2022 Vol. 42, No. 1
Article Contents

OU Fenlan, YU Yanjiang, KOU Beibei, CHEN Liang. Gas hydrate reservoir types, characteristics and development methods[J]. Marine Geology & Quaternary Geology, 2022, 42(1): 194-213. doi: 10.16562/j.cnki.0256-1492.2021010601
Citation: OU Fenlan, YU Yanjiang, KOU Beibei, CHEN Liang. Gas hydrate reservoir types, characteristics and development methods[J]. Marine Geology & Quaternary Geology, 2022, 42(1): 194-213. doi: 10.16562/j.cnki.0256-1492.2021010601

Gas hydrate reservoir types, characteristics and development methods

  • Natural gas hydrate is a new type of energy with huge resource potential and high combustion value. Due to its special occurrence and physical-mechanical properties, economic development of the resources still faces many problems and challenges. The distribution patterns of gas hydrate resources in the sea and on the land as well as the difficulties ever encountered in the exploitation of some major hydrate deposits in the world are studied in this paper as cases. Based on the mining methods selected, the occurrence, accumulation models and reservoir classification of gas hydrate underground are analyzed and discussed. Taking some pilot hydrate production projects as examples, various existing natural gas hydrate mining methods are compared and analyzed for their advantages, disadvantages and application feasibilities. Based upon the above discussion, suitable mining methods are selected and recommended. The paper may provide a reference for establishing a complete natural gas hydrate mining technology system for realization of commercial exploitation in the future.

  • 加载中
  • [1] Andreassen K, Hart P E, MacKay M. Amplitude versus offset modeling of the bottom simulating reflection associated with submarine gas hydrates [J]. Marine Geology, 1997, 137(1-2): 25-40. doi: 10.1016/S0025-3227(96)00076-X

    CrossRef Google Scholar

    [2] Archer D. Methane hydrate stability and anthropogenic climate change [J]. Biogeosciences, 2007, 4: 521-544. doi: 10.5194/bg-4-521-2007

    CrossRef Google Scholar

    [3] Byk S S, Formina V I. Gas hydrates [J]. Russian Chemical Reviews, 1968, 37(6): 469-491. doi: 10.1070/RC1968v037n06ABEH001654

    CrossRef Google Scholar

    [4] Kvenvolden K A. Methane hydrate-A major reservoir of carbon in the shallow geosphere? [J]. Chemical Geology, 1988, 71(1-3): 41-51. doi: 10.1016/0009-2541(88)90104-0

    CrossRef Google Scholar

    [5] Kvenvolden K A. Potential effects of gas hydrate on human welfare [J]. Proceedings of the National Academy of Sciences of the United States of America, 1999, 96(7): 3420-3426. doi: 10.1073/pnas.96.7.3420

    CrossRef Google Scholar

    [6] Archer D, Buffett B, Brovkin V. Ocean methane hydrates as a slow tipping point in the global carbon cycle [J]. Proceedings of the National Academy of Sciences of the United States of America, 2009, 106(49): 20596-20601. doi: 10.1073/pnas.0800885105

    CrossRef Google Scholar

    [7] Boswell R, Collett T S. Current perspectives on gas hydrate resources [J]. Energy and Environmental Science, 2011, 4(4): 1206-1215. doi: 10.1039/C0EE00203H

    CrossRef Google Scholar

    [8] Chong Z R, Yang S H B, Babu P, et al. Review of natural gas hydrates as an energy resource: Prospects and challenges [J]. Applied Energy, 2016, 162: 1633-1652. doi: 10.1016/j.apenergy.2014.12.061

    CrossRef Google Scholar

    [9] Sloan E D Jr. Fundamental principles and applications of natural gas hydrates [J]. Nature, 2003, 426(6964): 353-359. doi: 10.1038/nature02135

    CrossRef Google Scholar

    [10] Collett T S. Energy resource potential of natural gas hydrates [J]. AAPG Bulletin, 2002, 86(11): 1971-1992.

    Google Scholar

    [11] Kerr R A. Gas hydrate resource: smaller but sooner [J]. Science, 2004, 303(5660): 946-947. doi: 10.1126/science.303.5660.946

    CrossRef Google Scholar

    [12] Ye J L, Qin X W, Xie W W, et al. The second natural gas hydrate production test in the South China Sea [J]. China Geology, 2020, 3(2): 197-209.

    Google Scholar

    [13] Lee J Y, Ryu B J, Yun T S, et al. Review on the gas hydrate development and production as a new energy resource [J]. KSCE Journal of Civil Engineering, 2011, 15(4): 689-696. doi: 10.1007/s12205-011-0009-3

    CrossRef Google Scholar

    [14] Seol J, Lee H. Natural gas hydrate as a potential energy resource: From occurrence to production [J]. Korean Journal of Chemical Engineering, 2013, 30(4): 771-786. doi: 10.1007/s11814-013-0033-8

    CrossRef Google Scholar

    [15] Liu L P, Sun Z L, Zhang L, et al. Progress in global gas hydrate development and production as a new energy resource [J]. Acta Geologica Sinica, 2019, 93(3): 731-755. doi: 10.1111/1755-6724.13876

    CrossRef Google Scholar

    [16] Durham W B, Kirby S H, Stern L A, et al. The strength and rheology of methane clathrate hydrate [J]. Journal of Geophysical Research: Solid Earth, 2003, 108(B4): 2182.

    Google Scholar

    [17] Dickens G R. A methane trigger for rapid warming? [J]. Science, 2003, 299(5609): 1017. doi: 10.1126/science.1080789

    CrossRef Google Scholar

    [18] Gu G S, Dickens G R, Bhatnagar G, et al. Abundant Early Palaeogene marine gas hydrates despite warm deep-ocean temperatures [J]. Nature Geoscience, 2011, 4(12): 848-851. doi: 10.1038/ngeo1301

    CrossRef Google Scholar

    [19] Sultan N, Cochonat P, Foucher J P, et al. Effect of gas hydrates melting on seafloor slope instability [J]. Marine Geology, 2004, 213(1-4): 379-401. doi: 10.1016/j.margeo.2004.10.015

    CrossRef Google Scholar

    [20] Archer D, Buffett B. Time-dependent response of the global ocean clathrate reservoir to climatic and anthropogenic forcing [J]. Geochemistry, Geophysics, Geosystems, 2005, 6(3): Q03002.

    Google Scholar

    [21] Brown H E, Holbrook W S, Hornbach M J, et al. Slide structure and role of gas hydrate at the northern boundary of the Storegga Slide, offshore Norway [J]. Marine Geology, 2006, 229(3-4): 179-186. doi: 10.1016/j.margeo.2006.03.011

    CrossRef Google Scholar

    [22] Collett T S, Johnson A H, Knapp C C, et al. Natural gas hydrates: a review [J]. Browse Collections, 2009, 89: 146-219.

    Google Scholar

    [23] Li J F, Ye J L, Qin X W, et al. The first offshore natural gas hydrate production test in South China Sea [J]. China Geology, 2018, 1(1): 5-16. doi: 10.31035/cg2018003

    CrossRef Google Scholar

    [24] Yu T, Guan G Q, Abudula A. Production performance and numerical investigation of the 2017 offshore methane hydrate production test in the Nankai Trough of Japan [J]. Applied Energy, 2019, 251: 113338. doi: 10.1016/j.apenergy.2019.113338

    CrossRef Google Scholar

    [25] 陈强, 胡高伟, 李彦龙, 等. 海域天然气水合物资源开采新技术展望[J]. 海洋地质前沿, 2020, 36(9):44-55

    Google Scholar

    CHEN Qiang, HU Gaowei, LI Yanlong, et al. A prospect review of new technology for development of marine gas hydrate resources [J]. Marine Geology Frontiers, 2020, 36(9): 44-55.

