| [1] 蔡博峰,李 琦,张 贤. 中国二氧化碳捕集、利用与封存(CCUS)年度报告(2021)——中国CCUS路径研究[R]. 北京:生态环境部环境规划院,2021:62.(CAI B,LI Q,ZHANG X. China status of CO2 capture,utilization and storage(CCUS) 2021——China CCUS pathway[R]. Beijing:Chinese Academy of Environmental Planning,Ministry of Ecology and Environment of the Peoples¢s Republic of China,2021:62.(in Chinese))
[2] LI X,LEI X,LI Q. Laboratory hydraulic fracturing in layered tight sandstones using acoustic emission monitoring[J]. Geoenergy Science and Engineering,2023,223:211510.
[3] MA J,LI L,WANG H,et al. Carbon capture and storage:History and the road ahead[J]. Engineering,2022,14:33–43.
[4] ZHANG Q,LI X,BAI B,et al. Development of a direct-shear apparatus coupling with high pore pressure and elevated temperatures[J]. Rock Mechanics and Rock Engineering,2019,52(9):3 475–3 484.
[5] 沈 闹. 注水/CO2条件下砂岩裂隙的摩擦与滑动行为研究[博士学位论文][D]. 北京:中国科学院大学,2022.(SHEN Nao. Investigation on the frictional and sliding behaviors of sandstone fractures under water/CO2 injection conditions[Ph. D. Thesis][D]. Beijing:University of Chinese Academy of Sciences,2022.(in Chinese))
[6] 李 振,彭 华,马秀敏,等. 地震断层摩擦残余热异常测量方法探讨——以WFSD–1钻孔温度测量为例[J]. 地质力学学报,2011,17(1):15.(LI Zhen,PENG Hua,MA Xiumin,et al. Method exploring of the residual friction thermal anomaly measurement:A case study about the temperature measurement in WFSD–1[J]. Journal of Geomechanics,2011,17(1):15.(in Chinese))
[7] 姚 路,马胜利. 断层同震滑动的实验模拟——岩石高速摩擦实验的意义、方法与研究进展[J]. 地球物理学进展,2013,28(2):607–623.(YAO Lu,MA Shengli. Experimental simulation of coseismic fault sliding-significance,technological methods and research progress of high-velocity frictional experiments[J]. Progress in Geophysics,2013,28(2):607–623.(in Chinese))
[8] 唐荣江,朱守彪. 不同摩擦本构关系对断层自发破裂动力学过程的影响[J]. 地球物理学报,2020,63(10):3 712–3 726.(TANG Rongjiang,ZHU Shoubiao. The effect of different friction laws on dynamic simulations of spontaneous rupture propagation[J]. Chinese Journal of Geophysics,2020,63(10):3 712–3 726.(in Chinese))
[9] DIETERICH J H. Modeling of rock friction:2. Simulation of preseismic slip[J]. Journal of Geophysical Research:Solid Earth,1979,84(B5):2 169–2 175.
[10] RUINA A. Slip instability and state variable friction laws[J]. Journal of Geophysical Research:Solid Earth,1983,88(B12):10 359–10 370.
[11] LI B,HUANG W,LI X,et al. A review of CO2 leakage along faults in CCUS:Theories,experiments,and models[J]. Gas Science and Engineering,2025,139:205641.
[12] 张 强. 含水/CO2典型岩体裂隙剪切特性的实验研究[博士学位论文][D]. 北京:中国科学院大学,2019.(ZHANG Qiang. Experimental study of the shear behavior of a fracture in typical rock masses under CO2 or H2O conditions[Ph. D. Thesis][D]. Beijing:University of Chinese Academy of Sciences,2019.(in Chinese))
[13] JO Y,CHANG C. Effect of host rock properties on shear behavior of discontinuities in sandstones[J]. International Journal of Rock Mechanics and Mining Sciences,2017,100:238–249.
[14] SCUDERI M M,COLLETTINI C,MARONE C. Frictional stability and earthquake triggering during fluid pressure stimulation of an experimental fault[J]. Earth and Planetary Science Letters,2017,477:84–96.
[15] MARTY S,SCHUBNEL A,BHAT H S,et al. Nucleation of laboratory earthquakes:Quantitative analysis and scalings[J]. Journal of Geophysical Research:Solid Earth,2023,128(3):e2022JB026294.
[16] AUBRY J,PASSELèGUE F X,ESCARTíN J,et al. Fault stability across the seismogenic zone[J]. Journal of Geophysical Research:Solid Earth,2020,125(8):e2020JB019670.
[17] CHEN X,CHITTA S S,ZU X,et al. Dynamic fault weakening during earthquakes:rupture or friction?[J]. Earth and Planetary Science Letters,2021,575:117165.
