[1]李敬法,李建立,王玉生,等.氢能储运关键技术研究进展及发展趋势探讨[J].油气储运,2023,42(08):856-871.[doi:10.6047/j.issn.1000-8241.2023.08.002]
 LI Jingfa,LI Jianli,WANG Yusheng,et al.Research progress and development trends of key technologies for hydrogen energy storage and transportation[J].Oil & Gas Storage and Transportation,2023,42(08):856-871.[doi:10.6047/j.issn.1000-8241.2023.08.002]
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氢能储运关键技术研究进展及发展趋势探讨

参考文献/References:

[1] 孟翔宇,陈铭韵,顾阿伦,邬新国,刘滨,周剑,等.“双碳”目标下中国氢能发展战略[J].天然气工业,2022,42(4):156-179. 10.3787/j.issn.1000-0976.2022.04.015. MENG X Y, CHEN M Y, GU A L, WU X G, LIU B, ZHOU J, et al. China’s hydrogen development strategy in the context of double carbon targets[J]. Natural Gas Industry, 2022, 42(4):156-179.
[2] 张庆生,黄雪松.国内外氢能产业政策与技术经济性分析[J].低碳化学与化工,2023,48(2):133-139. 10.3969/j.issn. 1001-9219.2023.02.017. ZHANG Q S, HUANG X S. Analysis of domestic and foreign hydrogen energy industrial policies and technical economy[J].Low-Carbon Chemistry and Chemical Engineering, 2023, 48(2):133-139.
[3] 李敬法,苏越,张衡,宇波.掺氢天然气管道输送研究进展[J].天然气工业,2021,41(4):137-152. 10.3787/j.issn.1000-0976. 2021.04.015. LI J F, SU Y, ZHANG H, YU B. Research progresses on pipeline transportation of hydrogen-blended natural gas[J]. Natural Gas Industry, 2021, 41(4): 137-152.
[4] 邹才能,李建明,张茜,金旭,熊波,余晖迪,等.氢能工业现状、技术进展、挑战及前景[J].天然气工业,2022,42(4):1-20. 10.3787/j.issn.1000-0976.2022.04.001. ZOU C N, LI J M, ZHANG X, JIN X, XIONG B, YU H D, et al. Industrial status, technological progress, challenges and prospects of hydrogen energy[J]. Natural Gas Industry, 2022, 42(4): 1-20.
[5] 丁镠,唐涛,王耀萱,康宁,许鑫.氢储运技术研究进展与发展趋势[J].天然气化工(C1化学与化工),2022,47(2):35-40. 10.3969/j.issn.1001-9219.2022.02.005. DING L, TANG T, WANG Y X, KANG N, XU X. Research progress and development trend of hydrogen storage and transportation technology[J]. Natural Gas Chemical Industry, 2022, 47(2): 35-40.
[6] 曹军文,覃祥富,耿嘎,张文强,于波.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. 10.3969/j.issn.1001-8719.2021.06.026. CAO J W, QIN X F, GENG G, ZHANG W Q, YU B. Current status and prospects of hydrogen storage and transportation technology[J]. Acta Petrolei Sinica (Petroleum Processing Section), 2021, 37(6): 1461-1478.
[7] 刘翠伟,裴业斌,韩辉,周慧,张睿,李玉星,等.氢能产业链及储运技术研究现状与发展趋势[J].油气储运,2022,41(5):498-514. 10.6047/j.issn.1000-8241.2022.05.002. LIU C W, PEI Y B, HAN H, ZHOU H, ZHANG R, LI Y X, et al. Research status and development trend of hydrogen energy industry chain and the storage and transportation technologies[J]. Oil & Gas Storage and Transportation, 2022, 41(5): 498-514.
[8] 蒲亮,余海帅,代明昊,何永琛,孙若凡,严童童.氢的高压与液化储运研究及应用进展[J].科学通报,2022,67(19):2172-2191. 10.1360/TB-2022-0063. PU L, YU H S, DAI M H, HE Y C, SUN R F, YAN T T. Research progress and application of high-pressure hydrogen and liquid hydrogen in storage and transportation[J]. Chinese Science Bulletin, 2022, 67(19): 2172-2191.