    Google Scholar

    [26] 李守定, 孙一鸣, 陈卫昌, 等. 天然气水合物开采方法及海域试采分析[J]. 工程地质学报, 2019, 27(1):55-68

    Google Scholar

    LI Shouding, SUN Yiming, CHEN Weichang, et al. Analyses of gas production methods and offshore production tests of natural gas hydrates [J]. Journal of Engineering Geology, 2019, 27(1): 55-68.

    Google Scholar

    [27] Makogon Y F. Natural gas hydrates-A promising source of energy [J]. Journal of Natural Gas Science and Engineering, 2010, 2(1): 49-59. doi: 10.1016/j.jngse.2009.12.004

    CrossRef Google Scholar

    [28] Moridis G J, Collett T S, Pooladi-Darvish M, et al. Challenges, uncertainties and issues facing gas production from gas hydrate deposits [J]. SPE Reservoir Evaluation and Engineering, 2011, 14(1): 76-112. doi: 10.2118/131792-PA

    CrossRef Google Scholar

    [29] Lu S M. A global survey of gas hydrate development and reserves: Specifically in the marine field [J]. Renewable and Sustainable Energy Reviews, 2015, 41: 884-900. doi: 10.1016/j.rser.2014.08.063

    CrossRef Google Scholar

    [30] Waite W F, Ruppel C D, Boze L G, et al. Preliminary global database of known and inferred gas hydrate locations: U. S. Geological Survey Data Release, https://doi.org/10.5066/P9llFVJM, 2020.

    Google Scholar

    [31] Liu B, Yuan Q, Su K H, et al. Experimental simulation of the exploitation of natural gas hydrate [J]. Energies, 2012, 5(2): 466-493. doi: 10.3390/en5020466

    CrossRef Google Scholar

    [32] Collett T S, Lewis R E, Winters W J, et al. Downhole well log and core montages from the Mount Elbert Gas Hydrate Stratigraphic Test Well, Alaska North Slope [J]. Marine and Petroleum Geology, 2011, 28(2): 561-577. doi: 10.1016/j.marpetgeo.2010.03.016

    CrossRef Google Scholar

    [33] 周幼吾, 郭东信, 邱国庆, 等. 中国冻土[M]. 北京: 科学出版社, 2000: 10-11.

    Google Scholar

    ZHOU Youwu, GUO Dongxin, QIU Guoqing, et al. China's Permafrost[M]. Beijing: Science Press, 2000: 10-11.

    Google Scholar

    [34] Moridis G J, Sloan E D. Gas production potential of disperse low-saturation hydrate accumulations in oceanic sediments [J]. Energy Conversion and Management, 2007, 48(6): 1834-1849. doi: 10.1016/j.enconman.2007.01.023

    CrossRef Google Scholar

    [35] Le A N, Huuse M, Redfern J, et al. Seismic characterization of a Bottom Simulating Reflection (BSR) and plumbing system of the Cameroon margin, offshore West Africa [J]. Marine and Petroleum Geology, 2015, 68: 629-647. doi: 10.1016/j.marpetgeo.2014.12.006

    CrossRef Google Scholar

    [36] 卢振权, 吴必豪, 金春爽. 天然气水合物资源量的一种估算方法: 以南海北部陆坡为例[J]. 石油实验地质, 2007, 29(3):319-323, 328 doi: 10.3969/j.issn.1001-6112.2007.03.019

    CrossRef Google Scholar

    LU Zhenquan, WU Bihao, JIN Chunshuang. A method for gas hydrate resource estimation: An example of preliminary estimation of gas hydrates in the northern continental slope, South China Sea [J]. Petroleum Geology and Experiment, 2007, 29(3): 319-323, 328. doi: 10.3969/j.issn.1001-6112.2007.03.019

    CrossRef Google Scholar

    [37] Collett T, Johnson A, Knapp C, et al. Natural Gas Hydrates-Energy Resource Potential and Associated Geologic Hazards[M]. Oklahoma, Tulsa: American Association of Petroleum Geologists, 2011: 50-51.

    Google Scholar

    [38] Kroeger K F, Plaza-Faverola A, Barnes P M, et al. Thermal evolution of the New Zealand Hikurangi subduction margin: Impact on natural gas generation and methane hydrate formation – A model study [J]. Marine and Petroleum Geology, 2015, 63: 97-114. doi: 10.1016/j.marpetgeo.2015.01.020

    CrossRef Google Scholar

    [39] Riedel M, Collett T S, Shankar U. Documenting channel features associated with gas hydrates in the Krishna-Godavari Basin, offshore India [J]. Marine Geology, 2011, 279(1-4): 1-11. doi: 10.1016/j.margeo.2010.10.008

    CrossRef Google Scholar

    [40] Kida M, Khlystov O, Zemskaya T, et al. Coexistence of structure I and II gas hydrates in Lake Baikal suggesting gas sources from microbial and thermogenic origin [J]. Geophysical Research Letters, 2006, 33(24): L24603. doi: 10.1029/2006GL028296

    CrossRef Google Scholar

    [41] Kide M, Hachikubo A, Sakagami H, et al. Natural gas hydrates with locally different cage occupancies and hydration numbers in Lake Baikal [J]. Geochemistry, Geophysics, Geosystems, 2009, 10(5): Q05003.

    Google Scholar

    [42] 肖莹莹, 左力艳, 张诚. 天然气水合物研究与开发试验概述[J]. 内蒙古石油化工, 2018, 44(10):18-22 doi: 10.3969/j.issn.1006-7981.2018.10.004

    CrossRef Google Scholar

    XIAO Yingying, ZUO Liyan, ZHANG Cheng. An overview of the international gas hydrate research and trial production [J]. Inner Mongolia Petrochemical Industry, 2018, 44(10): 18-22. doi: 10.3969/j.issn.1006-7981.2018.10.004

    CrossRef Google Scholar

    [43] Musakaev N G, Khasanov M K, Borodin S L. The mathematical model of the gas hydrate deposit development in permafrost [J]. International Journal of Heat and Mass Transfer, 2018, 118: 455-461. doi: 10.1016/j.ijheatmasstransfer.2017.10.127

    CrossRef Google Scholar

    [44] 关进安, 樊栓狮, 梁德青, 等. 自然界天然气水合物勘探开发概述[J]. 新能源进展, 2019, 7(6):522-531

    Google Scholar

    GUAN Jin’an, FAN Shuanshi, LIANG Deqing, et al. An overview on gas hydrate exploration and exploitation in natural fields [J]. Advances in New and Renewable Energy, 2019, 7(6): 522-531.

