| [1] |
IEA. Global Energy Review 2025[R]. Paris, 2025. https://www.iea.org/reports/global-energy-review-2025.
URL
|
| [2] |
孔维龄, 李姗姗, 薛生, 等. “双碳” 背景下中国中长期CO2排放情景模拟及减排路径: LEAP模型应用[J]. 环境科学, 2026, 47(2): 822-833.
|
|
[KONG W L, LI S S, XUE S, et al. Medium-and long-term CO2 emission projections and emission reduction pathways in China: Application of the LEAP model[J]. Environmental Science, 2026, 47(2): 822-833.]
|
| [3] |
杨子江, 石宇, 彭俊岚, 等. CO2地质封存过程的取热-储能利用理论与技术进展[J]. 成都理工大学学报(自然科学版), 2024, 51(6): 913-926.
|
|
[YANG Z J, SHI Y, PENG J L, et al. Advances in theory and technology of heat extraction and energy storage utilization in CO2 geological storage processes[J]. Journal of Chengdu University of Technology (Science & Technology Edition), 2024, 51(6): 913-926.]
|
| [4] |
贺陆胜, 万建华, 张建强, 等. CO2地质封存研究与中国CO2地质封存潜力评述[J]. 甘肃地质, 2024, 33(1): 59-71.
|
|
[HE L S, WAN J H, ZHANG J Q, et al. CO2 geological sequestration and evaluation of CO2 geological sequestration potential in China[J]. Gansu Geology, 2024, 33(1): 59-71.]
|
| [5] |
TURAN A, BROWN C S, SHAIL R, et al. Probabilistic assessment of deep geothermal resources in the Cornubian Batholith and their development in Cornwall and Devon, United Kingdom[J]. Geothermics, 2024, 122: 103081.
doi: 10.1016/j.geothermics.2024.103081
URL
|
| [6] |
GAO B B, LI Y M, PANG Z H, et al. Geochemical mechanisms of water/CO2-rock interactions in EGS and its impacts on reservoir properties: A review[J]. Geothermics, 2024, 118: 102923.
doi: 10.1016/j.geothermics.2024.102923
URL
|
| [7] |
ZHOU D J, LI K, GAO H H, et al. CO2 high-temperature aquifer thermal energy storage (CO2 HT-ATES) feasible study: Combing the heating storage and CCUS[J]. Gas Science and Engineering, 2024, 122: 205224.
doi: 10.1016/j.jgsce.2024.205224
URL
|
| [8] |
赵一凡, 吴笛, 王佳, 等. 二氧化碳超临界相变过程中Rayleigh-Bénard对流的实验研究[J]. 实验流体力学, 2023, 37(5): 101-110.
|
|
[ZHAO Y F, WU D, WANG J, et al. Experimental study on Rayleigh-Bénard convection during supercritical phase transition of carbon dioxide[J]. Journal of Experiments in Fluid Mechanics, 2023, 37(5): 101-110.]
|
| [9] |
王香增, 郭兴, 孙晓. CO2压裂基础研究与技术进展[J]. 石油科学通报, 2024, 9(6): 931-943.
|
|
[WANG X Z, GUO X, SUN X. Basic research and technological progress of CO2 fracturing[J]. Petroleum Science Bulletin, 2024, 9(6): 931-943.]
|
| [10] |
BROWN D W. A Hot Dry Rock geothermal energy concept utilizing supercritical CO2 instead of water[C]// Proceedings of the Twenty-Fifth Workshop on Geothermal Reservoir Engineering. 2000: 233-238.
|
| [11] |
石宇. 多分支井循环二氧化碳开采地热机理与参数研究[D]. 北京: 中国石油大学(北京), 2020.
|
|
[SHI Y. Study on mechanism and parameters of geothermal exploitation using multilateral wells with CO2 as working fluid[D]. Beijing: China University of Petroleum (Beijing), 2020.]
|
| [12] |
石宇, 宋先知, 李根生, 等. 多分支井地热系统CO2与水的取热效果对比[J]. 天然气工业, 2021, 41(11): 179-190.