[9] 郑津洋.高安全低成本大容量高压储氢[J].浙江大学学报(工学版),2020,54(9):1655-1657. ZHENG J Y. High safety, low cost, large capacity storage of high pressure gaseous hydrogen[J]. Journal of Zhejiang University (Engineering Science), 2020, 54(9): 1655-1657.
[10] 李军,薄柯,黄强华,骆辉,王红霞,赵继瑞.高压氢气储运移动式压力容器发展趋势与挑战[J].太阳能学报,2022,43(3):20-26. 10.19912/j.0254-0096.tynxb.2022-0071. LI J, BO K, HUANG Q H, LUO H, WANG H X, ZHAO J R. Development trend and challenges of high pressure hydrogen transportable pressure vessel[J]. Acta Energiae Solaris Sinica, 2022, 43(3): 20-26.
[11] 郑津洋.氢能高压储运装备与安全技术现状[C].武汉:第十五届全国高等学校过程装备与控制工程专业教学与科研校际交流会,2017:8-9. ZHENG J Y. Current status of high-pressure storage &transportation equipment and safety technology of hydrogen energy[C]. Wuhan: The 15th National Intercollegiate Exchange Conference on Teaching and Research of Process Equipment and Control Engineering, 2017: 8-9.
[12] 胡华为,何青,孟照鑫.加氢站高压储氢容器安全性分析[J].现代化工,2022,42(6):9-15. 10.16606/j.cnki.issn 0253-4320.2022.06.003. HU H W, HE Q, MENG Z X. Analysis on safety of high-pressure hydrogen storage vessel in hydrogen fueling station[J]. Modern Chemical Industry, 2022, 42(6): 9-15.
[13] 杜忠明,郑津洋,戴剑锋,施建峰,花争立,李博,等.我国绿氢供应体系建设思考与建议[J].中国工程科学,2022,24(6):64-71. 10.15302/J-SSCAE-2022.06.005. DU Z M, ZHENG J Y, DAI J F, SHI J F, HUA Z L, LI B, et al. Construction of green-hydrogen supply system in China:reflections and suggestions[J]. Strategic Study of CAE, 2022, 24(6): 64-71.
[14] ACEVES S M, ESPINOSA-LOZA F, LEDESMA-OROZCO E, ROSS T O, WEISBERG A H, BRUNNER T C, et al. High-density automotive hydrogen storage with cryogenic capable pressure vessels[J]. International Journal of Hydrogen Energy, 2010, 35(3): 1219-1226. DOI: 10.1016/j.ijhydene.2009.11.069.
[15] BERSTAD D O, STANG J H, NEKS? P. Large-scale hydrogen liquefier utilising mixed-refrigerant pre-cooling[J]. International Journal of Hydrogen Energy, 2010, 35(10):4512-4523. DOI: 10.1016/j.ijhydene.2010.02.001.
[16] QIU Y N, YANG H, TONG L G, WANG L. Research progress of cryogenic materials for storage and transportation of liquid hydrogen[J]. Metals, 2021, 11(7): 1101. DOI: 10.3390/met11071101.
[17] 扬帆,张超,张博超,计宁宁,丁予晨.大型液氢储罐内罐材料研究与应用进展[J/OL].太阳能学报:1-8[2022-08-22]. https://doi.org/10.19912/j.0254-0096.tynxb.2022-0930. YANG F, ZHANG C, ZHANG B C, JI N N, DING Y C. Research and application progress of inner tank materials for large liquid hydrogen storage tanks[J/OL]. Acta Energiae Solaris Sinica: 1-8[2022-08-22]. https://doi.org/10.19912/j.0254-0096.tynxb.2022-0930.
[18] 妙丛,黄磊,张震.减少液氢容器漏热的关键技术分析[J].中国设备工程,2022(7):210-212. 10.3969/j.issn.1671-0711. 2022.07.116. MIAO C, HUANG L, ZHANG Z. Analysis of key technologies for reducing heat leakage in liquid hydrogen containers[J]. China Plant Engineering, 2022(7): 210-212.
[19] HASTINGS L J, HEDAYAT A, BROWN T M. Analytical modeling and test correlation of variable density multilayer insulation for cryogenic storage: NASA/TM-2004-213175[R]. Hanover: NASA Center for AeroSpace Information, 2004: 1-36.