    Google Scholar

    [45] Bhatnagar G, Chapman W G, Dickens G R, et al. Generalization of gas hydrate distribution and Saturation in marine sediments by scaling of thermodynamic and transport processes [J]. American Journal of Science, 2007, 307(6): 861-900. doi: 10.2475/06.2007.01

    CrossRef Google Scholar

    [46] 宣之强, 李钟模, 吴必豪, 等. 天然气水合物新能源简介-对全球试采、开发和研究天然气水合物现状的综述[J]. 化工矿产地质, 2018, 40(1):48-52 doi: 10.3969/j.issn.1006-5296.2018.01.009

    CrossRef Google Scholar

    XUAN Zhiqiang, LI Zhongmo, WU Bihao, et al. Introduction to new energy gas hydrate - A review on globle pilot production, development and reserch status of gas hydrate [J]. Geology of Chemical Minerals, 2018, 40(1): 48-52. doi: 10.3969/j.issn.1006-5296.2018.01.009

    CrossRef Google Scholar

    [47] Boswell R. Is gas hydrate energy within reach? [J]. Science, 2009, 325(5943): 957-958. doi: 10.1126/science.1175074

    CrossRef Google Scholar

    [48] Max M D, Johnson A H. Hydrate petroleum system approach to natural gas hydrate exploration [J]. Petroleum Geoscience, 2014, 20(2): 187-199. doi: 10.1144/petgeo2012-049

    CrossRef Google Scholar

    [49] 吴西顺, 黄文斌, 刘文超, 等. 全球天然气水合物资源潜力评价及勘查试采进展[J]. 海洋地质前沿, 2017, 33(7):63-78

    Google Scholar

    WU Xishun, HUANG Wenbin, LIU Wenchao, et al. World-wide progress of resource potential assessment, exploration and production test of natural gas hydrate [J]. Marine Geology Frontiers, 2017, 33(7): 63-78.

    Google Scholar

    [50] 程聪, 姜涛, 匡增桂, 等. 天然气水合物系统特征及其对我国水合物勘查的启示[J]. 地质科技情报, 2019, 38(4):30-40

    Google Scholar

    CHENG Cong, JIANG Tao, KUANG Zenggui, et al. Characteristics of gas hydrate system and its enlightenment to gas hydrate exploration in China [J]. Geological Science and Technology Information, 2019, 38(4): 30-40.

    Google Scholar

    [51] 樊栓狮, 关进安, 梁德青, 等. 天然气水合物动态成藏理论[J]. 天然气地球科学, 2007, 18(6):819-826 doi: 10.3969/j.issn.1672-1926.2007.06.009

    CrossRef Google Scholar

    FAN Shuanshi, GUAN Jin’an, LIANG Deqing, et al. A dynamic theory on natural gas hydrate reservoir formation [J]. Natural Gas Geoscience, 2007, 18(6): 819-826. doi: 10.3969/j.issn.1672-1926.2007.06.009

    CrossRef Google Scholar

    [52] Malone R D. Overview gas hydrate geology and geography [J]. Annals of the New York Academy of Sciences, 1994, 715(1): 225-231.

    Google Scholar

    [53] Uchida T, Dallimore S, Mikami J. Occurrences of natural gas hydrates beneath the permafrost zone in Mackenzie delta: visual and X-ray CT imagery [J]. Annals of the New York Academy of Sciences, 2000, 912(1): 1021-1033.

    Google Scholar

    [54] Collett T, Bahk J J, Baker R, et al. Methane hydrates in nature - current knowledge and challenges [J]. Journal of Chemical and Engineering Date, 2015, 60(2): 319-329. doi: 10.1021/je500604h

    CrossRef Google Scholar

    [55] 卜庆涛, 胡高伟, 业渝光, 等. 天然气水合物成藏体系研究进展[J]. 新能源进展, 2015, 3(6):435-443 doi: 10.3969/j.issn.2095-560X.2015.06.005

    CrossRef Google Scholar

    BU Qingtao, HU Gaowei, YE Yuguang, et al. Research progress in natural gas hydrate accumulation system [J]. Advances in New and Renewable Energy, 2015, 3(6): 435-443. doi: 10.3969/j.issn.2095-560X.2015.06.005

    CrossRef Google Scholar

    [56] Ye J L, Wei J G, Liang J Q, et al. Complex gas hydrate system in a gas chimney, South China Sea [J]. Marine and Petroleum Geology, 2019, 104: 29-39. doi: 10.1016/j.marpetgeo.2019.03.023

    CrossRef Google Scholar

    [57] Cheng B, Xu J B, Lu Z Q, et al. Hydrocarbon source for oil and gas indication associated with gas hydrate and its significance in the Qilian Mountain permafrost, Qinghai, Northwest China [J]. Marine and Petroleum Geology, 2018, 89: 202-215. doi: 10.1016/j.marpetgeo.2017.02.019

    CrossRef Google Scholar

    [58] Dai J C, Xu H B, Snyder F, et al. Detection and estimation of gas hydrates using rock physics and seismic inversion: examples from the northern deepwater Gulf of Mexico [J]. The Leading Edge, 2004, 23(1): 60-66. doi: 10.1190/1.1645456

    CrossRef Google Scholar

    [59] Holland G P, Jenkins J E, Creager M S, et al. Solid-state NMR investigation of major and minor ampullate spider silk in the native and hydrated states [J]. Biomacromolecules, 2008, 9(2): 651-657. doi: 10.1021/bm700950u

    CrossRef Google Scholar

    [60] 刘杰, 孙美静, 杨睿, 等. 马更些三角洲冻土区天然气水合物成藏的地质控制因素[J]. 新能源进展, 2018, 6(1):47-54 doi: 10.3969/j.issn.2095-560X.2018.01.008

    CrossRef Google Scholar

    LIU Jie, SUN Meijing, YANG Rui, et al. Geologic controls on permafrost-associated gas hydrate occurrence in the Mackenzie delta [J]. Advances in New and Renewable Energy, 2018, 6(1): 47-54. doi: 10.3969/j.issn.2095-560X.2018.01.008

    CrossRef Google Scholar

    [61] 何梅兴, 方慧, 祝有海, 等. 祁连山哈拉湖坳陷地质构造特征及天然气水合物成藏地质条件研究[J]. 中国地质, 2020, 47(1):173-187 doi: 10.12029/gc20200114

    CrossRef Google Scholar

    HE Meixing, FANG Hui, ZHU Youhai, et al. A study of geological structural features of Hala Lake Depression in Qilian Mountain and reservoir-forming conditions of natural gas hydrate [J]. Geology in China, 2020, 47(1): 173-187. doi: 10.12029/gc20200114

    CrossRef Google Scholar

    [62] 杨承志, 罗坤文, 梁金强, 等. 南海北部神狐海域浅层深水沉积体对天然气水合物成藏的控制[J]. 天然气工业, 2020, 40(8):68-76 doi: 10.3787/j.issn.1000-0976.2020.08.005

    CrossRef Google Scholar

    YANG Chengzhi, LUO Kunwen, LIANG Jinqiang, et al. Control effect of shallow-burial deepwater deposits on natural gas hydrate accumulation in the Shenhu sea area of the northern South China Sea [J]. Natural Gas Industry, 2020, 40(8): 68-76. doi: 10.3787/j.issn.1000-0976.2020.08.005

    CrossRef Google Scholar

    [63] 樊栓狮, 刘锋, 陈多福. 海洋天然气水合物的形成机理探讨[J]. 天然气地球科学, 2004, 15(5):524-530 doi: 10.3969/j.issn.1672-1926.2004.05.017