|
|
[SHI Y, SONG X Z, LI G S, et al. Comparison of heat extraction performance between CO2 and water in a multilateral-well geothermal system[J]. Natural Gas Industry, 2021, 41(11): 179-190.]
|
| [13] |
SOAVE G. Equilibrium constants from a modified Redlich-Kwong equation of state[J]. Chemical Engineering Science, 1972, 27(6): 1197-1203.
doi: 10.1016/0009-2509(72)80096-4
URL
|
| [14] |
PENG D Y, ROBINSON D B. A new two-constant equation of state[J]. Industrial & Engineering Chemistry Fundamentals, 1976, 15(1): 59-64.
|
| [15] |
SPAN R, WAGNER W. A new equation of state for carbon dioxide covering the fluid region from the triple-point temperature to 1100 K at pressures up to 800 MPa[J]. Journal of Physical and Chemical Reference Data, 1996, 25(6): 1509-1596.
doi: 10.1063/1.555991
URL
|
| [16] |
HEIDARYAN E, HATAMI T, RAHIMI M, et al. Viscosity of pure carbon dioxide at supercritical region: Measurement and correlation approach[J]. The Journal of Supercritical Fluids, 2011, 56(2): 144-151.
doi: 10.1016/j.supflu.2010.12.006
URL
|
| [17] |
JARRAHIAN A, HEIDARYAN E. A novel correlation approach to estimate thermal conductivity of pure carbon dioxide in the supercritical region[J]. The Journal of Supercritical Fluids, 2012, 64: 39-45.
doi: 10.1016/j.supflu.2012.02.008
URL
|
| [18] |
WANG G S, MA X D, SONG X Z, et al. Modeling flow and heat transfer of fractured reservoir: Implications for a multi-fracture enhanced geothermal system[J]. Journal of Cleaner Production, 2022, 365: 132708.
doi: 10.1016/j.jclepro.2022.132708
URL
|
| [19] |
闫娜. 枯竭油气藏与新能源融合发展技术进展与发展建议[J]. 石油钻探技术, 2024, 52(3): 146-152.
|
|
[YAN N. Technological progress and development suggestions on integrated development of depleted oil & gas reservoirs and new energy[J]. Petroleum Drilling Techniques, 2024, 52(3): 146-152.]
|
| [20] |
SHI Y, YANG Z J, PENG J L, et al. CO2 storage characteristics and migration patterns under different abandoned oil and gas well types[J]. Energy, 2024, 292: 130545.
doi: 10.1016/j.energy.2024.130545
URL
|
| [21] |
CUI Q L, SHI Y, YANG Z J, et al. An integrated system of CO2 geological sequestration and aquifer thermal energy storage: Storage characteristics and applicability analysis[J]. Energy Conversion and Management, 2024, 318: 118876.
doi: 10.1016/j.enconman.2024.118876
URL
|
| [22] |
BROOKS R H, COREY A T. Properties of porous media affecting fluid flow[J]. Journal of the Irrigation and Drainage Division, 1966, 92(2): 61-88.
doi: 10.1061/JRCEA4.0000425
URL
|
| [23] |
VAN GENUCHTEN M T. A closed-form equation for predicting the hydraulic conductivity of unsaturated soils[J]. Soil Science Society of America Journal, 1980, 44(5): 892-898.
doi: 10.2136/sssaj1980.03615995004400050002x
URL
|
| [24] |
HARVEY A H. Semiempirical correlation for Henry’s constants over large temperature ranges[J]. AIChE Journal, 1996, 42(5): 1491-1494.
doi: 10.1002/aic.v42:5
URL
|
| [25] |
陈博文, 王锐, 李琦, 等. CO2地质封存盖层密闭性研究现状与进展[J]. 高校地质学报, 2023, 29(1): 85-99.
|
|
[CHEN B W, WANG R, LI Q, et al. Status and advances of research on caprock sealing properties of CO2 geological storage[J]. Geological Journal of China Universities, 2023, 29(1): 85-99.]