[20] MARTIN J J, HASTINGS L. Large-scale liquid hydrogen testing of a variable density multilayer insulation with a foam substrate: NASA/TM-2001-211089[R]. Hanover: NASA Center for AeroSpace Information, 2001: 1-76.
[21] ZHENG J P, CHEN L B, WANG J, XI X T, ZHU H L, ZHOU Y, et al. Thermodynamic analysis and comparison of four insulation schemes for liquid hydrogen storage tank[J]. Energy Conversion and Management, 2019, 186: 526-534. DOI:10.1016/j.enconman.2019.02.073.
[22] 何晓冬,朱鸣,陈光奇,黄强华,李晓峰.低温吸附剂的低温低压吸附等温线分布研究[J].中国特种设备安全,2021,37(4):18-23,74. 10.3969/j.issn.1673-257X.2021.04.005. HE X D, ZHU M, CHEN G Q, HUANG Q H, LI X F. Study on isotherm distribution of low temperature and low pressure adsorption of low temperature adsorbent[J]. China Special Equipment Safety, 2021, 37(4): 18-23, 74.
[23] 宋鹏飞,侯建国,穆祥宇,王秀林.液体有机氢载体储氢体系筛选及应用场景分析[J].天然气化工(C1化学与化工),2021, 46(1):1-5,33. 10.3969/j.issn.1001-9219.2021.01.001. SONG P F, HOU J G, MU X Y, WANG X L. Screening and application scenarios of liquid organic hydrogen carrier systems[J]. Natural Gas Chemical Industry, 2021, 46(1): 1-5, 33.
[24] 赵琳,张建星,祝维燕,陈红香,张纪领,程金斌,等.液态有机物储氢技术研究进展[J].化学试剂,2019,41(1):47-53. 10.13822/j.cnki.hxsj.2019006577. ZHAO L, ZHANG J X, ZHU W Y, CHEN H X, ZHANG J L, CHENG J B, et al. Research progress of hydrogen storage technology for liquid organic matter[J]. Chemical Reagents, 2019, 41(1): 47-53.
[25] 董媛,杨明,程寒松.有机液体储氢技术进展及应用前景[C].澳门:第六届国际清洁能源论坛,2017:254-271,435. DONG Y, YANG M, CHENG H S. Progress and application prospect of organic liquid hydrogen storage technologies[C]. Macao: The 6th International Forum for Clean Energy, 2017:254-271, 435.
[26] 张慧敏,田磊,孙云峰,杨文,彭世垚,刘翠伟,等.有机液体储氢研究进展及管道运输的思考[J].油气储运,2023,42(4):375-390. 10.6047/j.issn.1000-8241.2023.04.002. ZHANG H M, TIAN L, SUN Y F, YANG W, PENG S Y, LIU C W, et al. Progress of research on hydrogen storage in organic liquid and thinking about pipeline transportation[J]. Oil & Gas Storage and Transportation, 2023, 42(4): 375-390.
[27] 李佳豪,杨锦,潘伦,钟勇斌,王志敏,王锦生,等.含氮有机液体储放氢催化体系研究进展[J/OL].化工进展:1-26[2023-04-24]. https://doi.org/10.16085/j.issn.1000-6613.2023-0089. LI J H, YANG J, PAN L, ZHONG Y B, WANG Z M, WANG J S, et al. Research progress in catalytic system for hydrogen storage and release from nitrogen-containing liquid organic carriers[J/OL]. Chemical Industry and Engineering Progress: 1-26[2023-04-24]. https://doi.org/10.16085/j.issn.1000-6613.2023-0089.
[28] 朱明原,刘文博,刘杨,齐财,李瑛,李文献,等. 氢能与燃料电池关键科学技术:挑战与前景[J].上海大学学报(自然科学版),2021,27(3):411-443. 10.12066/j.issn.1007-2861. 2300. ZHU M Y, LIU W B, LIU Y, QI C, LI Y, LI W X, et al. Key scientific and technological principles of hydrogen energy and fuel cells: challenges and prospects[J]. Journal of Shanghai University (Natural Science Edition), 2021, 27(3): 411-443.