    CrossRef Google Scholar

    FAN Shuanshi, LIU Feng, CHEN Duofu. The research of the origin mechanism of marine gas hydrate [J]. Natural Gas Geoscience, 2004, 15(5): 524-530. doi: 10.3969/j.issn.1672-1926.2004.05.017

    CrossRef Google Scholar

    [64] Lee M W, Collett T S. Pore- and fracture-filling gas hydrate reservoirs in the Gulf of Mexico Gas Hydrate Joint Industry Project Leg II Green Canyon 955H well [J]. Marine and Petroleum Geology, 2012, 34(1): 62-71. doi: 10.1016/j.marpetgeo.2011.08.002

    CrossRef Google Scholar

    [65] Tsuji Y, Ishida H, Nakamizu M. Overview of the MITI Nankai Trough Wells: a milestone in the evaluation of methane hydrate resources [J]. Resource Geology, 2004, 54(1): 3-10. doi: 10.1111/j.1751-3928.2004.tb00182.x

    CrossRef Google Scholar

    [66] Riedel M, Collett T S, Malone M J, et al. Stages of gas-hydrate evolution on the northern Cascadia margin [J]. Scientific Drilling, 2006, 3: 18-24. doi: 10.5194/sd-3-18-2006

    CrossRef Google Scholar

    [67] Sassen R, Sweet S T, DeFreitas D A, et al. Gas hydrate and crude oil from the Mississippi Fan Foldbelt, downdip Gulf of Mexico Salt Basin: significance to petroleum system [J]. Organic Geochemistry, 2001, 32(8): 999-1008. doi: 10.1016/S0146-6380(01)00064-X

    CrossRef Google Scholar

    [68] Kim G Y, Narantsetseg B, Ryu B J, et al. Fracture orientation and induced anisotropy of gas hydrate-bearing sediments in seismic chimney-like-structures of the Ulleung Basin, East Sea [J]. Marine and Petroleum Geology, 2013, 47: 182-194. doi: 10.1016/j.marpetgeo.2013.06.001

    CrossRef Google Scholar

    [69] Lee M W, Collett T S. Gas hydrate saturations estimated from fractured reservoir at site NGHP-01-10, Krishna-Godavari Basin, India [J]. Journal of Geophysical Research, 2009, 114(B7): B07102.

    Google Scholar

    [70] 吴能友, 梁金强, 王宏斌, 等. 海洋天然气水合物成藏系统研究进展[J]. 现代地质, 2008, 22(3):356-362 doi: 10.3969/j.issn.1000-8527.2008.03.003

    CrossRef Google Scholar

    WU Nengyou, LIANG Jinqiang, WANG Hongbin, et al. Marine gas hydrate system: state of the art [J]. Geoscience, 2008, 22(3): 356-362. doi: 10.3969/j.issn.1000-8527.2008.03.003

    CrossRef Google Scholar

    [71] Qin X W, Lu J A, Lu H L, et al. Coexistence of natural gas hydrate, free gas and water in the gas hydrate system in the Shenhu Area, South China Sea [J]. China Geology, 2020, 3(2): 210-220.

    Google Scholar

    [72] 吴时国, 姚伯初. 天然气水合物赋存的地质构造分析与资源评价[M]. 北京: 科学出版社, 2008: 165-166.

    Google Scholar

    WU Shiguo, YAO Bochu. Geological Structure Analysis and Resource Evaluation of Natural Gas Hydrate[M]. Beijing: Science Press, 2008: 165-166.

    Google Scholar

    [73] 苏明, 沙志彬, 匡增桂, 等. 海底峡谷侵蚀-沉积作用与天然气水合物成藏[J]. 现代地质, 2015, 29(1):155-162 doi: 10.3969/j.issn.1000-8527.2015.01.019

    CrossRef Google Scholar

    SU Ming, SHA Zhibin, KUANG Zenggui, et al. Erosion and sedimentation of the submarine canyons and the relationship with gas hydrate accumulation [J]. Geoscience, 2015, 29(1): 155-162. doi: 10.3969/j.issn.1000-8527.2015.01.019

    CrossRef Google Scholar

    [74] 文怀军, 卢振权, 李永红, 等. 青海木里三露天井田天然气水合物调查研究新进展[J]. 现代地质, 2015, 29(5):983-994 doi: 10.3969/j.issn.1000-8527.2015.05.001

    CrossRef Google Scholar

    WEN Huaijun, LU Zhenquan, LI Yonghong, et al. New Advance on Gas Hydrate Survey and Research in Sanlutian of Muli, Qinghai [J]. Geoscience, 2015, 29(5): 983-994. doi: 10.3969/j.issn.1000-8527.2015.05.001

    CrossRef Google Scholar

    [75] Lu Z Q, Zhu Y H, Liu H, et al. Gas source for gas hydrate and its significance in the Qilian Mountain permafrost, Qinghai [J]. Marine and Petroleum Geology, 2013, 43: 341-348. doi: 10.1016/j.marpetgeo.2013.01.003

    CrossRef Google Scholar

    [76] 吴传芝, 赵克斌, 孙长青, 等. 天然气水合物开采研究现状[J]. 地质科技情报, 2008, 27(1):47-52 doi: 10.3969/j.issn.1000-7849.2008.01.008

    CrossRef Google Scholar

    WU Chuanzhi, ZHAO Kebin, SUN Changqing, et al. Current research in natural gas hydrate production [J]. Geological Science and Technology Information, 2008, 27(1): 47-52. doi: 10.3969/j.issn.1000-7849.2008.01.008

    CrossRef Google Scholar

    [77] Collett T S. Natural gas hydrates of the Prudhoe Bay and Kuparuk River area, North Slope, Alaska [J]. American Association of Petroleum Geologists Bulletin, 1993, 77(5): 793-812.

    Google Scholar

    [78] Lane L S, Dietrich J R. Tertiary structural evolution of the Beaufort Sea-Mackenzie Delta region, Arctic Canada [J]. Bulletin of Canadian Petroleum Geology, 1995, 43(3): 293-314.

    Google Scholar

    [79] Majorowicz J, Osadetz K, Safanda J. Gas hydrate formation and dissipation histories in the northern margin of Canada: Beaufort-Mackenzie and the Sverdrup Basins [J]. Journal of Geological Research, 2012, 2012: 879393.

