| 参考文献(References):
[1] 贾爱林,位云生,郭 智,等. 中国致密砂岩气开发现状与前景展望[J]. 天然气工业,2022,42(1):83–92.(JIA Ailin,WEI Yunsheng,GUO Zhi,et al. Development status and prospect of tight sandstone gas in China[J]. Natural Gas Industry,2022,42(1):83–92.(in Chinese))
[2] 陈峥嵘,齐 宇,韩 磊,等. 非均质致密储层水平井分段压裂裂缝扩展模拟[J]. 大庆石油地质与开发,2024,43(2):53–60.(CHEN Zhengrong,QI Yu,HAN Lei,et al. Fracture propagation simulation of horizontal well staged fracturing in heterogeneous tight reservoirs[J]. Petroleum Geology and Oilfield Development in Daqing,2024,43(2):53–60.(in Chinese))
[3] 谭元隆,王宗秀,冯兴强,等. 复杂构造区油气构造保存条件分析:来自皖泾地1井的构造解析[J]. 地质力学学报,2021,27(3):441–452.(TAN Yuanlong,WANG Zongxiu,FENG Xingqiang,et al. Structural preservation conditions analysis of oil and gas in complex structural area:A case study of structural analysis in the Well Wanjingdi–1,Anhui,China[J]. Journal of Geo mechanics,2021,27(3):441–452.(in Chinese))
[4] HAIYAN Z,YUJIA S,ZHENGDONG L,et al. 4D-stress evolution of tight sandstone reservoir during horizontal wells injection and production:A case study of Yuan 284 block,Ordos Basin,NW China[J]. Petroleum Exploration and Development,2022,49(1):156–169.
[5] 蒲春生,郑 恒,杨兆平,等. 水平井分段体积压裂复杂裂缝形成机制研究现状与发展趋势[J]. 石油学报,2020,41(12):1 734–1 743.(PU Chunsheng,ZHENG Heng,YANG Zhaoping,et al. Research status and development trend of the formation mechanism of complex fractures by staged volume fracturing in horizontal wells[J]. Acta Petrolei Sinica,2020,41(12) 1 734–1 743.(in Chinese))
[6] 刘圣鑫,付汇琪,冯兴强,等. 致密砂岩裂缝网络复杂性及其影响因素研究[J]. 地质力学学报,2024,30(4):563–578.(LIU Shengxin,FU Huiqi,FENG Xingqiang,et al. Fracture network complexity of tight sandstone and its influencing factors[J]. Journal of Geomechanics,2024,30(4):563–578.(in Chinese))
[7] DUAN M,JIANG C,GAN Q,et al. Experimental investigation on the permeability,acoustic emission and energy dissipation of coal under tiered cyclic unloading[J]. Journal of Natural Gas Science and Engineering,2020,73:103054.
[8] 杨 帆,梅文博,李 亮,等. 薄互层致密砂岩水力压裂裂缝扩展特征研究[J]. 煤田地质与勘探,2023,51(7):61–71.(YANG Fan,MEI Wenbo,LI Liang,et al. Propagation of hydraulic fractures in thin interbedded tight sandstones[J]. Coal Geology and Exploration,2023,51(7):61–71.(in Chinese))
[9] RU Z,HU J,MADNI A S,et al. A study on the optimal conditions for formation of complex fracture networks in fractured reservoirs[J]. Journal of Structural Geology,2020,135:104039.
[10] WANG H. Hydraulic fracture propagation in naturally fractured reservoirs: complex fracture or fracture networks[J]. Journal of Natural Gas Science and Engineering,2019,68:102911.
[11] 徐世乾,郭建春,YOUNIS Rami,等. 基于嵌入式网格的裂缝性致密储层裂缝扩展模拟方法[J]. 岩石力学与工程学报,2025,44(增1):89–100.(XU Shiqian,GUO Jiangchun,YOUNIS Rami,et al. Simulation method of fracture propagation in fractured tight reservoir based on embedded mesh[J]. Chinese Journal of Rock Mechanics and Engineering,2025,44(Supp.1):89–100.(in Chinese))
[12] DAHI TALEGHANI A,OLSON J E. How Natural Fractures Could Affect Hydraulic-Fracture Geometry[J]. SPE Journal,2014,19(01):161–71.
[13] WENG X,KRESSE O,COHEN C E,et al. Modeling of hydraulic-fracture-network propagation in a naturally fractured formation[J]. SPE Production and Operations,2011,26(4):368–80.
[14] 程 万,金 衍,陈 勉,等. 三维空间中水力裂缝穿透天然裂缝的判别准则[J]. 石油勘探与开发,2014,41(3):336–340.(CHENG Wan,JIN Yan,CHEN Mian,et al. A criterion for identifying hydraulic fractures crossing natural fractures in 3D space[J]. Petroleum Exploration and Development,2014,41(3):336–340.(in Chinese))
[15] KYOUNGSOO P,PAULINO G H. Cohesive zone models: A critical review of traction-separation relationships across fracture surfaces[J]. Applied Mechanics Reviews,2011,64(6):060802.