[29] 刘安鼐,任靖,赵保槐,杨振钰.液相有机氢载体的催化研究与应用[J].北京化工大学学报(自然科学版),2021,48(4):1-18. 10.13543/j.bhxbzr.2021.04.001. LIU A N, REN J, ZHAO B H, YANG Z Y. Catalysis and applications of liquid organic hydrogen carriers[J]. Journal of Beijing University of Chemical Technology (Natural Science Edition), 2021, 48(4): 1-18.
[30] 张晓飞,蒋利军,叶建华,武媛方,郭秀梅,李志念,等.固态储氢技术的研究进展[J].太阳能学报,2022,43(6):345-354. 10.19912/j.0254-0096.tynxb.2022-0536. ZHANG X F, JIANG L J, YE J H, WU Y F, GUO X M, LI Z N, et al. Research progress of solid-state hydrogen storage technology[J]. Acta Energiae Solaris Sinica, 2022, 43(6): 345-354.
[31] SREERAJ R, AADHITHIYAN A K, ANBARASU S. Comparison, advancement, and performance evaluation of heat exchanger assembly in solid-state hydrogen storage device[J]. Renewable Energy, 2022, 198: 667-678. DOI: 10.1016/j.renene.2022.08.051.
[32] 刘木子,史柯柯,赵强,李晋平,刘光.固体储氢材料的研究进展[J/OL]. 化工进展:1-27[2023-04-19]. https://doi.org/10. 16085/j.issn.1000-6613.2022-1906. LIU M Z, SHI K K, ZHAO Q, LI J P, LIU G. Research progress of solid hydrogen storage materials[J/OL]. Chemical Industry and Engineering Progress: 1-27[2023-04-19]. https://doi.org/10.16085/j.issn.1000-6613.2022-1906.
[33] MA J C, WANG Y Q, SHI S F, YANG F S, BAO Z W, ZHANG Z X. Optimization of heat transfer device and analysis of heat & mass transfer on the finned multi-tubular metal hydride tank[J]. International Journal of Hydrogen Energy, 2014, 39(25): 13583-13595. DOI: 10.1016/j.ijhydene.2014.03.016.
[34] LI H D, WANG Y Q, HE C, CHEN X Y, ZHANG Q Y, ZHENG L, et al. Design and performance simulation of the spiral mini-channel reactor during H2 absorption[J]. International Journal of Hydrogen Energy, 2015, 40(39):13490-13505. DOI: 10.1016/j.ijhydene.2015.08.066.
[35] WECKERLE C, B?RGER I, LINDER M. Novel reactor design for metal hydride cooling systems[J]. International Journal of Hydrogen Energy, 2017, 42(12): 8063-8074. DOI: 10.1016/j.ijhydene.2017.01.066.
[36] BAI X S, YANG W W, TANG X Y, YANG F S, JIAO Y H, YANG Y. Optimization of tree-shaped fin structures towards enhanced absorption performance of metal hydride hydrogen storage device: a numerical study[J]. Energy, 2021, 220: 119738. DOI: 10.1016/j.energy.2020.119738.
[37] 李珊珊,张蓝,王玉琪,王迪,李海娣,杨福胜,等.椭圆螺旋微管束反应器参数优化与性能评价[J].工程科学学报,2019, 41(5):672-681. 10.13374/j.issn2095-9389.2019.05.014. LI S S, ZHANG L, WANG Y Q, WANG D, LI H D, YANG F S, et al. Parameter optimization and performance evaluation of elliptical spiral mini-tube bundle reactor[J]. Chinese Journal of Engineering, 2019, 41(5): 672-681.
[38] 刘梦,陆林,邱景义,陈俊红,赵鹏程.碳材料在金属化合物固态储氢中的应用[J].电源技术,2021,45(11):1510-1513. 10.3969/j.issn.1002-087X.2021.11.032. LIU M, LU L, QIU J Y, CHEN J H, ZHAO P C. Application of carbon in hydrogen storage performances of hydrides[J]. Chinese Journal of Power Sources, 2021, 45(11): 1510-1513.
