Acta Petrolei Sinica ›› 2026, Vol. 47 ›› Issue (1): 241-256.DOI: 10.7623/syxb202601015
• UNDERGROUND ENERGY STORAGE • Previous Articles
Li Shixiang1, Wang Dong2, Wang Ziheng1, Zhang Chaoyang2, Pan Songqi1, Yang Zhi2,3, Guan Chunxiao1, Tang Boning1, Liu Hanlin3, Wu Songtao3, Huang Mingzhi4, Long Yin1, Xiao Gong1
Received:2025-04-07
Revised:2025-06-03
Published:2026-02-12
李士祥1, 王东2, 王子恒1, 张朝阳2, 潘松圻1, 杨智2,3, 关春晓1, 唐博宁1, 刘翰林3, 吴松涛3, 黄铭志4, 龙吟1, 肖巩1
通讯作者:
王子恒,男,1995年7月生,2023年获曼彻斯特大学博士学位,现为中石油深圳新能源研究院有限公司助理研究员,主要从事热能与地下储能相关研究工作。Email:zihengwang.187@outlook.com
作者简介:王子恒,男,1995年7月生,2023年获曼彻斯特大学博士学位,现为中石油深圳新能源研究院有限公司助理研究员,主要从事热能与地下储能相关研究工作。Email:zihengwang.187@outlook.com
基金资助:CLC Number:
Li Shixiang, Wang Dong, Wang Ziheng, Zhang Chaoyang, Pan Songqi, Yang Zhi, Guan Chunxiao, Tang Boning, Liu Hanlin, Wu Songtao, Huang Mingzhi, Long Yin, Xiao Gong. Strategic status and role of deep underground space development and utilization in advancing new energy[J]. Acta Petrolei Sinica, 2026, 47(1): 241-256.
李士祥, 王东, 王子恒, 张朝阳, 潘松圻, 杨智, 关春晓, 唐博宁, 刘翰林, 吴松涛, 黄铭志, 龙吟, 肖巩. 深部地下空间开发利用在新能源发展中的地位与作用[J]. 石油学报, 2026, 47(1): 241-256.
Add to citation manager EndNote|Ris|BibTeX
| [1] 邹才能,李士祥,熊波,等. 新质生产力下"能源绿色转型"革命及意义——兼论"能源三角"理论认识[J].石油勘探与开发,2024,51(6):1395-1408. ZOU Caineng,LI Shixiang,XIONG Bo,et al.Revolution and significance of "Green Energy Transition" in the context of new quality productive forces:a discussion on theoretical understanding of "Energy Triangle"[J].Petroleum Exploration and Development,2024,51(6):1395-1408. [2] 邹才能,马锋,潘松圻,等.世界能源转型革命与绿色智慧能源体系内涵及路径[J].石油勘探与开发,2023,50(3):633-647. ZOU Caineng,MA Feng,PAN Songqi,et al.Global energy transition revolution and the connotation and pathway of the green and intelligent energy system[J].Petroleum Exploration and Development,2023,50(3):633-647. [3] Fan F.China sets a new record for onshore ultra-deep well drilling at 2,202 meters a day[EB/OL].(2024-08-29)[2025-8-20].https://english.ts.cn/system/2024/08/28/036925261.shtml. [4] 黄飞宇,莫康荣,张帅杰,等.精细控压钻井技术在南海高温高压井的应用[J].石化技术,2024,31(9):177-178. HUANG Feiyu,MO Kangrong,ZHANG Shuaijie,et al.Application of fine pressure control drilling technology in high temperature and high pressure wells in the South China Sea[J].Petrochemical Industry Technology,2024,31(9):177-178. [5] 罗玮玮,王飞.CO2强化驱油与封存(CCUS-EOR)技术专利分析[J].中国科技信息,2025(1):14-17. LUO Weiwei,WANG Fei.Patent analysis of CO2 enhanced displacement and storage (CCUS-EOR)technology[J].China Science and Technology Information,2025(1):14-17. [6] 邹才能,杨智,朱如凯,等.中国非常规油气勘探开发与理论技术进展[J].地质学报,2015,89(6):979-1007. Progress in China’s unconventional oil & gas exploration and development and theoretical technologies[J].Acta Geologica Sinica,2015,89(6):979-1007. [7] LI Yinping,MA Hongling,SHI Xilin,et al.Challenges and countermeasures in salt cavern underground storage in China—from "Jintan mode" to "XX mode"[J].Rock and Soil Mechanics,2024,45(10):2859-2869. [8] 丁怡婷.挺进地下万米,与五亿多年前的岩石相遇[N].人民日报,2025-02-21(2). DING Yiting.Advancing 10,000 meters underground,it meets rocks more than 500 million years ago[N].People’s Daily,2025-02-21(2). [9] 赵东辉.海上超深复杂井固井技术在东海的应用[J].