    Google Scholar

    [80] 何家雄, 颜文, 祝有海, 等. 南海北部边缘盆地生物气/亚生物气资源与天然气水合物成矿成藏[J]. 天然气工业, 2013, 33(6):121-134 doi: 10.3787/j.issn.1000-0976.2013.06.023

    CrossRef Google Scholar

    HE Jiaxiong, YAN Wen, ZHU Youhai, et al. Bio-genetic and sub-biogenetic gas resource potential and genetic types of natural gas hydrates in the northern marginal basins of South China Sea [J]. Natural Gas Industry, 2013, 33(6): 121-134. doi: 10.3787/j.issn.1000-0976.2013.06.023

    CrossRef Google Scholar

    [81] Wei J G, Fang Y X, Lu H L, et al. Distribution and characteristics of natural gas hydrates in the Shenhu Sea Area, South China Sea [J]. Marine and Petroleum Geology, 2018, 98: 622-628. doi: 10.1016/j.marpetgeo.2018.07.028

    CrossRef Google Scholar

    [82] Milkov A V. Worldwide distribution of submarine mud volcanoes and associated gas hydrates [J]. Marine Geology, 2000, 167(1-2): 29-42. doi: 10.1016/S0025-3227(00)00022-0

    CrossRef Google Scholar

    [83] Jia J H, Tsuji T, Matsuoka T. Gas hydrate saturation and distribution in the Kumano Forearc Basin of the Nankai Trough [J]. Exploration Geophysics, 2017, 48(2): 137-150. doi: 10.1071/EG15127

    CrossRef Google Scholar

    [84] Dong G Y, Kang N K, Yi B Y, et al. Occurrence and seismic characteristics of gas hydrate in the Ulleung Basin, East Sea [J]. Marine and Petroleum Geology, 2013, 47: 236-247. doi: 10.1016/j.marpetgeo.2013.07.001

    CrossRef Google Scholar

    [85] Ramana M V, Ramprasad T, Paropkari A L, et al. Multidisciplinary investigations exploring indicators of gas hydrate occurrence in the Krishna-Godavari Basin offshore, east coast of India [J]. Geo-Marine Letters, 2009, 29(1): 25-38. doi: 10.1007/s00367-008-0121-7

    CrossRef Google Scholar

    [86] Riedel M, Collett T S, Kumar P, et al. Seismic imaging of a fractured gas hydrate system in the Krishna-Godavari Basin offshore India [J]. Marine and Petroleum Geology, 2010, 27(7): 1476-1493. doi: 10.1016/j.marpetgeo.2010.06.002

    CrossRef Google Scholar

    [87] 杨木壮, 潘安定, 沙志彬. 陆缘地区天然气水合物成藏地质模式[J]. 海洋地质与第四纪地质, 2010, 30(6):85-90

    Google Scholar

    YANG Muzhuang, PANG Anding, SHA Zhibin. Geological models of gas hydrates deposits along the continental margin [J]. Marine Geology and Quaternary Geology, 2010, 30(6): 85-90.

    Google Scholar

    [88] 梁金强, 王宏斌, 苏新. 南海北部陆坡天然气水合物成藏条件及其控制因素[J]. 天然气工业, 2014, 34(7):128-135

    Google Scholar

    LIANG Jinqiang, WANG Hongbin, SU Xin, et al. Natural gas hydrate formation conditions and the associated controlling factors in the northern slope of the South China Sea [J]. Natural Gas Industry, 2014, 34(7): 128-135.

    Google Scholar

    [89] 胡高伟, 卜庆涛, 吕万军, 等. 主动、被动大陆边缘天然气水合物成藏模式对比[J]. 天然气工业, 2020, 40(8):45-58 doi: 10.3787/j.issn.1000-0976.2020.08.003

    CrossRef Google Scholar

    HU Gaowei, BU Qingtao, LU Wanjun, et al. A comparative study on natural gas hydrate accumulation models at active and passive continental margins [J]. Natural Gas Industry, 2020, 40(8): 45-58. doi: 10.3787/j.issn.1000-0976.2020.08.003

    CrossRef Google Scholar

    [90] 龚建明, 张敏, 陈建文, 等. 天然气水合物发现区和潜在区气源成因[J]. 现代地质, 2008, 22(3):415-419 doi: 10.3969/j.issn.1000-8527.2008.03.011

    CrossRef Google Scholar

    GONG Jianming, ZHANG Min, CHEN Jianwen, et al. Gas sources genesis in the gas hydrate discoveries and potential areas [J]. Geoscience, 2008, 22(3): 415-419. doi: 10.3969/j.issn.1000-8527.2008.03.011

    CrossRef Google Scholar

    [91] 何家雄, 颜文, 祝有海, 等. 全球天然气水合物成矿气体成因类型及气源构成与主控因素[J]. 海洋地质与第四纪地质, 2013, 33(2):121-128

    Google Scholar

    HE Jiaxiong, YAN Wen, ZHU Youhai, et al. Genetic types of gas hydrate in the world and their main controlling factors [J]. Marine Geology and Quaternary Geology, 2013, 33(2): 121-128.

    Google Scholar

    [92] Moridis G J. Numerical studies of gas production from methane hydrates [J]. SPE Journal, 2003, 8(4): 359-370. doi: 10.2118/87330-PA

    CrossRef Google Scholar

    [93] Makogon Y F, Holditch S A, Makogon T Y. Russian field illustrates gas-hydrate production [J]. Oil and Gas Journal, 2005, 103(5): 43-47.

    Google Scholar

    [94] Dallimore S, Collet T S, Taylor A E, et al. Scientific results from the Mallik 2002 gas hydrate production research well program, Mackenzie Delta, Northwest Territories, Canada: Preface [J]. Bulletin of the Geological Survey of Canada, 2005, 585: 3-5.

    Google Scholar

    [95] Liu C L, Ye Y G, Meng Q G, et al. The characteristics of gas hydrates recovered from Shenhu Area in the South China Sea [J]. Marine Geology, 2012, 307-310: 22-27. doi: 10.1016/j.margeo.2012.03.004

    CrossRef Google Scholar

    [96] Qian J, Wang X J, Collett T S, et al. Downhole log evidence for the coexistence of structure II gas hydrate and free gas below the bottom simulating reflector in the South China Sea [J]. Marine and Petroleum Geology, 2018, 98: 662-674. doi: 10.1016/j.marpetgeo.2018.09.024

    CrossRef Google Scholar

    [97] Lu H L, Seo Y T, Lee J W, et al. Complex gas hydrate from the Cascadia margin [J]. Nature, 2007, 445(7125): 303-306. doi: 10.1038/nature05463

    CrossRef Google Scholar

    [98] Klapp S A, Murshed M M, Pape T, et al. Mixed gas hydrate structures at the Chapopote Knoll, southern Gulf of Mexico [J]. Earth and Planetary Science Letters, 2010, 299(1-2): 207-217. doi: 10.1016/j.jpgl.2010.09.001

    CrossRef Google Scholar

    [99] Kide M, Suzuki K, Kawamura T, et al. Characteristics of natural gas hydrates occurring in pore-spaces of marine sediments collected from the eastern Nankai Trough, off Japan [J]. Energy and Fuels, 2009, 23(11): 5580-5586. doi: 10.1021/ef900612f

    CrossRef Google Scholar

    [100] Lu Z Q, Zhu Y H, Zhang Y Q, et al. Gas hydrate occurrences in the Qilian Mountain permafrost, Qinghai province, China [J]. Cold Regions Science and Technology, 2011, 66(2-3): 93-104. doi: 10.1016/j.coldregions.2011.01.008

    CrossRef Google Scholar

    [101] Lu Z Q, Zhai G Y, Zhu Y H, et al. New discovery of the permafrost gas hydrate accumulation in Qilian Mountain, China [J]. China Geology, 2018, 1(2): 306-307. doi: 10.31035/cg2018034

    CrossRef Google Scholar

    [102] Ryu B J, Riedel M. Gas hydrates in the Ulleung Basin, East Sea of Korea [J]. Terrestrial Atmospheric and Oceanic Sciences, 2017, 28(6): 943-963. doi: 10.3319/TAO.2017.10.21.01