|
| [26] |
ZHANG C, WANG M L. A critical review of breakthrough pressure for tight rocks and relevant factors[J]. Journal of Natural Gas Science and Engineering, 2022, 100: 104456.
doi: 10.1016/j.jngse.2022.104456
URL
|
| [27] |
刁玉杰, 张森琦, 郭建强, 等. 深部咸水层CO2地质储存地质安全性评价方法研究[J]. 中国地质, 2011, 38(3): 786-792.
|
|
[DIAO Y J, ZHANG S Q, GUO J Q, et al. Geological safety evaluation method for CO2 geological storage in deep saline aquifer[J]. Geology in China, 2011, 38(3): 786-792.]
|
| [28] |
XU F Q, SHI Y, SONG X Z, et al. Experimental characterization of damage during geothermal production of hot dry rocks: Comprehensive effects of the damage-elastic deformation on conductivity evolution[J]. Energy, 2024, 294: 130871.
doi: 10.1016/j.energy.2024.130871
URL
|
| [29] |
XU F Q, SHI Y, SONG X Z, et al. The characteristics and laws of fracture damage in the long-term production process of high-temperature geothermal resources[J]. Rock Mechanics and Rock Engineering, 2023, 56(1): 275-299.
doi: 10.1007/s00603-022-03098-x
|
| [30] |
杨术刚, 蔡明玉, 张坤峰, 等. CO2-水-岩相互作用对CO2地质封存体物性影响研究进展及展望[J]. 油气地质与采收率, 2023, 30(6): 80-91.
|
|
[YANG S G, CAI M Y, ZHANG K F, et al. Research progress and prospect of CO2-water-rock interaction on petrophysical properties of CO2 geological sequestration[J]. Petroleum Geology and Recovery Efficiency, 2023, 30(6): 80-91.]
|
| [31] |
杨磊磊. 酸性流体参与的成岩过程中水岩化学作用及对砂岩储层孔隙度的影响[D]. 长春: 吉林大学, 2015.
|
|
[YANG L L. Acid fluid induced water-rock interaction during diagenesis and its effect on the sandstone reservoir porosity[D]. Changchun: Jilin University, 2015.]
|
| [32] |
刘云乾, 廖志伟, 丁海, 等. 玄武岩矿化封存CO2机理及储层演化特征研究进展[J]. 成都理工大学学报(自然科学版), 2024, 51(6): 975-988.
|
|
[LIU Y Q, LIAO Z W, DING H, et al. Research progress on the CO2 mineralization mechanism and evolution of the physical properties of basalt[J]. Journal of Chengdu University of Technology (Science & Technology Edition), 2024, 51(6): 975-988.]
|
| [33] |
崔国栋. 高温废弃气藏注CO2开采地热机制研究[D]. 东营: 中国石油大学(华东), 2019.
|
|
[CUI G D. Geothermal exploitation from depleted high-temperature gas reservoirs by recycling CO2[D]. Dongying: China University of Petroleum (Huadong), 2019.]
|
| [34] |
RANDOLPH J B, SAAR M O. Coupling carbon dioxide sequestration with geothermal energy capture in naturally permeable, porous geologic formations: Implications for CO2 sequestration[J]. Energy Procedia, 2011, 4: 2206-2213.
doi: 10.1016/j.egypro.2011.02.108
URL
|
| [35] |
RANDOLPH J B, SAAR M O. Combining geothermal energy capture with geologic carbon dioxide sequestration[J]. Geophysical Research Letters, 2011, 38(10): L10401.
|
| [36] |
周倩, 王富强, 邹立帆, 等. CO2羽流地热系统开采特性研究进展及展望[J]. 资源环境与工程, 2023, 37(5): 530-536.
doi: 10.16536/j.cnki.issn.1671-1211.2023.05.006
|
|
[ZHOU Q, WANG F Q, ZOU L F, et al. Research progress on geothermal exploitation of CO2 plume geothermal systems[J]. Resources Environment & Engineering, 2023, 37(5): 530-536.]
|
| [37] |
石岩. 二氧化碳羽流地热系统运行机制及优化研究[D]. 长春: 吉林大学, 2014.