化工管理,2023(15):165-168. ZHAO Donghui.Application of cementing technology for offshore ultra deep complex wells in the East China Sea[J].Chemical Engineering Management,2023(15):165-168. [10] 李俊超.大庆油田生产站场数智化建设实践[J].油气田地面工程,2024,43(11):86-91. LI Junchao.Practice of intelligent construction of production stations in daqing oilfield[J].Oil-Gas Field Surface Engineering,2024,43(11):86-91. [11] PTAK M,PODOLSKA P,PODOLSKI R.Challenges for science:the exploitation of deep deposits[J].E3S Web of Conferences,2018,(71):00008. [12] 王驹,陈亮,苏锐,等.中国高放废物地质处置北山地下实验室重大进展[J].世界核地质科学,2023,40(增刊1):473-490. WANG Ju,CHEN Liang,SU Rui,et al.Beishan underground research laboratory for geological disposal of high level radioactive waste in China-update 2023[J].World Nuclear Geoscience,2023,40(S1):473-490. [13] 刘小慧,刘伯英.加拿大萨德伯里地下实验室[J].建筑,2017(5) :54-56. LIU Xiaohui,LIU Boying.SNOLAB underground laboratory,Canada[J].Construction and Architecture,2017(5):54-56. [14] Energy Institute.Statistical review of world energy 2024[R/OL].[2025-08-18].https://www.bpb.de/system/files/dokument_pdf/Statistical _Review_of_World_Energy_2024.pdf [15] 邹才能,熊波,李士祥,等.碳中和背景下世界能源转型与中国式现代化能源革命[J].石油科技论坛,2024,43(1):1-17. ZOU Caineng,XIONG Bo,LI Shixiang,et al.World energy transformation and China’s modern energy revolution under carbon neutrality background[J].Petroleum Science and Technology Forum,2024,43(1):1-17. [16] DOMRA KANA J,DJONGYANG N,RAÏDANDI D,et al.A review of geophysical methods for geothermal exploration[J].Renewable and Sustainable Energy Reviews,2015,44:87-95. [17] MUFFLER P,CATALDI R.Methods for regional assessment of geothermal resources[J].Geothermics,1978,7(2/4):53-89. [18] NIAN Yongle,CHENG Wenlong.Evaluation of geothermal heating from abandoned oil wells[J].Energy,2018,142:592-607. [19] LU Chuan,LIN Wenjing,GAN Haonan,et al.Occurrence types and genesis models of hot dry rock resources in China[J].Environmental Earth Sciences,2017,76(19):646. [20] U.S.Energy Information Administration.U.S.energy facts explained[EB/OL].(2024-07-15)[2025-08-18].https://www.eia.gov/energyexplained/us-energy-facts/. [21] JELLO J,BASER T.Utilization of existing hydrocarbon wells for geothermal system development:a review[J].Applied Energy, 2023,348:121456. [22] 王社教,陈情来,闫家泓,等.地热能产业与技术发展趋势及对石油公司的建议[J].石油科技论坛,2020,39(3):9-16. WANG Shejiao,CHEN Qinglai,YAN Jiahong,et al.Development trend for geothermal energy industry and technology and suggestions on petroleum companies[J].Petroleum Science and Technology Forum,2020,39(3):9-16. [23] WANG Kai,YUAN Bin,JI Guomin,et al.A comprehensive review of geothermal energy extraction and utilization in oilfields[J].Journal of Petroleum Science and Engineering,2018,168:465-477. [24] BU Xianbiao,MA Weibin,LI Huashan.Geothermal energy production utilizing abandoned oil and gas wells[J].Renewable Energy,2012,41:80-85. [25] SHARMIN T,KHAN N R,AKRAM M S,et al.A state-of-the-art review on geothermal energy extraction,utilization,and improvement strategies:conventional,hybridized,and enhanced geothermal systems[J].International Journal of Thermofluids,2023,18:100323. [26] HOCHSTEIN M P.Assessment and modelling of geothermal reservoirs (small utilization schemes)[J].Geothermics,1988,17(1):15-49. [27] 国家能源局.