    CrossRef Google Scholar

    [103] Kide M, Jin Y, Yoneda J, et al. Crystallographic and geochemical properties of natural gas hydrates accumulated in the National Gas Hydrate Program Expedition 02 drilling sites in the Krishna-Godavari Basin off India [J]. Marine and Petroleum Geology, 2019, 108: 471-481. doi: 10.1016/j.marpetgeo.2018.10.012

    CrossRef Google Scholar

    [104] 刘俊杰, 马贵阳, 潘振, 等. 天然气水合物开采理论及开采方法分析[J]. 当代化工, 2014, 43(11):2293-2296 doi: 10.3969/j.issn.1671-0460.2014.11.027

    CrossRef Google Scholar

    LIU Junjie, MA Guiyang, PAN Zhen, et al. Analysis on the mining theory and methods of natural gas hydrate [J]. Contemporary Chemical Industry, 2014, 43(11): 2293-2296. doi: 10.3969/j.issn.1671-0460.2014.11.027

    CrossRef Google Scholar

    [105] 张洋, 李广雪, 刘芳. 天然气水合物开采技术现状[J]. 海洋地质前沿, 2016, 32(4):63-68

    Google Scholar

    ZHANG Yang, LI Guangxue, LIU Fang. Current status of mining technology for natural gas hydrate [J]. Marine Geology Frontiers, 2016, 32(4): 63-68.

    Google Scholar

    [106] Ji C, Ahmadi G, Smith D H. Natural gas production from hydrate decomposition by depressurization [J]. Chemical Engineering Science, 2001, 56(20): 5801-5814. doi: 10.1016/S0009-2509(01)00265-2

    CrossRef Google Scholar

    [107] Li X S, Zhang Y, Li G, et al. Experimental investigation into the production behavior of methane hydrate in porous sediment by depressurization with a novel three-dimensional cubic hydrate simulator [J]. Energy & Fuels, 2011, 25(10): 4497-4505.

    Google Scholar

    [108] Sung W M, Huh D G, Ryu B J, et al. Development and application of gas hydrate reservoir simulator based on depressurizing mechanism [J]. Korean Journal of Chemical Engineering, 2000, 17(3): 344-350. doi: 10.1007/BF02699051

    CrossRef Google Scholar

    [109] Hong H, Pooladi-Darvish M, Bishnoi P R. Analytical modelling of gas production from hydrates in porous media [J]. The Journal of Canadian Petroleum Technology, 2003, 42(11): 45-56. doi: 10.2118/03-11-05

    CrossRef Google Scholar

    [110] Konno Y, Yoneda J, Egawa K, et al. Permeability of Sediment Cores from Methane Hydrate Deposit in the Eastern Nankai Trough [J]. Marine and Petroleum Geology, 2015, 66: 487-495. doi: 10.1016/j.marpetgeo.2015.02.020

    CrossRef Google Scholar

    [111] 赵治宇, 向丹波, 诸林. 天然气水合物开采的方法及对环境的影响[J]. 中外能源, 2009, 14(4):33-36

    Google Scholar

    ZHAO Zhiyu, XIANG Danbo, ZHU Lin. Gas hydrate recovering methods and their environmental impacts [J]. Sino-Global Energy, 2009, 14(4): 33-36.

    Google Scholar

    [112] Grover T, Moridis G, Holditch S A. Analysis of reservoir performance of Messoyakha gas hydrate field [J]. Proceedings of the International Offshore and Polar Engineering Conference, 2009, 18: 49-56.

    Google Scholar

    [113] 邵明娟, 张炜, 吴西顺, 等. 麦索亚哈气田天然气水合物的开发[J]. 国土资源情报, 2016(12):17-19, 31 doi: 10.3969/j.issn.1674-3709.2016.12.003

    CrossRef Google Scholar

    SHAO Mingjuan, ZHANG Wei, WU Xishun, et al. Natural gas hydrate exploitation at Messoyakha gas field [J]. Land and Resources Information, 2016(12): 17-19, 31. doi: 10.3969/j.issn.1674-3709.2016.12.003

    CrossRef Google Scholar

    [114] 张炜, 白凤龙, 邵明娟, 等. 日本海域天然气水合物试采进展及其对我国的启示[J]. 海洋地质与第四纪地质, 2017, 37(5):27-33

    Google Scholar

    ZHANG Wei, BAI Fenglong, SHAO Mingjuan, et al. Progress of offshore natural gas hydrate production tests in Japan and implications [J]. Marine Geology and Quaternary Geology, 2017, 37(5): 27-33.

    Google Scholar

    [115] 张炜, 邵明娟, 田黔宁. 日本海域天然气水合物开发技术进展[J]. 石油钻探技术, 2017, 45(5):98-102

    Google Scholar

    ZHANG Wei, SHAO Mingjuan, TIAN Qianning. Technical progress of a pilot project to produce natural gas hydrate in Japanese waters [J]. Petroleum Drilling Techniques, 2017, 45(5): 98-102.

    Google Scholar

    [116] 吴能友, 黄丽, 胡高伟, 等. 海域天然气水合物开采的地质控制因素和科学挑战[J]. 海洋地质与第四纪地质, 2017, 37(5):1-11

    Google Scholar

    WU Nengyou, HUANG Li, HU Gaowei, et al. Geological controlling factors and scientific challenges for offshore gas hydrate exploitation [J]. Marine Geology and Quaternary Geology, 2017, 37(5): 1-11.

    Google Scholar

    [117] Ye J L, Qin X W, Qiu H J, et al. Preliminary results of environmental monitoring of the natural gas hydrate production test in the South China Sea [J]. China Geology, 2018, 1(2): 202-209. doi: 10.31035/cg2018029

    CrossRef Google Scholar

    [118] Lu C, Xia Y X, Sun X X, et al. Permeability evolution at various pressure gradients in natural gas hydrate reservoir at the Shenhu Area in the South China Sea [J]. Energies, 2019, 12(19): 3688. doi: 10.3390/en12193688

    CrossRef Google Scholar

    [119] Qin X W, Liang Q Y, Ye J L, et al. The response of temperature and pressure of hydrate reservoirs in the first gas hydrate production test in South China Sea [J]. Applied Energy, 2020, 278: 115649. doi: 10.1016/j.apenergy.2020.115649

    CrossRef Google Scholar

    [120] 叶建良, 秦绪文, 谢文卫, 等. 中国南海天然气水合物第二次试采主要进展[J]. 中国地质, 2020, 47(3):557-568 doi: 10.12029/gc20200301

    CrossRef Google Scholar

    YE Jianliang, QIN Xuwen, XIE Wenwei, et al. Main progress of the second gas hydrate trial production in the South China Sea [J]. Geology in China, 2020, 47(3): 557-568. doi: 10.12029/gc20200301

    CrossRef Google Scholar

    [121] Sakamoto Y, Komai T, Kawamura T, et al. Laboratory-scale experiment of methane hydrate dissociation by hot-water injection and numerical analysis for permeability estimation in reservoir: Part 1-Numerical study for estimation of permeability in methane hydrate reservoir [J]. International Journal of Offshore and Polar Engineering, 2007, 17(1): 47-56.

    Google Scholar

    [122] 李淑霞, 王炜, 陈月明, 等. 多孔介质中天然气水合物注热开采影响因素实验研究[J]. 海洋地质前沿, 2011, 27(6):49-54

    Google Scholar

    LI Shuxia, WANG Wei, CHEN Yueming, et al. Experimental study on influence factors of hot-brine stimulation for dissociation of NGH in porous medium [J]. Marine Geology Frontiers, 2011, 27(6): 49-54.