|
|
[SHI Y. The operating mechanism and optimization research on carbon dioxide plume geothermal system in Quantou Formation of Songliao Basin[D]. Changchun: Jilin University, 2014.]
|
| [38] |
GAUS I. Role and impact of CO2-rock interactions during CO2 storage in sedimentary rocks[J]. International Journal of Greenhouse Gas Control, 2010, 4(1): 73-89.
doi: 10.1016/j.ijggc.2009.09.015
URL
|
| [39] |
崔国栋, 任韶然, 张亮, 等. 二氧化碳羽流地热系统中地层水回流和岩石-流体作用对采热能力的影响[J]. 高校化学工程学报, 2016, 30(5): 1043-1052.
|
|
[CUI G D, REN S R, ZHANG L, et al. Effects of rock-fluid interaction and water back flow on heat mining efficiency of geothermal development via carbon dioxide injection[J]. Journal of Chemical Engineering of Chinese Universities, 2016, 30(5): 1043-1052.]
|
| [40] |
ALFREDSSON H A, OELKERS E H, HARDARSSON B S, et al. The geology and water chemistry of the Hellisheidi, SW-Iceland carbon storage site[J]. International Journal of Greenhouse Gas Control, 2013, 12: 399-418.
doi: 10.1016/j.ijggc.2012.11.019
URL
|
| [41] |
ESTEVES A F, SANTOS F M, MAGALHÃES PIRES J C. Carbon dioxide as geothermal working fluid: An overview[J]. Renewable and Sustainable Energy Reviews, 2019, 114: 109331.
doi: 10.1016/j.rser.2019.109331
URL
|
| [42] |
SMITH N, BOONE P, OGUNTIMEHIN A, et al. Quest CCS facility: Halite damage and injectivity remediation in CO2 injection wells[J]. International Journal of Greenhouse Gas Control, 2022, 119: 103718.
doi: 10.1016/j.ijggc.2022.103718
URL
|
| [43] |
何淼, 龚武镇, 许明标, 等. 干热岩开发技术研究现状与展望分析[J]. 可再生能源, 2021, 39(11): 1447-1454.
|
|
[HE M, GONG W Z, XU M B, et al. Research status and prospect analysis of hot dry rock development technology[J]. Renewable Energy Resources, 2021, 39(11): 1447-1454.]
|
| [44] |
GUO L L, ZHANG Y J, YU Z W, et al. Hot dry rock geothermal potential of the Xujiaweizi area in Songliao Basin, northeastern China[J]. Environmental Earth Sciences, 2016, 75(6): 470.
doi: 10.1007/s12665-016-5327-9
URL
|
| [45] |
PRUESS K. On production behavior of enhanced geothermal systems with CO2 as working fluid[J]. Energy Conversion and Management, 2008, 49(6): 1446-1454.
doi: 10.1016/j.enconman.2007.12.029
URL
|
| [46] |
许天福, 文冬光, 袁益龙. 干热岩地热能开发技术挑战与发展战略[J]. 地球科学, 2024, 49(6): 2131-2147.
|
|
[XU T F, WEN D G, YUAN Y L. Technical challenges and strategy of geothermal energy development from hot dry rock[J]. Earth Science, 2024, 49(6): 2131-2147.]
|
| [47] |
WANG Y, LI T, CHEN Y, et al. Numerical analysis of heat mining and geological carbon sequestration in supercritical CO2 circulating enhanced geothermal systems inlayed with complex discrete fracture networks[J]. Energy, 2019, 173: 92-108.
doi: 10.1016/j.energy.2019.02.055
URL
|
| [48] |
KAIEDA H, UEDA A, KUBOTA K, et al. Field experiments for studying on{CO2}sequestration in solid minerals at the ogachi{HDR}geothermal site, Japan[C]// Proceedings of the Thirty-Fourth Workshop on Geothermal Reservoir Engineering. 140-143.
|
| [49] |
MATTER J M, STUTE M, SNæBJÖRNSDOTTIR S Ó, et al. Rapid carbon mineralization for permanent disposal of anthropogenic carbon dioxide emissions[J]. Science, 2016, 352(6291): 1312-1314.
doi: 10.1126/science.aad8132
pmid: 27284192
|
| [50] |
MALARTIC Q, CHOWDHURY N R, COJOCARU R, et al. Falcon2-11B technical report[PP/OL]. arXiv (2024-07-20). https://doi.org/10.48550/arXiv.2407.14885.
