrogenation and combined hydrogenation station[J].Shanghai Gas,2022(1):9-13. doi:10.32604/ee.2022.019450 | |
45 | 李妍,常皓明,林世响,等 .外供氢与现场制氢加氢站的氢气成本分析[J].煤气与热力,2022,42(3):26-29. doi:10.3969/j.issn.1000-4416.2022.3.mqyrl202203017 |
LI Y, CHANG H M, LIN S X,et al .Hydrogen cost analysis of external hydrogen supply and on-site hydrogen production refueling station[J].Gas & Heat,2022,42(3):26-29. doi:10.3969/j.issn.1000-4416.2022.3.mqyrl202203017 | |
46 | 叶召阳 .外供氢加氢站工艺流程及设备研究[J].中国资源综合利用,2020,38(12):92-95. doi:10.3969/j.issn.1008-9500.2020.12.029 |
YE Z Y .Research on process flow and equipment of external hydrogen refueling station[J].China Resources Comprehensive Utilization,2020,38(12):92-95. doi:10.3969/j.issn.1008-9500.2020.12.029 | |
47 | 赵青松,郝蕴华,胡周海 .液氢汽化加氢加气合建站工艺设计方案[J].分布式能源,2022,7(4):64-73. |
ZHAO Q S, HAO Y H, HU Z H .Design scheme of liquid hydrogen vaporization and hydrogenation and gas integrated station[J].Distributed Energy,2022,7(4):64-73. | |
48 | 马志超,冯浩,闫云东 .加氢站供氢模式的选择及制氢技术的研究现状分析[J].广州化工,2019,47(16):132-134. |
MA Z C, FENG H, YAN Y D .Selection of hydrogen supply mode for hydrogen station and analysis of research status for hydrogen production technology[J].Guangzhou Chemical Industry,2019,47(16):132-134. | |
49 | 刘尚泽,于青,管健 .氢能利用与产业发展现状及展望[J].能源与节能,2022(11):18-21. doi:10.3969/j.issn.2095-0802.2022.11.004 |
LIU S Z, YU Q, GUAN J .Current situation and prospects of hydrogen energy utilization and industrial development[J].Energy and Energy Conservation,2022(11):18-21. doi:10.3969/j.issn.2095-0802.2022.11.004 | |
50 | 陆颖 .美国产业界发布氢能经济路线图[J].科技中国,2020(11):100-102. |
LU Y .US industry releases a hydrogen economy roadmap[J].Technology China,2020(11):100-102. | |
51 | 舟丹 .国外氢能产业化发展现状[J].中外能源,2022,27(11):92. |
ZHOU D .Current status of hydrogen energy industrialization development abroad[J].Domestic and Foreign Energy Sources,2022,27(11):92. | |
52 | 李浩东 .日本“氢能社会”建设经验及对我国的启示[J].日本研究,2021(4):33-42. |
LI H D .Japan’s “hydrogen energy-based society” construction experience and its enlightenment to China[J].Japan Studies,2021(4):33-42. | |
53 | 姜道含 .利用风电场弃风实现制氢及氢能综合利用技术方案研究[J].中国勘察设计,2022(S2):52-53. doi:10.3969/j.issn.1006-9607.2022.z2.014 |
JIANG D H .Research on the technical scheme for hydrogen production and comprehensive utilization of hydrogen energy by utilizing wind farm abandonment[J].China Survey and Design,2022(S2):52-53. doi:10.3969/j.issn.1006-9607.2022.z2.014 | |
54 | 肖宇 .氢储能:支撑起智能电网和可再生能源发电规模化[J].中国战略新兴产业,2016,5(1):46-49. |
XIAO Y .Hydrogen energy storage:supporting the scaling of smart grid and renewable energy generation[J].China’s Strategic Emerging Industries,2016,5(1):46-49. | |
55 | 新能源网 .宁夏宝丰能源开始建设全球最大太阳能制氢系统[EB/OL].(2020-04-27)[2022-11-01].. |
New Energy Network .Ningxia Baofeng Energy began to build the world’s largest solar hydrogen production system[EB/OL].(2020-04-27)[2022-11-01].. | |
56 | 中国氯碱 .中国首个万吨级光伏绿氢项目在新疆开建[J].中国氯碱,2021,529(12):45-46. |