    Google Scholar

    [123] Li F G, Qing Y, Li T G, et al. A review: enhanced recovery of natural gas hydrate reservoirs [J]. Chinese Journal of Chemical Engineering, 2019, 27(9): 2062-2073. doi: 10.1016/j.cjche.2018.11.007

    CrossRef Google Scholar

    [124] Sun Y F, Wang Y F, Zhong J R, et al. Gas hydrate exploitation using CO2/H2 mixture gas by semi-continuous injection-production mode [J]. Applied Energy, 2019, 240: 215-225. doi: 10.1016/j.apenergy.2019.01.209

    CrossRef Google Scholar

    [125] Islam M R. A new recovery technique for gas production from Alaskan gas hydrates [J]. Journal of Petroleum Science and Engineering, 1994, 11(4): 267-281. doi: 10.1016/0920-4105(94)90046-9

    CrossRef Google Scholar

    [126] Zhao J F, Fan Z, Wang B, et al. Simulation of microwave stimulation for the production of gas from methane hydrate sediment [J]. Applied Energy, 2016, 168: 25-37. doi: 10.1016/j.apenergy.2016.01.091

    CrossRef Google Scholar

    [127] Li B, Liu S D, Liang Y P, et al. The use of electrical heating for the enhancement of gas recovery from methane hydrate in porous media [J]. Applied Energy, 2018, 227: 694-702. doi: 10.1016/j.apenergy.2017.08.066

    CrossRef Google Scholar

    [128] Minagawa H, Ito T, Kimura S, et al. Depressurization and electrical heating of methane hydrate sediment for gas production: laboratory-scale experiments [J]. Journal of Natural Gas Science and Engineering, 2018, 50: 147-156. doi: 10.1016/j.jngse.2017.10.024

    CrossRef Google Scholar

    [129] Liang Y P, Tan Y T, Luo Y J, et al. Progress and challenges on gas production from natural gas hydrate-bearing sediment [J]. Journal of Cleaner Production, 2020, 261: 121061. doi: 10.1016/j.jclepro.2020.121061

    CrossRef Google Scholar

    [130] Liu S, Zhang Y Y, Luo Y J, et al. Analysis of hydrate exploitation by a new in-situ heat generation method with chemical reagents based on heat utilization [J]. Journal of Cleaner Production, 2020, 249: 119399. doi: 10.1016/j.jclepro.2019.119399

    CrossRef Google Scholar

    [131] 李守定, 李晓, 王思敬, 等. 天然气水合物原位补热降压充填开采方法[J]. 工程地质学报, 2020, 28(2):282-293

    Google Scholar

    LI Shouding, LI Xiao, WANG Sijing, et al. A novel method for natural gas hydrate production: depressurization and backfilling with in-situ supplemental heat [J]. Journal of Engineering Geology, 2020, 28(2): 282-293.

    Google Scholar

    [132] 孙致学, 朱旭晨, 刘垒, 等. 联合深层地热甲烷水合物开采方法及可行性评价[J]. 海洋地质与第四纪地质, 2019, 39(2):146-156

    Google Scholar

    SUN Zhixue, ZHU Xuchen, LIU Lei, et al. Feasibility study on joint exploitation of methane hydrate with deep geothermal energy [J]. Marine Geology and Quaternary Geology, 2019, 39(2): 146-156.

    Google Scholar

    [133] 成海燕. 2006-2008 Mallik天然气水合物开发试验进展[J]. 海洋地质动态, 2009, 25(1):20-21 doi: 10.3969/j.issn.1009-2722.2009.01.005

    CrossRef Google Scholar

    CHENG Haiyan. Development of Mallik gas hydrate experiment during 2006-2008 [J]. Marine Geology Letters, 2009, 25(1): 20-21. doi: 10.3969/j.issn.1009-2722.2009.01.005

    CrossRef Google Scholar

    [134] Fan S S, Zhang Y Z, Tian G L, et al. Natural gas hydrate dissociation by presence of ethylene glycol [J]. Energy and Fuels, 2006, 20(1): 324-326. doi: 10.1021/ef0502204

    CrossRef Google Scholar

    [135] Kamath V A, Godbole S P. Evaluation of hot-brine stimulation technique for gas production from natural gas hydrates [J]. Journal of Petroleum Technology, 1987, 39(11): 1379-1388. doi: 10.2118/13596-PA

    CrossRef Google Scholar

    [136] Sung W, Lee H, Lee H, et al. Numerical study for production performances of a methane hydrate reservoir stimulated by inhibitor injection [J]. Energy Sources, 2002, 24(6): 499-512. doi: 10.1080/00908310290086527

    CrossRef Google Scholar

    [137] Ebinuma T. Method for dumping and disposing of carbon dioxide gas and apparatus therefor: US, 5261490[P]. 1992-03-03.

    Google Scholar

    [138] Ohgaki K, Takano K, Sangawa H, et al. Methane exploitation by carbon dioxide from gas hydrates-Phase equilibria for CO2-CH4 mixed hydrate system [J]. Journal of Chemical Engineering of Japan, 1996, 29(3): 478-483. doi: 10.1252/jcej.29.478

    CrossRef Google Scholar

    [139] Ota M, Saito T, Aida T, et al. Macro and microscopic CH4-CO2 replacement in CH4 hydrate under pressurized CO2 [J]. AIChE Journal, 2007, 53(10): 2715-2721. doi: 10.1002/aic.11294

    CrossRef Google Scholar

    [140] 周薇, 樊栓狮, 梁德青, 等. 二氧化碳压力对甲烷水合物置换速率的影响[J]. 武汉理工大学学报: 交通科学与工程版, 2008, 32(3):547-550

    Google Scholar

    ZHOU Wei, FAN Shuanshi, LIANG Deqing, et al. Influence of pressure to replacement of CH4 in the hydrate by use of CO2 [J]. Journal of Wuhan University of Technology: Transportation Science & Engineering, 2008, 32(3): 547-550.

    Google Scholar

    [141] Yuan Q, Sun C Y, Yang X, et al. Recovery of methane from hydrate reservoir with gaseous carbon dioxide using a three-dimensional middle-size reactor [J]. Energy, 2012, 40(1): 47-58. doi: 10.1016/j.energy.2012.02.043

    CrossRef Google Scholar

    [142] Komatsu H, Ota M, Smith R L Jr, et al. Review of CO2-CH4 clathrate hydrate replacement reaction laboratory studies - Properties and kinetics [J]. Journal of the Taiwan Institute of Chemical Engineers, 2013, 44(4): 517-537. doi: 10.1016/j.jtice.2013.03.010

    CrossRef Google Scholar

    [143] 李遵照, 郭绪强, 陈光进, 等. CO2置换CH4水合物中CH4的实验和动力学[J]. 化工学报, 2007, 58(5):1197-1203 doi: 10.3321/j.issn:0438-1157.2007.05.022

    CrossRef Google Scholar

    LI Zunzhao, GUO Xuqiang, CHEN Guangjin, et al. Experimental and kinetic studies on methane replacement from methane hydrate formed in SDS system by using pressurized CO2 [J]. Journal of Chemical Industry and Engineering (China), 2007, 58(5): 1197-1203. doi: 10.3321/j.issn:0438-1157.2007.05.022

