[1] 许志刚, 陈代钊, 曾荣树, 等.CO2地下埋存分布状况及环境影响的监测[J]. 气候变化研究进展, 2008 (6): 363-368.
[2] 张玉铭, 胡春胜, 张佳宝, 等.农田土壤主要温室气体(CO2、CH4、N2O)的源/汇强度及其温室效应研究进展[J]. 中国生态农业学报, 2011, 19(4): 966-975.
[3] 胡鞍钢.中国实现2030年前碳达峰目标及主要途径[J]. 北京工业大学学报(社会科学版), 2021, 21(3): 1-15.
[4] 韩桂芬, 张敏, 包立.关于CCUS技术发展与标准建设的思考[J]. 电力科技与环保, 2013, 29(5): 28-31.
[5] Nanda S, Reddy S N, Mitra S K, et al. The progressive routes for carbon capture and sequestration[J]. Energy Science & Engineering, 2016, 4(2): 99-122.
[6] Bachu S. CO2 storage in geological media: Role, means, status and barriers to deployment[J]. Progress in Energy and Combustion Science, 2008, 34(2): 254-273.
[7] Chadwick R A, Arts R, Bentham M, et al. Review of monitoring issuesand technologies associated with the long-term underground storage of carbon dioxide[J]. Geological Society, London, Special Publications, 2009, 313(1): 257-275.
[8] Zhan J, Chen Z X, Zhang Y, et al.Will the future of shale reservoirs lie in CO2 geological sequestration?[J]. Science China Technological Sciences, 2020, 63(7): 1154-1163.
[9] Zhan J, Niu Z, Li M, et al.Numerical simulation and modeling on CO2 sequestration coupled with enhanced gas recovery in shale gas reservoirs[J]. Geofluids, 2021, DOI: 10.1155/2021/9975296.
[10] 李万伦, 徐佳佳, 贾凌霄, 等.玄武岩封存CO2技术方法及其进展[J]. 水文地质工程地质, 2022, 49(3): 164-173.
[11] Ojo A C,Tse A C. Geological characterisation of depleted oil and gas reservoirs for carbon sequestration potentials in a field in the Niger Delta, Nigeria[J]. Journal of Applied Sciences and Environmental Management, 2016, 20(1): 45-55.
[12] 曹默雷, 陈建平.CO2深部咸水层封存选址的地质评价[J]. 地质学报, 2022, 96(5): 1868-1882.
[13] 孙腾民, 刘世奇, 汪涛.中国二氧化碳地质封存潜力评价研究进展[J]. 煤炭科学技术, 2021, 49(11): 10-20.
[14] Akter S, Ahmed K R, Marandi A, et al. Possible factors for increasing water salinity in an embanked coastal island in the southwest Bengal Delta of Bangladesh[J]. Science of The Total Environment, 2020, 713: 136668.
[15] Folger P F. Carbon capture and sequestration (CCS)[A] // Gupta A D, ed. Encyclopedia of Corporate Social Responsibility[C]. Berlin: Springer, 2009: 301.
[16] Birkholzer J T, Zhou Q, Tsang C F. Large-scale impact of CO2 storage in deep saline aquifers: a sensitivity study on pressure response in stratified systems[J]. International Journal of Greenhouse Gas Control, 2009, 3(2): 181-194.
[17] 武博浩.CO2咸水层封存两相流动与传质特性研究[D]. 大连:大连理工大学, 2020.
[18] Nooraiepour M. Rock properties and sealing efficiency in fine-grained siliciclastic caprocks-implications for CCS and petroleum industry[D]. Oslo: University of Oslo, 2018.
[19] Lu P, Liu W, Gao C, et al.Evaluation of carbon dioxide storage in the deep saline layer of the Ordovician Majiagou Formation in the Ordos Basin[A] //IOP Conference Series: Earth and Environmental Science [C]. IOP Publishing, 2021: 012058.
[20] Vishal V, Singh T N. Trapping mechanism of CO2 storage in deep saline aquifers: brief review[M]. Bangalore: Geologic Carbon Sequestration, 2016.
[21] Xie X, Economides M J. The impact of carbon geological sequestration[J]. Journal of Natural Gas Science and Engineering, 2009, 1(3): 103-111.
[22] 杨芳.盐水层二氧化碳封存机理与地质模拟[D]. 北京:中国地质大学(北京), 2010.