[39] YE J H, LI Z N, ZHANG L Y, WANG S M, JIANG L J. Measurement and the improvement of effective thermal conductivity for a metal hydride bed-a review[J]. RSC Advances, 2022, 12(39): 25722-25743. DOI: 10.1039/d2ra04627j.
[40] 徐双庆,范志超,刘孝亮.车载高压-固态复合储氢系统储氢密度的数值分析[J].压力容器,2020,37(9):24-29. 10.3969/j.issn.1001-4837.2020.09.005. XU S Q, FAN Z C, LIU X L. Numerical analysis of hydrogen storage density for a vehicle high pressure-metal hydride hybrid hydrogen storage system[J]. Pressure Vessel Technology, 2020, 37(9): 24-29.
[41] CAO Z J, OUYANG L Z, WANG H, LIU J W, SUN D L, ZHANG Q G, et al. Advanced high-pressure metal hydride fabricated via Ti-Cr-Mn alloys for hybrid tank[J]. International Journal of Hydrogen Energy, 2015, 40(6): 2717-2728. DOI:10.1016/j.ijhydene.2014.12.093.
[42] TAKEICHI N, SENOH H, YOKOTA T, TSURUTA H, HAMADA K, TAKESHITA H T, et al. “Hybrid hydrogen storage vessel”, a novel high-pressure hydrogen storage vessel combined with hydrogen storage material[J]. International Journal of Hydrogen Energy, 2003, 28(10): 1121-1129. DOI:10.1016/S0360-3199(02)00216-1.
[43] 张志芸,张国强,刘艳秋,康启平.车载储氢技术研究现状及发展方向[J].油气储运,2018,37(11):1207-1212. 10.6047/j. issn.1000-8241.2018.11.002. ZHANG Z Y, ZHANG G Q, LIU Y Q, KANG Q P. Research status and development direction of on-board hydrogen storage technologies[J]. Oil & Gas Storage and Transportation, 2018, 37(11): 1207-1212.
[44] 蒋骏,魏化中,丁克勤. CNG长管拖车关键部位泄漏失效分析[J].化学工程与装备,2017(11):204-206. 10.19566/j.cnki.cn35-1285/tq.2017.11.071. JIANG J, WEI H Z, DING K Q. Failure analysis of leakage in key parts of CNG tube trailer[J]. Chemical Engineering &Equipment, 2017(11): 204-206.
[45] 李大星,魏化中,陶芳泽,吴斌,高宏.基于有限元的长管拖车气瓶瓶肩结构分析[J].武汉工程大学学报,2016,38(6):605-610. 10.3969/j.issn.1674-2869.2016.06.017. LI D X, WEI H Z, TAO F Z, WU B, GAO H. Analysis of shoulders structure for tube trailer gas cylinder based on ANSYS[J]. Journal of Wuhan Institute of Technology, 2016, 38(6): 605-610.
[46] 李桐,金明哲,骆辉,张君鹏,李邦宪.我国长管拖车技术发展综述[J].中国特种设备安全,2020,36(12):31-37. 10.3969/j.issn.1673-257X.2020.12.006. LI T, JIN M Z, LUO H, ZHANG J P, LI B X. A review of the technical development of tube trailers in China[J]. China Special Equipment Safety, 2020, 36(12): 31-37.
[47] 刘再斌,薄柯,惠虎,韩文超,任吉超.长管拖车安全防护系统功能安全研究[J].中国仪器仪表,2021(2):55-57. 10.3969/j.issn.1005-2852.2021.02.011. LIU Z B, BO K, HUI H, HAN W C, REN J C. Research on the functional safety of the safety protection system of tube trailer[J]. China Instrumentation, 2021(2): 55-57.
[48] 骆辉,薄柯,李邦宪,张君鹏,黄强华.高纯气体长管拖车结构特点及定期检验问题[J].中国特种设备安全,2016,32(3):35-39. 10.3969/j.issn.1673-257X.2016.03.008. LUO H, BO K, LI B X, ZHANG J P, HUANG Q H. Structure features and periodic inspection problem of high purity gases tube trailer[J]. China Special Equipment Safety, 2016, 32(3):35-39.