    CrossRef Google Scholar

    [144] Bai D S, Zhang X R, Chen G J, et al. Replacement mechanism of methane hydrate with carbon dioxide from microsecond molecular dynamics simulations [J]. Energy and Environmental Science, 2012, 5(5): 7033-7041. doi: 10.1039/c2ee21189k

    CrossRef Google Scholar

    [145] Wang X H, Sun Y F, Wang Y F, et al. Gas production from hydrates by CH4-CO2/H2 replacement [J]. Applied Energy, 2017, 188: 305-314. doi: 10.1016/j.apenergy.2016.12.021

    CrossRef Google Scholar

    [146] Merey S, Al-Raoush R I, Jung J, et al. Comprehensive literature review on CH4-CO2 replacement in microscale porous media [J]. Journal of Petroleum Science and Engineering, 2018, 171: 48-62. doi: 10.1016/j.petrol.2018.07.032

    CrossRef Google Scholar

    [147] 刘昌岭, 李彦龙, 孙建业, 等. 天然气水合物试采: 从实验模拟到场地实施[J]. 海洋地质与第四纪地质, 2017, 37(5):12-26

    Google Scholar

    LIU Changling, LI Yanlong, SUN Jianye, et al. Gas hydrate production test: from experimental simulation to field practice [J]. Marine Geology and Quaternary Geology, 2017, 37(5): 12-26.

    Google Scholar

    [148] Collett T S, Boswell R, Lee M W, et al. Evaluation of long-term gas-hydrate-production testing locations on the Alaska north slope [J]. SPE Reservoir Evaluation and Engineering, 2012, 15(2): 243-264. doi: 10.2118/155504-PA

    CrossRef Google Scholar

    [149] Rose K, Boswell R, Collett T. Mount elbert gas hydrate stratigraphic test well, Alaska North Slope: Coring operations, core sedimentology, and lithostratigraphy [J]. Marine and Petroleum Geology, 2011, 28(2): 311-331. doi: 10.1016/j.marpetgeo.2010.02.001

    CrossRef Google Scholar

    [150] 李进, 王淑红, 颜文. 海底泥火山及其与油气和天然气水合物的关系[J]. 海洋地质与第四纪地质, 2017, 37(6):204-214

    Google Scholar

    LI Jin, WANG Shuhong, YAN Wen. Seabed mud volcano and its bearing on oil-gas and gas hydrate [J]. Marine Geology and Quaternary Geology, 2017, 37(6): 204-214.

    Google Scholar

    [151] 周守为, 陈伟, 李清平. 深水浅层天然气水合物固态流化绿色开采技术[J]. 中国海上油气, 2014, 26(5):1-7

    Google Scholar

    ZHOU Shouwei, CHEN Wei, LI Qingping. The green solid fluidization development principle of natural gas hydrate stored in shallow layers of deep water [J]. China Offshore Oil and Gas, 2014, 26(5): 1-7.

    Google Scholar

    [152] 周守为, 赵金洲, 李清平, 等. 全球首次海洋天然气水合物固态流化试采工程参数优化设计[J]. 天然气工业, 2017, 37(9):1-14 doi: 10.3787/j.issn.1000-0976.2017.09.001

    CrossRef Google Scholar

    ZHOU Shouwei, ZHAO Jinzhou, LI Qingping, et al. Optimal design of the engineering parameters for the first global trial production of marine natural gas hydrates through solid fluidization [J]. Natural Gas Industry, 2017, 37(9): 1-14. doi: 10.3787/j.issn.1000-0976.2017.09.001

    CrossRef Google Scholar

    [153] 赵金洲, 周守为, 张烈辉, 等. 世界首个海洋天然气水合物固态流化开采大型物理模拟实验系统[J]. 天然气工业, 2017, 37(9):15-22 doi: 10.3787/j.issn.1000-0976.2017.09.002

    CrossRef Google Scholar

    ZHAO Jinzhou, ZHOU Shouwei, ZHANG Liehui, et al. The first global physical simulation experimental systems for the exploitation of marine natural gas hydrates through solid fluidization [J]. Natural Gas Industry, 2017, 37(9): 15-22. doi: 10.3787/j.issn.1000-0976.2017.09.002

    CrossRef Google Scholar

    [154] 伍开松, 王燕楠, 赵金洲, 等. 海洋非成岩天然气水合物藏固态流化采空区安全性评价[J]. 天然气工业, 2017, 37(12):81-86 doi: 10.3787/j.issn.1000-0976.2017.12.012

    CrossRef Google Scholar

    WU Kaisong, WANG Yannan, ZHAO Jinzhou, et al. Safety evaluation on the solid fluidized goaf zone in marine non-diagenetic hydrate reservoirs [J]. Natural Gas Industry, 2017, 37(12): 81-86. doi: 10.3787/j.issn.1000-0976.2017.12.012

    CrossRef Google Scholar

    [155] 周守为, 陈伟, 李清平, 等. 深水浅层非成岩天然气水合物固态流化试采技术研究及进展[J]. 中国海上油气, 2017, 29(4):1-8

    Google Scholar

    ZHOU Shouwei, CHEN Wei, LI Qingping, et al. Research on the solid fluidization well testing and production for shallow non-diagenetic natural gas hydrate in deep water area [J]. China Offshore Oil and Gas, 2017, 29(4): 1-8.

    Google Scholar

    [156] 张旭辉, 鲁晓兵, 刘乐乐. 天然气水合物开采方法研究进展[J]. 地球物理学进展, 2014, 29(2):858-869 doi: 10.6038/pg20140252

    CrossRef Google Scholar

    ZHANG Xuhui, LU Xiaobing, LIU Lele. Advances in natural gas hydrate recovery methods [J]. Progress in Geophysics, 2014, 29(2): 858-869. doi: 10.6038/pg20140252

    CrossRef Google Scholar

    [157] 张旭辉, 鲁晓兵, 李鹏. 天然气水合物开采方法的研究综述[J]. 中国科学, 2019, 49(3):034604

    Google Scholar

    ZHANG Xuhui, LU Xiaobing, LI Peng. A comprehensive review in natural gas hydrate recovery method [J]. Scientia Sinica Physica, Mechanica & Astronomica, 2019, 49(3): 034604.

    Google Scholar

    [158] 张旭辉, 鲁晓兵. 一种新的海洋浅层水合物开采法: 机械-热联合法[J]. 力学学报, 2016, 48(5):1238-1246 doi: 10.6052/0459-1879-15-112

    CrossRef Google Scholar

    ZHANG Xuhui, LU Xiaobing. A new exploitation method for gas hydrate in shallow stratum: Mechanical-thermal method [J]. Chinese Journal of Theoretical and Applied Mechanics, 2016, 48(5): 1238-1246. doi: 10.6052/0459-1879-15-112

    CrossRef Google Scholar

  • 加载中
通讯作者: 陈斌, bchen63@163.com
  • 1. 

    沈阳化工大学材料科学与工程学院 沈阳 110142

  1. 本站搜索
  2. 百度学术搜索
  3. 万方数据库搜索
  4. CNKI搜索

Figures(11)

Tables(2)

Article Metrics

Article views(5734) PDF downloads(171) Cited by(0)

Access History

Other Articles By Authors

Catalog

    /

    DownLoad:  Full-Size Img  PowerPoint