[18] JI Y,WANG L,HOFMANN H,et al. High-rate fluid injection reduces the nucleation length of laboratory earthquakes on critically stressed faults in granite[J]. Geophysical Research Letters,2022,49(23):e2022GL100418.
[19] LI Z,ELSWORTH D,WANG C,et al. A new apparatus for the concurrent measurement of friction and permeability evolution in fault gouge[J]. International Journal of Rock Mechanics and Mining Sciences,2019,121:104046.
[20] DONG L,LUO Q. Investigations and new insights on earthquake mechanics from fault slip experiments[J]. Earth-Science Reviews,2022,228:104019.
[21] SAMUELSON J,SPIERS C J. Fault friction and slip stability not affected by CO2 storage:Evidence from short-term laboratory experiments on North Sea reservoir sandstones and caprocks[J]. International Journal of Greenhouse Gas Control,2012,11:S78–S90.
[22] PLUYMAKERS A M,SAMUELSON J E,NIEMEIJER A R,et al. Effects of temperature and CO2 on the frictional behavior of simulated anhydrite fault rock[J]. Journal of Geophysical Research:Solid Earth,2014,119(12):8 728–8 747.
[23] HUNFELD L B,NIEMEIJER A R,SPIERS C J. Frictional properties of simulated fault gouges from the seismogenic groningen gas field under in situ P-T-chemical conditions[J]. Journal of Geophysical Research:Solid Earth,2017,122(11):8 969–8 989.
[24] AN M K,HUANG H Y,ZHANG F S,et al. Effect of slick-water fracturing fluid on the frictional properties of shale reservoir rock gouges[J]. Geomechanics and Geophysics for Geo-Energy and Geo-Resources,2020,6(1):28.
[25] CORNELIO C,PASSELÈGUE F X,SPAGNUOLO E,et al. Effect of fluid viscosity on fault reactivation and coseismic weakening[J]. Journal of Geophysical Research:Solid Earth,2020,125(1):e2019JB018883.
[26] FENG W,YAO L,CORNELIO C,et al. Physical state of water controls friction of gabbro-built faults[J]. Nature Communications,2023,14(1):4612.
[27] 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):1 509–1 596.
[28] MORAD D,SAGY A,TAL Y,et al. Fault roughness controls sliding instability[J]. Earth and Planetary Science Letters,2022,579:117365.
[29] LI X,LEI X,LI Q. Fault nucleation of tight sandstone by investigation of mechanical,acoustic,and hydraulic responses[J]. Engineering Geology,2021,292:106254.
[30] LI X,LEI X,LI Q. Injection-induced fracturing process in a tight sandstone under different saturation conditions[J]. Environmental Earth Sciences,2016,75(23):1466.
[31] BHATTACHARYA P,RUBIN A M,BAYART E,et al. Critical evaluation of state evolution laws in rate and state friction:Fitting large velocity steps in simulated fault gouge with time-,slip-,and stress-dependent constitutive laws[J]. Journal of Geophysical Research:Solid Earth,2015,120(9):6 365–6 385.
[32] ZHANG Y,LI Q,LI X,et al. Reactivation of rate-and-state faults induced by CO2 injection:Effects of pore pressure diffusion and fluid pressurization[J]. Journal of Rock Mechanics and Geotechnical Engineering,2026,18(2):954–970.
[33] SKARBEK R M,SAVAGE H M. Rsfit3000:A MATLAB GUI-based program for determining rate and state frictional parameters from experimental data[J]. Geosphere,2019,15(5):1 665–1 676.
[34] FAN L,LIU S. Fluid-dependent shear slip behaviors of coal fractures and their implications on fracture frictional strength reduction and permeability evolutions[J]. International Journal of Coal Geology,2019,212:103235.
[35] BAKKER E,HANGX S J T,NIEMEIJER A R,et al. Frictional behaviour and transport properties of simulated fault gouges derived from a natural CO2 reservoir[J]. International Journal of Greenhouse Gas Control,2016,54:70–83.
[36] HE M,LI Q,LI X. A new simulator for hydromechanical coupling analysis of injection-induced fault activation[J]. Geomechanics and Geophysics for Geo-Energy and Geo-Resources,2022,8(2):43.
[37] WEI X,LI Q,LI X,et al. Modeling the hydromechanical responses of sandwich structure faults during underground fluid injection[J]. Environmental Earth Sciences,2016,75(16):1155.
[38] ISHIBASHI T,ELSWORTH D,FANG Y,et al. Friction-stability-permeability evolution of a fracture in granite[J]. Water Resources Research,2018,54(12):9 901–9 918. |