[49] 董红磊,李邦宪,薄柯,陈祖志.我国长管拖车安全技术发展综述[J].中国特种设备安全,2014,30(8):1-5. 10.3969/j.issn.1006-3897.2014.08.001.DONG H L, LI B X, BO K, CHEN Z Z. Review of the development of tube trailer cylinder on safety technology[J]. China Special Equipment Safety, 2014, 30(8): 1-5.
[50] 郑津洋,马凯,叶盛,顾超华,花争立,彭文珠.我国氢能高压储运设备发展现状及挑战[J].压力容器,2022,39(3):1-8. 10.3969/j.issn.1001-4837.2022.03.001. ZHENG J Y, MA K, YE S, GU C H, HUA Z L, PENG W Z. Development status and challenges of equipment for storage and transportation of high-pressure gaseous hydrogen in China[J]. Pressure Vessel Technology, 2022, 39(3): 1-8.
[51] 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. 10.6047/j.issn.1000-8241.2023.01.001. 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.
[52] 尚娟,鲁仰辉,郑津洋,孙晨,花争立,于文涛,等.掺氢天然气管道输送研究进展和挑战[J].化工进展,2021,40(10):5499-5505. 10.16085/j.issn.1000-6613.2020-2140. SHANG J, LU Y H, ZHENG J Y, SUN C, HUA Z L, YU W T, et al. Research status-in-situ and key challenges in pipeline transportation of hydrogen-natural gas mixtures[J]. Chemical Industry and Engineering Progress, 2021, 40(10): 5499-5505.
[53] 陈俊文,尚谨,刘玉杰,刘力升,汤晓勇,朱红钧,等.混氢天然气管道安全设计要点探讨[J].天然气与石油,2020,38(6):8-13. 10.3969/j.issn.1006-5539.2020.06.002. CHEN J W, SHANG J, LIU Y J, LIU L S, TANG X Y, ZHU H J, et al. Discussion on the safety in design of hydrogen blended natural gas pipelines[J]. Natural Gas and Oil, 2020, 38(6): 8-13.
[54] 谢萍,伍奕,李长俊,贾文龙,张皓,吴瑕.混氢天然气管道输送技术研究进展[J].油气储运,2021,40(4):361-370. 10.6047/j.issn.1000-8241.2021.04.001. XIE P, WU Y, LI C J, JIA W L, ZHANG H, WU X. Research progress on pipeline transportation technology of hydrogen-mixed natural gas[J]. Oil & Gas Storage and Transportation, 2021, 40(4): 361-370.
[55] ZHANG H, LI J F, SU Y, WANG P, YU B. Effects of hydrogen blending on hydraulic and thermal characteristics of natural gas pipeline and pipe network[J]. Oil & Gas Science and Technology–Rev. IFP Energies Nouvelles, 2021, 76: 70. DOI:10.2516/ogst/2021052.
[56] 张立业,邓海涛,孙桂军,宁晨,孙钢,刘伟,等.天然气随动掺氢技术研究进展[J].力学与实践,2022,44(4):755-766. 10.6052/1000-0879-22-056. ZHANG L Y, DENG H T, SUN G J, NING C, SUN G, LIU W, et al. Research progress of natural gas follow-up hydrogen mixing technology[J]. Mechanics in Engineering, 2022, 44(4):755-766.
[57] 闫喻婷.氢气储运方式的经济性对比研究[D].武汉:华中科技大学,2021. YAN Y T. Comparative analysis of the economics of hydrogen storage and transportation[D]. Wuhan: Huazhong University of Science & Technology, 2021.
[58] REDDI K, ELGOWAINY A, RUSTAGI N, GUPTA E. Techno-economic analysis of conventional and advanced high-pressure tube trailer configurations for compressed hydrogen gas transportation and refueling[J]. International Journal of Hydrogen Energy, 2018, 43(9): 4428-4438. DOI: 10.1016/j.ijhydene.2018.01.049.
[59] LIU B, LIU S X, GUO S S, ZHANG S X. Economic study of a large-scale renewable hydrogen application utilizing surplus renewable energy and natural gas pipeline transportation in China[J]. International Journal of Hydrogen Energy, 2020, 45(3): 1385-1398. DOI: 10.1016/j.ijhydene.2019.11.056.