国家能源局关于印发加快油气勘探开发与新能源融合发展行动方案(2023-2025年)的通知[EB/OL].(2023-02-27)[2025-08-04].https://zfxxgk.nea.gov.cn/2023-02/27/c_1310704758.htm. National Energy Administration.Notice of the National Energy Administration on issuing the action plan for accelerating the integration of oil and gas exploration and development with new energy (2023-2025)[EB/OL]..(2023-02-27)[2025-08-04].https://zfxxgk.nea.gov.cn/2023-02/27/c_1310704758.htm. [28] 姜光政,高堋,饶松,等.中国大陆地区大地热流数据汇编(第四版)[J].地球物理学报,2016,59(8):2892-2910. JIANG Guangzheng,GAO Peng,RAO Song,et al.Compilation of heat flow data in the continental area of China (4th edition)[J].Chinese Journal of Geophysics,2016,59(8):2892-2910. [29] LI Kewen,BIAN Huiyuan,LIU Changwei,et al.Comparison of geothermal with solar and wind power generation systems[J].Renewable and Sustainable Energy Reviews,2015,42:1464-1474. [30] 熊波,许浩,唐淑玲,等.内蒙古中部干热岩地热资源成因机制研究[J].煤田地质与勘探,2024,52(1):36-45. XIONG Bo,XU Hao,TANG Shuling,et al.Genetic mechanisms of hot dry rock geothermal resources in central Inner Mongolia[J].Coal Geology & Exploration,2024,52(1):36-45. [31] PRINZHOFER A,TAHARA CISSÉ C S,DIALLO A B.Discovery of a large accumulation of natural hydrogen in Bourakebougou (Mali)[J].International Journal of Hydrogen Energy,2018,43(42):19315-19326. [32] GUÉLARD J,BEAUMONT V,ROUCHON V,et al.Natural H2 in Kansas:deep or shallow origin?[J].Geochemistry,Geophysics,Geosystems, 2017,18(5):1841-1865. [33] LOLLAR B S,LACRAMPE-COULOUME G,VOGLESONGER K,et al.Isotopic signatures of CH4 and higher hydrocarbon gases from Precambrian Shield sites:a model for abiogenic polymerization of hydrocarbons[J].Geochimica et Cosmochimica Acta,2008,72(19):4778-4795. [34] NIVIN V A,PUKHA V V,LOVCHIKOV A V,et al.Changes in the molecular hydrogen concentration in an underground mine (Lovozero rare-metal deposit,Kola Peninsula)[J].Doklady Earth Sciences,2016,471(2):1261-1264. [35] NIVIN V A.Free hydrogen-hydrocarbon gases from the Lovozero loparite deposit (Kola Peninsula,NW Russia)[J].Applied Geochemistry,2016,74:44-55. [36] PRINZHOFER A,MORETTI I,FRANÇOLIN J,et al.Natural hydrogen continuous emission from sedimentary basins:the example of a Brazilian H2-emitting structure[J].International Journal of Hydrogen Energy,2019,44(12):5676-5685. [37] CHARLOU J L,DONVAL J P,FOUQUET Y,et al.Geochemistry of high H2 and CH4 vent fluids issuing from ultramafic rocks at the Rainbow hydrothermal field (36°14'N,MAR)[J].Chemical Geology,2002,191(4):345-359. [38] MARCAILLOU C,MUÑOZ M,VIDAL O,et al.Mineralogical evidence for H2 degassing during serpentinization at 300℃/300bar[J].Earth and Planetary Science Letters,2011,303(3/4):281-290. [39] WELHAN J A,CRAIG H.Methane and hydrogen in East Pacific Rise hydrothermal fluids[J].Geophysical Research Letters,1979,6(11):829-831. [40] NEAL C,STANGER G.Hydrogen generation from mantle source rocks in Oman[J].Earth and Planetary Science Letters,1983,66: 315-320. [41] ABRAJANO T A,STURCHIO N C,BOHLKE J K,et al.Methane-hydrogen gas seeps,Zambales ophiolite,Philippines:deep or shallow origin?