[23] 高诚, 胥蕊娜, 姜培学.超临界CO2在地下盐水层内弥散现象的数值模拟[J]. 清华大学学报(自然科学版), 2015, 55(10): 1105-1109, 1116.
[24] 金旸钧, 王军良, 潘志彦.拉曼光谱与石英毛细管平衡釜联用测定地质封存条件下盐溶液体系中CO2溶解度[A] //中国矿物岩石地球化学学会第17届学术年会论文摘要集[C].杭州, 2019: 1037.
[25] Javadpour F, Nicot J P. Enhanced CO2 storage and sequestration in deep saline aquifers by nanoparticles: commingled disposal of depleted uranium and CO2[J]. Transport in Porous Media, 2011, 89(2): 265-284.
[26] Li Y, Pang Z. Capacity and suitability assessment of deep saline aquifers for CO2 sequestration in the Bohai Bay Basin, East China[J]. Environmental Earth Sciences, 2016, 75(5): 1-15.
[27] Zhou Q, Birkholzer J T, Tsang C F, et al.A method for quick assessment of CO2 storage capacity in closed and semi-closed saline formations[J]. International Journal of Greenhouse Gas Control, 2008, 2(4): 626-639.
[28] Mathias S A, Hardisty P E, Trudell M R, et al. Approximate solutions for pressure buildup during CO2 injection in brine aquifers[J]. Transport in Porous Media, 2009, 79(2): 265-284.
[29] Okwen R, Stewart M, Cunningham J. Effect of well orientation (vertical vs. horizontal) and well length on the injection of CO2 in deep saline aquifers[J]. Transport in Porous Media, 2011, 90(1): 219-232.
[30] Zheng L, Apps J A, Spycher N, et al. Geochemical modeling of changes in shallow groundwater chemistry observed during the MSU-ZERT CO2 injection experiment[J]. International Journal of Greenhouse Gas Control, 2012, 7: 202-217.
[31] Temitope A, Gomes J S, AlKobaisi M, et al. Characterization and quantification of the CO2 sequestration potential of a carbonate aquifer in Falaha Syncline, onshore Abu Dhabi[A] //Abu Dhabi International Petroleum Exhibition & Conference[C]. Abu Dhabi, UAE, OnePetro, 2016.
[32] Karaei M A,Honarvar B, Azdarpour A, et al. CO2 storage in low permeable carbonate reservoirs: permeability and interfacial tension (IFT) changes during CO2 injection in an Iranian carbonate reservoir[J]. Periodica Polytechnica Chemical Engineering, 2020, 64(4): 491-504.
[33] Liu B, Qin J, Shi J, et al.New perspectives on utilization of CO2 sequestration technologies in cement-based materials[J]. Construction and Building Materials, 2021, 272: 121660.
[34] 李士伦, 张正卿, 冉新权, 等.注气提高石油采收率技术[M]. 成都:四川科学技术出版社, 2001.
[35] 叶航, 刘琦, 彭勃, 等.米颗粒抑制CO2驱油过程中沥青质沉积的研究进展[J]. 油气地质与采收率, 2020, 27(5): 86-96.
[36] Ren B, Zhang L, Huang H, et al.Performance evaluation and mechanisms study of near-miscible CO2 flooding in a tight oil reservoir of Jilin Oilfield China[J]. Journal of Natural Gas Science and Engineering, 2015, 27: 1796-1805.
[37] 罗二辉, 胡永乐, 李保柱, 等.中国油气田注CO2提高采收率实践[J]. 特种油气藏, 2013, 20(2): 1-7.
[38] Abdullah N, Hasan N. Effects of miscible CO2 injection on production recovery[J]. Journal of Petroleum Exploration and Production Technology, 2021,11:3543-3557.
[39] Shyeh-Yung J J, Stadler M P. Effect of injection composition and pressure displacement of oil by enriched hydrocarbon gases[J]. SPE Reservoir Engineering, 1995, 10(2): 109-115.
[40] Hier L, Whitson C. Compositional grading-theory and practice[J]. SPE Reservoir Evaluation & Engineering, 2001, 4(6): 525-535.
[41] 沈平平, 江怀友, 陈永武, 等.CO2注入技术提高采收率研究[J].特种油气藏, 2007, 14(3): 1-4.
[42] 沈平平, 杨永智.温室气体在石油开采中资源化利用的科学问题[J].中国基础科学, 2006, 14(3): 23-31.
[43] 郭日鑫. 热自生CO2吞吐中技术研究及其应用[J]. 西南石油大学学报(自然科学版), 2015, 37(5): 139-144.