[60] RAAB M, MAIER S, DIETRICH R U. Comparative techno-economic assessment of a large-scale hydrogen transport via liquid transport media[J]. International Journal of Hydrogen Energy, 2021, 46(21): 11956-11968. DOI: 10.1016/j.ijhydene.2020.12.213.
[61] MAKEPEACE J W, HE T, WEIDENTHALER C, JENSEN T R, CHANG F, VEGGE T, et al. Reversible ammonia-based and liquid organic hydrogen carriers for high-density hydrogen storage: recent progress[J]. International Journal of Hydrogen Energy, 2019, 44(15): 7746-7767. DOI: 10.1016/j.ijhydene.2019.01.144.
[62] 常乐,倪维斗,李政,郑重.氢能供应链中最佳运氢方式的选择[J].清华大学学报(自然科学版),2009,49(2):257-260. 10.3321/j.issn:1000-0054.2009.02.025. CHANG L, NI W D, LI Z, ZHENG C. Selection of best hydrogen transport mode in the hydrogen supply chain[J]. Journal of Tsinghua University (Science and Technology), 2009, 49(2): 257-260.
[63] YANG C, OGDEN J. Determining the lowest-cost hydrogen delivery mode[J]. International Journal of Hydrogen Energy, 2007, 32(2): 268-286. DOI: 10.1016/j.ijhydene.2006.05.009.
[64] SHORT W, PACKEY D J, HOLT T. A manual for the economic evaluation of energy efficiency and renewable energy technologies: NREL/TP-462-5173[R]. Golden: National Renewable Energy Laboratory, 1995: 1.
[65] SHERIF S A, BARBIR F, VEZIROGLU T N. Towards a hydrogen economy[J]. The Electricity Journal, 2005, 18(6): 62-76. DOI: 10.1016/j.tej.2005.06.003.
[66] 马建新,刘绍军,周伟,潘相敏.加氢站氢气运输方案比选[J].同济大学学报(自然科学版),2008,36(5):615-619. 10.3321/j.issn:0253-374X.2008.05.009. MA J X, LIU S J, ZHOU W, PAN X M. Comparison of hydrogen transportation methods for hydrogen refueling station[J]. Journal of Tongji University (Natural Science), 2008, 36(5): 615-619.
[67] DUTTA S. A review on production, storage of hydrogen and its utilization as an energy resource[J]. Journal of Industrial and Engineering Chemistry, 2014, 20(4): 1148-1156. DOI: 10.1016/j.jiec.2013.07.037.
[68] XU X H, XU B, DONG J, LIU X T. Near-term analysis of a roll-out strategy to introduce fuel cell vehicles and hydrogen stations in Shenzhen China[J]. Applied Energy, 2017, 196:229-237. DOI: 10.1016/j.apenergy.2016.11.048.
[69] 游双矫.中石油为雄安新区供氢方式优化的研究[D].北京:中国石油大学(北京),2020. YOU S J. Research on the optimization of hydrogen supplies for Xiongan new area by CNPC[D]. Beijing: China University of Petroleum (Beijing), 2020.
[70] 单彤文,宋鹏飞,李又武,侯建国,王秀林,张丹.制氢、储运和加注全产业链氢气成本分析[J].天然气化工(C1化学与化工), 2020,45(1):85-90,96. 10.3969/j.issn.1001-9219.2020.01.018. SHAN T W, SONG P F, LI Y W, HOU J G, WANG X L, ZHANG D. Cost analysis of hydrogen from the perspective of the whole industrial chain of production, storage, transportation and refueling[J]. Natural Gas Chemical Industry, 2020, 45(1):85-90, 96.
[71] 赵罡.基于MILP模型的氢气供应链路径优化[J].天然气工业, 2022,42(7):118-124. 10.3787/j.issn.1000-0976.2022.07.013. ZHAO G. Path optimization of hydrogen supply chain based on the MILP model[J]. Natural Gas Industry, 2022, 42(7): 118-124.
[72] LI L, MANIER H, MANIER M A. Integrated optimization model for hydrogen supply chain network design and hydrogen fueling station planning[J]. Computers &Chemical Engineering, 2020, 134: 106683. DOI: 10.1016/j.compchemeng.2019.106683.