URL
|
| [51] |
MOORE J, MCLENNAN J, ALLIS R, et al. The{Utah frontier observatory for geothermal research}({FORGE}): Results of recent drilling and geoscientific surveys[C]// Proceedings of the 44 th Workshop on Geothermal Reservoir Engineering. 2019: 11-13.
|
| [52] |
DUPRIEST F, NOYNAERT S. Drilling practices and workflows for geothermal operations[C]// IADC/SPE International Drilling Conference and Exhibition, Galveston, Texas, USA, 2022: D021S015R001.
|
| [53] |
ZHANG C, JIANG G Z, JIA X F, et al. Parametric study of the production performance of an enhanced geothermal system: A case study at the Qiabuqia geothermal area, northeast Tibetan Plateau[J]. Renewable Energy, 2019, 132(C): 959-978.
|
| [54] |
石宇, 崔启亮, 杨子江, 等. 基于灰色关联度分析和多目标优化的浅层含水层储热性能整体优化[J]. 天然气工业, 2023, 43(6): 156-168.
|
|
[SHI Y, CUI Q L, YANG Z J, et al. Optimizing the thermal energy storage performance of shallow aquifer based on gray correlation analysis and multi-objective optimization[J]. Natural Gas Industry, 2023, 43(6): 156-168.]
|
| [55] |
BAUER D, MARX R, NUßBICKER-LUX J, et al. German central solar heating plants with seasonal heat storage[J]. Solar Energy, 2010, 84(4): 612-623.
doi: 10.1016/j.solener.2009.05.013
URL
|
| [56] |
FLEUCHAUS P, GODSCHALK B, STOBER I, et al. Worldwide application of aquifer thermal energy storage-A review[J]. Renewable and Sustainable Energy Reviews, 2018, 94: 861-876.
doi: 10.1016/j.rser.2018.06.057
URL
|
| [57] |
郝佳豪, 越云凯, 张家俊, 等. 二氧化碳储能技术研究现状与发展前景[J]. 储能科学与技术, 2022, 11(10): 3285-3296.
doi: 10.19799/j.cnki.2095-4239.2022.0199
|
|
[HAO J H, YUE Y K, ZHANG J J, et al. Research status and development prospect of carbon dioxide energy-storage technology[J]. Energy Storage Science and Technology, 2022, 11(10): 3285-3296.]
doi: 10.19799/j.cnki.2095-4239.2022.0199
|
| [58] |
杨雪雯, 任灏, 廖泽球, 等. 压缩空气储能地下人工洞室研究现状与展望[J]. 南方能源建设, 2024, 11(4): 54-64.
|
|
[YANG X W, REN H, LIAO Z Q, et al. Research status and prospect of underground artificial rock Caverns for compressed air energy storage[J]. Southern Energy Construction, 2024, 11(4): 54-64.]
|
| [59] |
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, 102.
|
|
[LIU X C, MEI S W, DING R C, 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, 102.]
|
| [60] |
梅生伟, 李瑞, 陈来军, 等. 先进绝热压缩空气储能技术研究进展及展望[J]. 中国电机工程学报, 2018, 38(10): 2893-2907.
|
|
[MEI S W, LI R, CHEN L J, et al. An overview and outlook on advanced adiabatic compressed air energy storage technique[J]. Proceedings of the CSEE, 2018, 38(10): 2893-2907.]
|
| [61] |
中国储能网. 世界首座300 MW 压气储能项目—中国能建湖北应城示范工程[EB/OL]. [2025-01-09]. https://www.escn.com.cn/news/show-2068068.html.