[44] 门相勇, 娄钰, 王一兵, 等.中国煤层气产业“十三五”以来发展成效与建议[J]. 天然气工业, 2022, 42(6): 173-178.
[45] Talapatra A. A study on the carbon dioxide injection into coal seam aiming at enhancing coal bed methane (ECBM) recovery[J]. Journal of Petroleum Exploration and Production Technology, 2020, 10(5): 1965-1981.
[46] 刘世奇, 方辉煌, 桑树勋等. 基于多物理场耦合求解的煤层CO2-ECBM数值模拟研究[J]. 煤炭科学技术, 2019, 47(9): 51-59.
[47] Reucroft P J, Patel H. Gas-induced swelling in coal[J]. Fuel, 1986, 65(6), 816-820.
[48] 邓博知.二氧化碳压裂增透煤层及驱替煤层甲烷机理研究[D]. 重庆:重庆大学, 2019.
[49] Farooqui M Y, Hou H, Li G, et al. Evaluating volcanic reservoirs[J]. Oilfield Review, 2009, 21(1): 36-47.
[50] Kelektsoglou K. Carbon capture and storage: a review of mineral storage of CO2 in Greece[J]. Sustainability, 2018, 10(12): 4400.
[51] Matter J M, Broecker W S, Stute M, et al. Permanent carbon dioxide storage into basalt: theCarbFix pilot project, Iceland[J]. Energy Procedia, 2009, 1(1): 3641-3646.
[52] Goldberg D S, Takahashi T, Slagle A L. Carbon dioxide sequestration in deep-sea basalt[J]. Proceedings of the National Academy of Sciences, 2008, 105(29): 9920-9925.
[53] Flaathen T K. Water-rock interaction during CO2 sequestration in basalt[D]. Université Paul Sabatier-Toulouse III, 2009.
[54] Wolff-Boenisch D, Gislason S R, Oelkers E H. The effect of crystallinity on dissolution rates and CO2 consumption capacity of silicates[J]. Geochimica et Cosmochimica Acta, 2006, 70(4): 858-870.
[55] Gislason S R, Wolff-Boenisch D, Stefansson A, et al. Mineral sequestration of carbon dioxide in basalt: a pre-injection overview ofthe CarbFix project[J]. International Journal of Greenhouse Gas Control, 2010, 4(3): 537-545.
[56] Stockmann G, Wolff-Boenisch D, Gislason S R, et al. Dissolution of diopside and basaltic glass: the effect of carbonate coating[J]. Mineralogical Magazine, 2008, 72(1): 135-139.
[57] Marini L. Geological sequestration of carbon dioxide: thermodynamics, kinetics, and reaction path modeling[M]. Elsevier, 2006.
[58] Gislason S R, Oelkers E H. Mechanism, rates, and consequences of basaltic glass dissolution: II. An experimental study of the dissolution rates of basaltic glass as a function of pH and temperature[J].Geochimica et Cosmochimica Acta, 2003, 67(20): 3817-3832.
[59] Schaef H T, McGrail B P, Loring J L, et al. Forsterite [Mg2SiO4)] carbonation in wet supercritical CO2: an in situ high-pressure X-ray diffraction study[J]. Environmental science & technology, 2013, 47(1): 174-181.
[60] Schaef H T, McGrail B P, Owen A T. Basalt reactivity variability with reservoir depth in supercritical CO2 and aqueous phases[J]. Energy Procedia, 2011, 4: 4977-4984.
[61] Kaszuba J P,Janecky D R. Geochemical impacts of sequestering carbon dioxide in brine formations[J]. Geophysical Monograph Series, 2009, 183: 239-248.
[62] Raza A, Glatz G, Gholami R, et al. Carbon mineralization and geological storage of CO2 in basalt: Mechanisms and technical challenges[J]. Earth-Science Reviews, 2022, 229: 104036.
[63] Benson S M, Cole D R. CO2 sequestration in deep sedimentary formations[J]. Elements, 2008, 4(5): 325-331.
[64] Khatiwada M, Adam L, Morrison M, et al. A feasibility study of time-lapse seismic monitoring of CO2 sequestration in a layered basalt reservoir[J]. Journal of Applied Geophysics, 2012, 82: 145-152.
[65] Sandalow D, Aines R, Friedmann J, et al. Carbon mineralization roadmap draft October 2021[R]. Livermore: Lawrence Livermore National Lab. (LLNL), 2021.