[J].Chemical Geology,1988,71(1/3):211-222. [42] ABRAJANO T A,STURCHIO N C,KENNEDY B M,et al.Geochemistry of reduced gas related to serpentinization of the Zambales ophiolite,Philippines[J].Applied Geochemistry,1990,5(5/6):625-630. [43] DEVILLE E,PRINZHOFER A.The origin of N2-H2-CH4-rich natural gas seepages in ophiolitic context:a major and noble gases study of fluid seepages in New Caledonia[J].Chemical Geology,2016,440:139-147. [44] LARIN N,ZGONNIK V,RODINA S,et al.Natural molecular hydrogen seepage associated with surficial,rounded depressions on the European craton in Russia[J].Natural Resources Research,2015,24(3):369-383. [45] SUGISAKI R,IDO M,TAKEDA H,et al.Origin of hydrogen and carbon dioxide in fault gases and its relation to fault activity[J].The Journal of Geology,1983,91(3):239-258. [46] SATAKE H,OHASHI M,HAYASHI Y.Discharge of H2 from the Atotsugawa and Ushikubi faults,Japan,and its relation to earthquakes[J].Pure and Applied Geophysics,1984,122(2):185-193. [47] FIRSTOV P P,SHIROKOV V A.Dynamics of molecular hydrogen and its relation to deformational processes at the Petropavlovsk-Kamchatskii geodynamic test site:evidence from observations in 1999-2003[J].Geochemistry International,2005,43(11):1056-1064. [48] SATO M,SUTTON A J,MCGEE K A,et al.Monitoring of hydrogen along the San Andreas and Calaveras faults in central California in 1980-1984[J].Journal of Geophysical Research:Solid Earth,1986,91(B12):12315-12326. [49] 窦立荣,刘化清,李博,等.全球天然氢气勘探开发利用进展及中国的勘探前景[J].岩性油气藏,2024,36(2):1-14. DOU Lirong,LIU Huaqing,LI Bo,et al.Global natural hydrogen exploration and development situation and prospects in China[J].Lithologic Reservoirs,2024,36(2):1-14. [50] BACHAUD P,MEILLER C,BROSSE E,et al.Modeling of hydrogen genesis in ophiolite massif[J].Procedia Earth and Planetary Science,2017,17:265-268. [51] 邹才能,李士祥,熊波,等.中国建设"能源强国"的内涵、路径与意义[J].石油勘探与开发,2025,52(2):463-477. ZOU Caineng,LI Shixiang,XIONG Bo,et al.Connotation,pathways,and significance of building China into an "energy powerhouse"[J].Petrol eum Exploration and Development,2025,52(2):463-477. [52] 李季,黄恩和,范仁东,等.压缩空气储能技术研究现状与展望[J].汽轮机技术,2021,63(2):86-89. LI Ji,HUANG Enhe,FAN Rendong,et al.Research status and development prospects of compressed air energy storage technology[J].Turbine Technology,2021,63(2):86-89. [53] 万明忠,纪文栋,商浩亮,等.压缩空气储能地下盐穴物探关键问题及处理技术[J].南方能源建设,2023,10(2):26-31. WAN Mingzhong,JI Wendong,SHANG Haoliang,et al.Key problems and techniques of geophysical exploration in underground salt cavern for compressed air energy storage[J].Southern Energy Construction,2023,10(2):26-31. [54] 刘笑驰,梅生伟,丁若晨,等.压缩空气储能工程现状、发展趋势及应用展望[J].电力自动化设备,2023,43(10):38-47. LIU Xiaochi,MEI Shengwei,DING Ruochen,et al.Current situation,development trend and application prospect of compressed air energy storage engineering projects[J].Electric Power Automation Equipment,2023,43(10):38-47. [55] 余耀,孙华,许俊斌,等.压缩空气储能技术综述[J].装备机械,2013(1):68-74. YU Yao,SUN Hua,XU Junbin,et al.Overview of compressed air energy storage technology[J].The Magazine on Equipment Machinery,2013(1):68-74. [56] 郭祚刚,马溪原,雷金勇,等.压缩空气储能示范进展及商业应用场景综述[J].