URL
|
|
[China Energy Engineering Group. World’s first 300 MW compressed air energy storage project—Hubei Yingcheng Demonstration Project[EB/OL]. [2025-01-09]. Retrieved from https://www.escn.com.cn/news/show-2068068.html.]
URL
|
| [62] |
CUI Q L, LI S, SONG X Z, et al. Research on the site renovation of geological compressed gas energy storage by sequestering CO2 in depleted oil and gas reservoirs[C]// ASME 2025 44 th International Conference on Ocean, Offshore and Arctic Engineering, Vancouver, British Columbia, Canada, 2025.
|
| [63] |
MA B B, CAO Y C, ZHANG Y L, et al. Role of CO2-water-rock interactions and implications for CO2 sequestration in Eocene deeply buried sandstones in the Bonan Sag, eastern Bohai Bay Basin, China[J]. Chemical Geology, 2020, 541: 119585.
doi: 10.1016/j.chemgeo.2020.119585
URL
|
| [64] |
TIAN H L, PAN F, XU T F, et al. Impacts of hydrological heterogeneities on caprock mineral alteration and containment of CO2 in geological storage sites[J]. International Journal of Greenhouse Gas Control, 2014, 24: 30-42.
doi: 10.1016/j.ijggc.2014.02.018
URL
|
| [65] |
NOROUZI A M, BABAEI M, HAN W S, et al. CO2-plume geothermal processes: A parametric study of salt precipitation influenced by capillary-driven backflow[J]. Chemical Engineering Journal, 2021, 425: 130031.
doi: 10.1016/j.cej.2021.130031
URL
|
| [66] |
FREIFELD B M, TRAUTZ R C, KHARAKA Y K, et al. The U-tube: A novel system for acquiring borehole fluid samples from a deep geologic CO2 sequestration experiment[J]. Journal of Geophysical Research: Solid Earth, 2005, 110(B10): 2005JB003735.
|
| [67] |
BURNETT D B, VEIL J A. Decision and risk analysis study of the injection of desalination by-products into oil- and gas-producing zones[C]// SPE International Symposium and Exhibition on Formation Damage Control, Lafayette, Louisiana, 2004: SPE-86526-MS.
|
| [68] |
AKINDIPE D, SARAJI S, PIRI M. Salt precipitation during geological sequestration of supercritical CO2 in saline aquifers: A pore-scale experimental investigation[J]. Advances in Water Resources, 2021, 155: 104011.
doi: 10.1016/j.advwatres.2021.104011
URL
|
| [69] |
OTT H, ROELS S M, DE KLOE K. Salt precipitation due to supercritical gas injection: I. Capillary-driven flow in unimodal sandstone[J]. International Journal of Greenhouse Gas Control, 2015, 43: 247-255.
doi: 10.1016/j.ijggc.2015.01.005
URL
|
| [70] |
XIAO C Y, NI H J, SHI X. Unsteady model for wellbore pressure transmission of carbon dioxide fracturing considering limited-flow outlet[J]. Energy, 2022, 239: 122289.
doi: 10.1016/j.energy.2021.122289
URL
|
| [71] |
王高升, 周一凡, 赵佳琳, 等. 基于热-流-固耦合的CO2多级压裂增强型地热系统取热数值模拟[J]. 华南师范大学学报(自然科学版), 2025, 57(2): 1-11.
|
|
[WANG G S, ZHOU Y F, ZHAO J L, et al. Numerical simulation of heat extraction in CO2 multi-stage hydraulic fracturing EGS based on thermal-hydraulic-mechanical coupled model[J]. Journal of South China Normal University (Natural Science Edition), 2025, 57(2): 1-11.]
|
| [72] |
肖晓春, 李文圣, 公佩煜舜. 干热岩孔隙率影响的CO2-EGS耦合模型研究[J/OL]. 应用力学学报, 2024-04-03. https://kns.cnki.net/KCMS/detail/detail.aspx?filename=YYLX20240329002&dbname=CJFD&dbcode=CJFQ.