Chlor-Alkali China .China’s first 10 000 ton photovoltaic green hydrogen project is under construction in Xinjiang[J].China Chlor-Alkali,2021,529(12):45-46. | |
57 | 刘奇琦,许晓峰 .传统火电-风电-广域储能联合调频的协调控制研究[J].山东工业技术,2019(6):187-188. |
LIU Q Q, XU X F . Research on coordinated control of traditional thermal power wind power wide area energy storage joint frequency modulation[J].Shandong Industrial Technology,2019(6):187-188. | |
58 | 高啸天,郑可昕,蔡春荣,等 .氢储能用于核电调峰经济性研究[J].南方能源建设,2021,8(4):1-8. |
GAO X T, ZHENG K X, CAI C R,et al .Research on economy of hydrogen energy storage for nuclear power peak shaving[J].Southern Energy Construction,2021,8(4):1-8. | |
59 | 王涵啸,厉富超,王磊,等 .在新型电力系统下氢能的发展研究[J].能源与节能,2022(6):36-39. doi:10.3969/j.issn.2095-0802.2022.06.011 |
WANG H X, LI F C, WANG L,et al .Development of hydrogen energy in new power system[J].Energy and Energy Conservation,2022(6):36-39. doi:10.3969/j.issn.2095-0802.2022.06.011 | |
60 | 赵学良 .发展谷电制氢提高可再生能源部署能力的探讨[J].石油炼制与化工,2021,52(6):117-120. doi:10.3969/j.issn.1005-2399.2021.06.022 |
ZHAO X L .Discussion on developing hydrogen production using valley electricity to improve deployment capacity of reenewable energy[J].Petroleum Processing and Petrochemicals,2021,52(6):117-120. doi:10.3969/j.issn.1005-2399.2021.06.022 | |
61 | 赵玉晴,蒋文明,刘杨 .氢能产业发展现状及未来展望[J].安全、健康和环境,2023,23(1):1-12. |
ZHAO Y Q, JIANG W M, LIU Y .Development status and future prospects of hydrogen energy industry[J].Safety Health & Environment,2023,23(1):1-12. | |
62 | 孙德强,张俊武,吴小梅,等 .我国氢能产业发展现状、挑战及对策[J].中国能源,2022,44(9):27-35. |
SUN D Q, ZHANG J W, WU X M,et al .Development status,challenges and countermeasures of hydrogen energy industry in China[J].China Energy,2022,44(9):27-35. |
[1] | 王放放, 杨鹏威, 赵光金, 李琦, 刘晓娜, 马双忱. 新型电力系统下火电机组灵活性运行技术发展及挑战[J]. 发电技术, 2024, 45(2): 189-198. |
[2] | 刘林, 王大龙, 綦晓, 周振波, 林焕新, 蔡传卫. 基于双锁相环的海上风场综合惯量调频策略研究[J]. 发电技术, 2024, 45(2): 282-290. |
[3] | 杨捷, 孙哲, 苏辛一, 鲁刚, 元博. 考虑振荡型功率的直流微电网储能系统无互联通信网络的多目标功率分配方法[J]. 发电技术, 2024, 45(2): 341-352. |
[4] | 付红军, 朱劭璇, 王步华, 谢岩, 熊浩清, 唐晓骏, 杜晓勇, 李程昊, 李晓萌. 基于长短期记忆神经网络的检修态电网低频振荡风险预测方法[J]. 发电技术, 2024, 45(2): 353-362. |
[5] | 刘洪波, 刘珅诚, 盖雪扬, 刘永发, 阎禹同. 高比例新能源接入的主动配电网规划综述[J]. 发电技术, 2024, 45(1): 151-161. |
[6] | 潘晓杰, 徐友平, 解治军, 王玉坤, 张慕婕, 石梦璇, 马坤, 胡伟. 堆栈式集成学习驱动的电力系统暂态稳定预防控制优化方法[J]. 发电技术, 2023, 44(6): 865-874. |
[7] | 陈皓勇, 黄宇翔, 张扬, 王斐, 周亮, 汤君博, 吴晓彬. 基于“三流分离-汇聚”的虚拟电厂架构设计[J]. 发电技术, 2023, 44(5): 616-624. |
[8] | 曹冬惠, 杜冬梅, 何青. 氢储能安全及其检测技术综述[J]. 发电技术, 2023, 44(4): 431-442. |
[9] | 孔令国, 宫健, 杨士慧, 倪德富, 王士博, 刘闯. DC/DC隔离型制氢电源发展现状与趋势[J]. 发电技术, 2023, 44(4): 443-451. |
[10] | 宋天琦, 马韵婷, 张智慧. 光伏耦合电解水制氢系统作为虚拟电厂资源的运行模式与经济性分析[J]. 发电技术, 2023, 44(4): 465-472. |
[11] | 兰宇, 龙妍, 张哲豪, 阮金港. 可再生能源制氢跨省供应的技术经济可行性研究[J]. 发电技术, 2023, 44(4): 473-483. |
[12] | 李建林, 邵晨曦, 张则栋, 梁忠豪, 曾飞. 氢能产业政策及商业化模式分析[J]. 发电技术, 2023, 44(3): 287-295. |
[13] | 陈逸文, 赵晋斌, 李军舟, 毛玲, 屈克庆, 魏国庆. 电力低碳转型背景下氢储能的挑战与展望[J]. 发电技术, 2023, 44(3): 296-304. |
[14] | 滕越, 赵骞, 袁铁江, 陈国宏. 绿电-氢能-多域应用耦合网络关键技术现状及展望[J]. 发电技术, 2023, 44(3): 318-330. |
[15] | 赵连鹏, 张振扬, 安刚, 杨申音. 混合冷剂氢液化技术研究进展[J]. 发电技术, 2023, 44(3): 331-339. |
阅读次数 | ||||||
全文 |
|
|||||
摘要 |
|
|||||