南方能源建设,2019,6(3):17-26. GUO Zuogang,MA Xiyuan,LEI Jinyong,et al.Review on demonstration progress and commercial application scenarios of compressed air energy storage system[J].Southern Energy Construction,2019,6(3):17-26. [57] 张文,王龙轩,丛晓明,等.新型压缩空气储能及其技术发展[J].科学技术与工程,2023,23(36):15335-15347. ZHANG Wen,WANG Longxuan,CONG Xiaoming,et al.New type of compressed air energy storage and its technological development[J].Science Technology and Engineering,2023,23(36):15335-15347. [58] 黄宽,张万益,王丰翔,等.地下空间储能国内外发展现状及调查建议[J].中国地质,2024,51(1):105-117. HUANG Kuan,ZHANG Wanyi,WANG Fengxiang,et al.Development status of underground space energy storage at home and abroad and geological survey suggestions[J].Geology in China,2024,51(1):105-117. [59] 孙晓霞,桂中华,高梓玉,等.压缩空气储能系统动态运行特性[J].储能科学与技术,2023,12(6):1840-1853. SUN Xiaoxia,GUI Zhonghua,GAO Ziyu,et al.Dynamic characteristics of compressed air energy storage system[J].Energy Storage Science and Technology,2023,12(6):1840-1853. [60] 邹才能,李建明,张茜,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. ZOU Caineng,LI Jianming,ZHANG Xi,et al.Industrial status,technological progress,challenges and prospects of hydrogen energy[J].Natural Gas Industry,2022,42(4):1-20. [61] 潘松圻,邹才能,王杭州,等.地下储氢库发展现状及气藏型储氢库高效建库十大技术挑战[J].天然气工业,2023,43(11):164-180. PAN Songqi,ZOU Caineng,WANG Hangzhou,et al.Development status of underground hydrogen storages and top ten technical challenges to efficient construction of gas reservoir-type underground hydrogen storages[J].Natural Gas Industry,2023,43(11):164-180. [62] 邹才能,吴松涛,杨智,等.碳中和战略背景下建设碳工业体系的进展、挑战及意义[J].石油勘探与开发,2023,50(1):190-205. ZOU Caineng,WU Songtao,YANG Zhi,et al.Progress,challenge and significance of building a carbon industry system in the context of carbon neutrality strategy[J].Petroleum Exploration and Development,2023,50(1):190-205. [63] 易童,李向应,苏昊海,等.过去66 Ma以来大气CO2变化趋势[J].冰川冻土,2024,46(1):363-366. YI Tong,LI Xiangying,SU Haohai,et al.Changes in atmospheric CO2 over the past 66 Ma[J].Journal of Glaciology and Geocryology,2024,46(1):363-366. [64] EHLIG-ECONOMIDES C A.Geologic carbon dioxide sequestration methods,opportunities,and impacts[J].Current Opinion in Chemical Engineering,2023,42:100957. [65] KRYSTA BINIEK,LUCIANO DI FIORI,NEIL SEGEL,et al.Global energy perspective 2023:CCUS outlook[EB/OL].(2024-01-24)[2025-12-18].https://www.mckinsey.com/industries/oil-and-gas/our-insights/global-energy-perspective-2023-ccus-outlook. [66] KRISHNAN A,NIGHOJKAR A,KANDASUBRAMANIAN B.Emerging towards zero carbon footprint via carbon dioxide capturing and sequestration[J].Carbon Capture Science & Technology,2023,9:100137. [67] KUMAR N,VERMA A,AHMAD T,et al.Carbon capture and sequestration technology for environmental remediation:a CO2 utilization approach through EOR[J].Geoenergy Science and Engineering,2024,234:212619. [68] GOKHALE P A,DEOKATTEY S,KUMAR V.Accelerator driven systems (ADS)for energy production and waste transmutation:International trends in R&D[J].Progress in Nuclear Energy,2006,48(2): 91-102. [69] EFREMENKOV V M.Radioactive waste management at nuclear power plants[J].IAEA Bulletin,1989,31(4):37-42. [70] KURNIAWAN T A,SINGH D,AVTAR R,et al.Resource recovery