[16] CHEN Z,BUNGER A P,ZHANG X,et al. Cohesive zone finite element-based modeling of hydraulic fractures[J]. Acta Mechanica Solida Sinica,2009,22(5):443–452.
[17] ZOU J,JIAO Y,TAN F,et al. Complex hydraulic-fracture-network propagation in a naturally fractured reservoir[J]. Computers and Geotechnics,2021,135:104165.
[18] 宋义敏,张 悦,许海亮,等. 岩石摩擦滑动位移场时空演化特征研究[J]. 岩石力学与工程学报,2018,37(8): 1 777–1 784.(SONG Yimin,ZHANG Yue,XU Hailiang,et al. Temporal and spatial characteristics of displacement field of rock friction and sliding[J]. Chinese Journal of Rock Mechanics and Engineering,2018,37(8):1 777–1 784.(in Chinese))
[19] 宋义敏,张 悦,许海亮,等. 基于非均匀特征的岩石蠕滑与黏滑变形演化研究[J]. 岩土力学,2020,41(2): 363–371.(SONG Yimin,ZHANG Yue,XU Hailiang,et al. Study on creep-slip and stick-slip deformation evolution of rock based on non-uniform characteristics[J]. Rock and Soil Mechanics,2020,41(2):363–371.(in Chinese))
[20] 王来贵,赵国超,刘向峰,等. 滑动过程中砂岩节理摩擦因数演化规律[J]. 煤炭学报,2021,46(9):2 874–2 882.(WANG Laigui,ZHAO Guochao,LIU Xiangfeng,et al. Analysis the evolution of friction coefficient of sandstone joint during sliding process[J]. Journal of China Coal Society,2021,46(9):2 874–2 882.(in Chinese))
[21] BOWDEN F P,TABOR D. The friction and lubrication of solids:Part 2[M]. Oxford:Oxford University Press,1964:73–89.
[22] DIETERICH J. A constitutive law for rate of earthquake production and its application to earthquake clustering[J]. Journal of Geophysical Research,1994,99(2):2 601–2 618.
[23] RAMANA Y V,GOGTE B S. Dependence of coefficient of sliding friction in rocks on lithology and mineral characteristics[J]. Engineering Geology,1989,26(3):271–279.
[24] 张 雷,何昌荣. 黏土矿物的摩擦滑动特性及对断层力学性质的影响[J]. 地球物理学进展,2014,29(2):620–629.(ZHANG Lei,HE Changrong. Frictional properties of clay minerals and their effect on fault behavior. Progress in Geophysics,2014,29(2):620–629.(in Chinese))
[25] YAN W,GE H,WANG J,et al. Experimental study of the friction properties and compressive shear failure behaviors of gas shale under the influence of fluids[J]. Journal of Natural Gas Science and Engineering,2016,33:153–161.
[26] YAN W,WU T,WU J,et al. Sliding frictional characteristic of tight sandstone and its influence on the hydraulic fracture complexity[J]. Geomechanics and Geophysics for Geo-Energy and Geo-Resources,2023,9(1):105.
[27] YANG H,WANG L,YANG C,et al. Experimental investigation on different effects of fracturing fluids on mechanical properties and failure mechanism of continental shale[J]. International Journal of Rock Mechanics and Mining Sciences,2023,164:105362.
[28] 赵海军,马凤山,刘 港,等. 不同水力加载条件下非均质储层缝网扩展规律研究[J]. 工程地质学报,2017,25(5):1 328–1 335.(ZHAO Haijun,MA Fengshan,LIU Gang,et al. Numerical study of hydraulic fracturing in heterogeneous rocks under different hydraulic loading conditions[J]. Journal of Engineering Geology,2017,25(5):1 328–1 335. (in Chinese))
[29] Li Y,Liu W,Deng J,et al. A 2D explicit numerical scheme–based pore pressure cohesive zone model for simulating hydraulic fracture propagation in naturally fractured formation[J]. Energy Science and Engineering,2019,7(5):1 527–1 543.
[30] 陈贤鑫. 基于PPCZ模型的水力压裂裂隙与天然裂隙的交互作用研究[硕士学位论文][D]. 南昌:南昌大学,2022.(CHEN Xianxin. Study on the interaction between hydraulic fracturing fracture and in-situ fracture based on PPCZ model[M. S. Thesis][D]. Nanchang:Nanchang University,2022.(in Chinese))
[31] QIN Y,XU N,HAN J,et al. Experimental study on the effects of geometric parameters of filled fractures on the mechanical properties and crack propagation mechanisms of rock masses[J]. Rock Mechanics and Rock Engineering,2023,56(4):2 697–2 716. |