URL
|
|
[XIAO X C, LI W S, GONG P. Study on the CO2-EGS coupling model affected by porosity of hot dry rock[J/OL]. Chinese Journal of Applied Mechanics, 2024-04-03.https://kns.cnki.net/KCMS/detail/detail.aspx?filename=YYLX20240329002&dbname=CJFD&dbcode=CJFQ.]
URL
|
| [73] |
LIU Y L, HU T, RUI Z H, et al. An integrated framework for geothermal energy storage with CO2 sequestration and utilization[J]. Engineering, 2023, 30: 121-130.
doi: 10.1016/j.eng.2022.12.010
URL
|
| [74] |
吴全, 孙春良, 郭海涛, 等. 压缩气体储能技术经济特点和发展方向探析[J]. 油气与新能源, 2023, 35(6): 90-98.
|
|
[WU Q, SUN C L, GUO H T, et al. Analyzing the technological and financial features and prospects for compressed gas energy storage technologies[J]. Petroleum and New Energy, 2023, 35(6): 90-98.]
|
| [75] |
韩月. 盐穴压气蓄能围岩短期破坏及长期疲劳变形研究[D]. 重庆: 重庆大学, 2021.
|
|
[HAN Y. Research on short-term failure and long-term fatigue deformation of surrounding rocks in salt cavern for compressed air energy storage (CAES)[D]. Chongqing: Chongqing University, 2021.]
|
| [76] |
OLDENBURG C M, PAN L H. Porous media compressed-air energy storage (PM-CAES): Theory and simulation of the coupled wellbore-reservoir system[J]. Transport in Porous Media, 2013, 97(2): 201-221.
doi: 10.1007/s11242-012-0118-6
URL
|
| [77] |
LIU H, HE Q, BORGIA A, et al. Thermodynamic analysis of a compressed carbon dioxide energy storage system using two saline aquifers at different depths as storage reservoirs[J]. Energy Conversion and Management, 2016, 127: 149-159.
doi: 10.1016/j.enconman.2016.08.096
URL
|
| [78] |
LI Y, YU H, TANG D, et al. A comparison of compressed carbon dioxide energy storage and compressed air energy storage in aquifers using numerical methods[J]. Renewable Energy, 2022, 187: 1130-1153.
doi: 10.1016/j.renene.2022.02.036
URL
|
| [79] |
SHI Y, CUI Q L, SONG X Z, et al. Performances of a novel compressed CO2 energy storage and heat storage integration system using multi-stage hydraulic fractures of horizontal well in subsurface reservoirs[J]. Renewable Energy, 2025, 251: 123396.
doi: 10.1016/j.renene.2025.123396
URL
|
| [80] |
CAO Z, DENG J Q, ZHOU S H, et al. Research on the feasibility of compressed carbon dioxide energy storage system with underground sequestration in antiquated mine goaf[J]. Energy Conversion and Management, 2020, 211: 112788.
doi: 10.1016/j.enconman.2020.112788
URL
|
| [81] |
SHI Y, SONG X Z, WANG G S, et al. Study on wellbore fluid flow and heat transfer of a multilateral-well CO2 enhanced geothermal system[J]. Applied Energy, 2019, 249: 14-27.
doi: 10.1016/j.apenergy.2019.04.117
URL
|
| [82] |
WANG G S, MA X D, SONG X Z, et al. Production enhancement analysis of a supercritical CO2 multi-stage EGS with horizontal wells[J]. Renewable Energy, 2026, 256: 124111.
doi: 10.1016/j.renene.2025.124111
URL
|
| [83] |
SHI Y, SONG X Z, SHEN Z H, et al. Numerical investigation on heat extraction performance of a CO2 enhanced geothermal system with multilateral wells[J]. Energy, 2018, 163: 38-51.
doi: 10.1016/j.energy.2018.08.060
URL
|
| [84] |
CUI Q L, SHI Y, LI S, et al. Study on impacts of seasonal heat storage on CO2 geological sequestration and parameter optimization[J]. Energy, 2025, 334: 137698.
doi: 10.1016/j.energy.2025.137698
URL
|