from landfill leachate:an experimental investigation and perspectives[J].Chemosphere,2021,274:129986. [71] JACOBSON M Z.Review of solutions to global warming,air pollution,and energy security[J].Energy & Environmental Science,2009,2(2):148-173. [72] RAGOUSSI M E,COSTA D.Fundamentals of the NEA thermochemical database and its influence over national nuclear programs on the performance assessment of deep geological repositories[J].Journal of Environmental Radioactivity,2019,196:225-231. [73] ZHANG Qichao,HUANG Yanliang,SAND W,et al.Effects of deep geological environments for nuclear waste disposal on the hydrogen entry into titanium[J].International Journal of Hydrogen Energy,2019,44(23):12200-12214. [74] CLARK K J,BERRYMAN K R.Assessing long-term stability of the geological environment[M]//APTED M J,AHN J.Geological repository systems for safe disposal of spent nuclear fuels and radioactive waste.2nd ed.Cambridge:Woodhead Publishing,2017:195-227. [75] CHAPMAN N,HOOPER A.The disposal of radioactive wastes underground[J].Proceedings of the Geologists’ Association,2012,123(1):46-63. [76] FISHER A J,IMRAN M N B,MANN C,et al.Short communication:the dissolution of UK simulant vitrified high-level-waste in groundwater solutions[J].Journal of Nuclear Materials,2020,538:152245. [77] DI NUCCI M R,ISIDORO LOSADA A M,SCHREURS M A,et al.The technical,political and socio-economic challenges of governing nuclear waste:a comparative perspective[M]//BRUNNENGRÄBER A, DI NUCCI M R,LOSADA A M I,et al.Challenges of nuclear waste governance:an international comparison volume II.Wiesbaden:Springer,2018:3-22. [78] GRAMBOW B,BRETESCHÉ S.Geological disposal of nuclear waste:II.From laboratory data to the safety analysis—Addressing societal concerns [J].Applied Geochemistry,2014,49:247-258. [79] MATTHEWS J.Vema Hydrogen snaps $13M to turn rocks into low-carbon hydrogen[EB/OL].(2025-02-18)[2025-03-24].https://techfundingnews.com/vema-hydrogen-secures-13m-to-turn-rock-into-fuel/. [80] 氢能研习社.Vema Hydrogen:以低于1美元/千克的成本刺激地质氢气生产[EB/OL].(2025-02-19)[2025-03-24].https://mp.weixin.qq.com/s/ZFikRmFyrNRWUwrOH9s5xw. Hydrogen Energy Studio.Vema Hydrogen:stimulating geological hydrogen production at a cost of less than $1/kg[EB/OL].(2025-02-19) [2025-03-24].https://mp.weixin.qq.com/s/ZFikRmFyrNRWUwrOH9s5xw. [81] 刘淑琴,戚川,纪雨彤,等.煤炭地下气化制氢技术路径[J].洁净煤技术,2023,29(8):1-10. LIU Shuqin,QI Chuan,JI Yutong,et al.Research on hydrogen production pathway by underground coal gasification[J].Clean Coal Technology,2023,29(8):1-10. [82] 刘淑琴,刘欢,纪雨彤,等.深部煤炭地下气化制氢碳排放核算及碳减排潜力分析[J].煤炭科学技术,2023,51(1):531-541. LIU Shuqin,LIU Huan,JI Yutong,et al.Carbon emission accounting and carbon reduction analysis for deep coal underground gasification to hydrogen[J].Coal Science and Technology,2023,51(1):531-541. [83] 侯正猛,吴林,张烈辉,等.二氧化碳地下生化合成天然气耦合地热利用:技术系统、挑战及展望[J].