[73] G?LER M G, GE?ICI E, ERDO AN A. Design of a future hydrogen supply chain: a multi period model for Turkey[J]. International Journal of Hydrogen Energy, 2021, 46(30):16279-16298. DOI: 10.1016/j.ijhydene.2020.09.018.
[74] ROBLES J O, AZZARO-PANTEL C, GARCIA G M, LASSERRE A A. Social cost-benefit assessment as a post-optimal analysis for hydrogen supply chain design and deployment: application to Occitania (France)[J]. Sustainable Production and Consumption, 2020, 24: 105-120. DOI: 10.1016/j.spc.2020.06.010.
[75] WICKHAM D, HAWKES A, JALIL-VEGA F. Hydrogen supply chain optimisation for the transport sector-focus on hydrogen purity and purification requirements[J]. Applied Energy, 2022, 305: 117740. DOI: 10.1016/j.apenergy. 2021.117740.
[76] RATNAKAR R R, GUPTA N, ZHANG K, VAN DOORNE C, FESMIRE J, DINDORUK B, et al. Hydrogen supply chain and challenges in large-scale LH2 storage and transportation[J]. International Journal of Hydrogen Energy, 2021, 46(47):24149-24168. DOI: 10.1016/j.ijhydene.2021.05.025.
[77] 黄宣旭,练继建,沈威,马超.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. 10.16516/j.gedi. issn2095-8676.2020.02.001. HUANG X X, LIAN J J, SHEN W, MA C. Economic analysis of China’s large-scale hydrogen energy supply chain[J]. Southern Energy Construction, 2020, 7(2): 1-13.
[78] 张振扬,解辉.氢能利用-液氢的制、储、运技术现状及分析[J/OL]. 可再生能源:1-8[2022-07-26]. https://doi.org/10. 13941/j.cnki.21-1469/tk.20220726.001. ZHANG Z Y, XIE H. Hydrogen utilization-status quo and analysis of liquid hydrogen production, storage and transportation technology[J/OL]. Renewable Energy Resources: 1-8[2022-07-26]. https://doi.org/10.13941/j.cnki. 21-1469/tk.20220726.001.
[79] 许未晴,鲁仰辉,孙晨,贾冠伟,李梦雅,雷鸣宇,等.天然气掺氢输送系统氢脆研究进展[J].油气储运,2022,41(10):1130-1140. 10.6047/j.issn.1000-8241.2022.10.002. XU W Q, LU Y H, SUN C, JIA G W, LI M Y, LEI M Y, et al. Research progress on hydrogen embrittlement in hydrogen-blended natural gas transportation system[J]. Oil & Gas Storage and Transportation, 2022, 41(10): 1130-1140.
[80] 刘翠伟,崔兆雪,张家轩,裴业斌,李璐伶,杨宏超,等.掺氢天然气管道的分层现象[J].中国石油大学学报(自然科学版), 2022,46(5):153-161. LIU C W, CUI Z X, ZHANG J X, PEI Y B, LI L L, YANG H C, et al. Stratification in pipelines with hydrogen into natural gases[J]. Journal of China University of Petroleum (Edition of Natural Science), 2022, 46(5):153-161.

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备注/Memo

李敬法,男,1990年生,副研究员,2017年博士毕业于中国石油大学(北京)油气储运工程专业,现主要从事氢能储存与输送技术方面的研究工作。地址:北京市大兴区清源北路19号,102617。电话:18810114816。Email:lijingfa@bipt.edu.cn
通信作者:宇波,男,1972年生,教授,博士生导师,1999年博士毕业于西安交通大学工程热物理专业,现主要从事流动与传热数值计算方法、油气/氢能输送技术等方面的研究工作。地址:北京市大兴区清源北路19号,102617。电话:010-81292805。Email:yubobox@vip.163.com
基金项目:国家重点研发计划“氢能技术”重点专项“中低压纯氢与掺氢燃气管输工艺与掺氢设备研发”,2021YFB4001602;北京市教育委员会资金资助“高质量应用型‘人工智能’应用技术实验实训基地建设”,22019821001。
(收稿日期:2023-06-26;修回日期:2023-07-08;编辑:张雪琴)

更新日期/Last Update: 2023-08-25