[66] Sanna A,Uibu M, Caramanna G, et al. A review of mineral carbonation technologies to sequester CO2[J]. Chemical Society Reviews, 2014, 43(23): 8049-8080.
[67] Mc Grail B P, Spane F A, Amonette J E, et al. Injection and monitoring at theWallula basalt pilot project[J]. Energy Procedia, 2014, 63: 2939-2948.
[68] Pagge P A E, Burton K W, Snæbjörnsdóttir S O, et al. Rapid CO2 mineralization into calcite at the CarbFix storage site quantified using calcium isotopes[J]. Nature Communications, 2019, 10(1): 1-7.
[69] Metz B, Davidson O, De Coninck H C, et al. IPCC special report on carbon dioxide capture and storage[M]. Cambridge: Cambridge University Press, 2005.
[70] Folger P F. Carbon capture and sequestration (CCS) in the UnitedStates[R]. Washington: Congressional Research Service, 2017.
[71] Shukla R, Ranjith P, Haque A, et al. A review of studies on CO2 sequestration and caprock integrity[J]. Fuel, 2010, 89(10): 2651-2664.
[72] Orlic B, Ter Heege J, Wassing B. Assessing the integrity of fault-and top seals at CO2 storage sites[J]. Energy Procedia, 2011, 4: 4798-4805.
[73] Xiao T, Xu H, Moodie N, et al.Chemical-mechanical impacts of CO2 intrusion into heterogeneous caprock[J]. Water Resources Research, 2020, 56(11): e2020WR027193.
[74] Lekić A, Jukić L, Arnaut M, et al. Simulation of CO2 injection in a depleted gas reservoir: a case study for Upper Miocene sandstone, Northern Croatia[J]. Rudarsko-geološko-naftni zbornik (The Mining-Geological-Petroleum Engineering Bulletin), 2019, 34(1): 139-149.
[75] Lackner K S. A guide to CO2 sequestration[J]. Science, 2003, 300(5626): 1677-1678.
[76] Li Z, Dong M, Li S, et al. CO2 sequestration in depleted oil and gas reservoirs-caprock characterization and storage capacity[J]. Energy Conversion and Management, 2006, 47(11-12): 1372-1382.
[77] Gale J, Freund P. Coal-bed methane enhancement with CO2 sequestration worldwide potential[J]. Environmental Geosciences, 2001, 8(3): 210-217.
[78] Kovscek A R. Screening criteria for CO2 storage in oil reservoirs[J]. Petroleum Science and Technology, 2002, 20(7-8): 841-866.
[79] Chadwick A, Arts R, Bernstone C, et al.Best practice for the storage of CO2 in saline aquifers- observations and guidelines from the SACS and CO2 STORE projects[M]. British Geological Survey, 2008.
[80] Raza A, Rezaee R, Gholami R, et al. A screening criterion for selection of suitable CO2 storage sites[J]. Journal of Natural Gas Science and Engineering, 2016, 28: 317-327.
[81] 余碧莹, 赵光普, 安润颖, 等.碳中和目标下中国碳排放路径研究[J]. 北京理工大学学报(社会科学版), 2021, 23(2): 17-24.
[82] 谢和平, 任世华, 谢亚辰, 等.碳中和目标下煤炭行业发展机遇[J].煤炭学报, 2021, 46(7): 2197-2211.
[83] 邓存宝, 凡永鹏, 张勋. 煤层中封存CO2的流-固-热耦合数值模拟研究[J]. 工程热物理学报, 2019, 40(12): 2879-2886.
[84] 何学秋, 田向辉, 宋大钊. 煤层CO2安全封存研究进展与展望[J].煤炭科学技术, 2022, 50(1): 212-219.
[85] Pratama E, Ismail M S, Ridha S. Identification of coal seams suitability for carbon dioxide sequestration with enhanced coalbed methane recovery: a case study in South Sumatera Basin, Indonesia[J]. Clean Technologies and Environmental Policy, 2018, 20(3): 581-587.
[86] 王双明, 申艳军, 孙强, 等.“双碳”目标下煤炭开采扰动空间CO2地下封存途径与技术难题探索[J].煤炭学报, 2022, 47(1): 45-60.
[87] 姜福兴. 微震监测技术在矿井岩层破裂监测中的应用[J]. 岩土工程学报, 2002, 24(2): 147-149.
[88] 从琳.煤矿井下钻孔内瓦斯浓度监测传感器研制[J].煤田地质与勘探,2022, 50(2): 150-155.