天然气工业,2023,43(11):181-190. HOU Zhengmeng,WU Lin,ZHANG Liehui,et al.CO2-based underground biochemical synthesis of natural gas coupled with geothermal energy production:technology system,challenges,and prospects[J].Natural Gas Industry,2023,43(11):181-190. [84] XIONG Ying,HOU Zhengmeng,XIE Heping,et al.Microbial-mediated CO2 methanation and renewable natural gas storage in depleted petroleum reservoirs:a review of biogeochemical mechanism and perspective[J].Gondwana Research,2023,122:184-198. [85] HOU Zhengmeng,LUO Jiashun,XIE Yachen,et al.Carbon circular utilization and partially geological sequestration:potentialities,challenges,and trends[J].Energies,2023,16(1):324. [86] THAYSEN E M,MCMAHON S,STROBEL G J,et al.Estimating microbial growth and hydrogen consumption in hydrogen storage in porous media[J].Renewable and Sustainable Energy Reviews,2021,151:111481. [87] WU Lin,HOU Zhengmeng,XIE Yachen,et al.Carbon capture,circular utilization,and sequestration (CCCUS):a multifunctional technology coupling underground biomethanation with geothermal energy production[J].Journal of Cleaner Production,2023,426:139225. [88] 侯梅芳,梁英波,徐鹏.中国式现代化目标下构建新型能源体系之路径思考[J].天然气工业,2024,44(1):177-185. HOU Meifang,LIANG Yingbo,XU Peng.The path of building a new energy system under the goal of Chinese modernization:a discussion[J].Natural Gas Industry,2024,44(1):177-185. [89] 常州市金坛区人民政府网.发改局:变盐穴为宝盆 打造储能蓝海[EB/OL].(2024-02-22)[2025-05-27].https://www.jintan.gov.cn/html/czjt/2024/IJMNQALM_0222/247136.html. Jintan.gov.cn.Development and Reform Bureau:Turning salt caverns into treasure troves to create a blue ocean for energy storage[EB/OL].(2024-02-22)[2025-05-27].https://www.jintan.gov.cn/html/czjt/2024/IJMNQALM_0222/247136.html. [90] 国家能源局.国家能源局2025年第三季度新闻发布会文字实录[EB/OL].(2025-07-31)[2025-08-18].https://www.nea.gov.cn/20250731/83ffa46373ec42dd99e0e3271028c151/c.html. National Energy Administration.Transcript of the National Energy Administration press conference for the third quarter of 2025 [EB/OL].(2025-07-31)[2025-08-18].https://www.nea.gov.cn/20250731/83ffa46373ec42dd99e0e3271028c151/c.html. [91] 邹才能,潘松圻,赵群.论中国"能源独立"战略的内涵、挑战及意义[J].石油勘探与开发,2020,47(2):416-426. ZOU Caineng,PAN Songqi,ZHAO Qun.On the connotation,challenge and significance of China’s "energy independence" strategy[J].Petroleum Exploration and Development,2020,47(2):416-426. |
| [1] | Su Chunmei, Zhao Yunpeng, Xu Yuan, Zhu Jingyi, You Yuanpeng. Exploration and practice of integrated development between oil,gas and new energy in PetroChina’s petroleum upstream sector [J]. Acta Petrolei Sinica, 2026, 47(1): 21-30,73. |
| [2] | Shi Daohan, Tang Yong, He Wenjun, Mao Xinjun, Luo Shuanghan, Qian Haitao, Wang Guozhen, You Xincai, Gan Renzhong, Qin Zhijun, Xie An, Wu Aicheng. Resource endowment,strategic deployment,and significance of the super energy basin in Junggar Basin [J]. Acta Petrolei Sinica, 2026, 47(1): 31-43. |
| [3] | Xiong Bo, Wang Dong, Hao Siying, Wang Ziheng, Zhang Chaoyang, Huang Mingzhi, Li Shixiang, Xiao Gong. Opportunities,challenges,and perspectives on the high-quality development of new energy driven by global energy transition [J]. Acta Petrolei Sinica, 2026, 47(1): 74-94. |
| [4] | Yao Xuezhe, Song Xianzhi, Xu Zhengming, Zhou Mengmeng, Duan Shiming, Cui Yueqi, Wang Haobo. An inversion-while-drilling method for the static formation temperature of ultra-deep wells based on differential evolution algorithm [J]. Acta Petrolei Sinica, 2025, 46(9): 1805-1816. |
| [5] | Zhou Xian, Meng Qingchun, Chen Hong, Zeng Qingqiao, Zeng Junqi, Wang Ruisi, Wang Li, Du Lihong, Zhang Xi, Yan Xue. Practice and prospect of development and comprehensive utilization of buried hill reservoirs in Jizhong depression [J]. Acta Petrolei Sinica, 2025, 46(6): 1180-1192. |
| [6] | Zou Caineng, Li Shixiang, Xiong Bo, Liu Hanlin, Zhang Guosheng, Yang Zhi, Pan Songqi, Wu Songtao, Guan Chunxiao, Li Ting, Lin Dapeng. Status and role of emerging industries of new energy in promoting new quality productive forces [J]. Acta Petrolei Sinica, 2024, 45(6): 889-899. |
| [7] | Zou Caineng, Li Shixiang, Liu Chenguang, Wang Liying. New energy storage technologies and their business models empowered by new quality productivity forces [J]. Acta Petrolei Sinica, 2024, 45(10): 1443-1461. |
| [8] | Wu Xian, Li Dan, Han Jun, Zhu Xiuxiang, Huang Cheng, Cao Zicheng, Chang Jian, Liu Yuchen. Characteristics of present ultra-deep geothermal field in the northern Shuntuoguole low uplift, Tarim Basin [J]. Acta Petrolei Sinica, 2022, 43(1): 29-40. |
| [9] | Cui Guodong, Ren Shaoran, Qiu Zhichao, Zhang Liang. Technical and economic analysis of geothermal development and power generation by injecting supercritical CO2 in low-permeability depleted gas reservoirs [J]. Acta Petrolei Sinica, 2022, 43(1): 156-166. |
| [10] | Zou Caineng, He Dongbo, Jia Chengye, Xiong Bo, Zhao Qun, Pan Songqi. Connotation and pathway of world energy transition and its significance for carbon neutral [J]. Acta Petrolei Sinica, 2021, 42(2): 233-247. |
| [11] | Wang Shejiao, Li Feng, Yan Jiahong, Hu Junwen, Wang Kaihong, Ren Hengtai. Evaluation methods and application of geothermal resources in oilfields [J]. Acta Petrolei Sinica, 2020, 41(5): 553-564. |
| [12] | Zou Caineng, Pan Songqi, Jing Zhenhua, Gao Jinliang, Yang Zhi, Wu Songtao, Zhao Qun. Shale oil and gas revolution and its impact [J]. Acta Petrolei Sinica, 2020, 41(1): 1-12. |
| [13] | Luo Jinglan, He Min, Pang Xiong, Li Chi, Liu Baojun, Lei Chuan, Ma Yongkun, Pang Jiang. Diagenetic response on thermal evolution events and high geothermal gradients in the southern Pear River Mouth Basin and its enlightenment to hydrocarbon exploration [J]. Acta Petrolei Sinica, 2019, 40(s1): 90-104. |
| [14] | Hu Shengbiao, Long Zhulie, Zhu Junzhang, Hu Di, Huang Yuping, Shi Yulin, Hu Jie. Characteristics of geothermal field and the tectonic-thermal evolution in Pearl River Mouth Basin [J]. Acta Petrolei Sinica, 2019, 40(s1): 178-187. |
| [15] | Zhuang Xinbing, Gu Yi, Shao Zhibing, You Donghua, Ding Yong, Wan Yanglu. Control effect of geothermal field on hydrocarbon accumulation process in Tarim Basin: a case study of Guchengxu uplift [J]. Acta Petrolei Sinica, 2017, 38(5): 502-511. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||
Copyright © 2021 Editorial Office of ACTA PETROLEI SINICA
Address:No. 6 Liupukang Street, Xicheng District, Beijing, P.R.China, 100724
Tel: 86-010-62067128, 86-010-62067137, 86-010-62067139
Fax: 86-10-62067130
Email: syxb@cnpc.com.cn
Support byBeijing Magtech Co.ltd, E-mail:support@magtech.com.cn