[1] 曾治平,刘震,马骥,等.深层致密砂岩储层可压裂性评价新方法[J].地质力学学报,2019,25(2):223-232. ZENG Zhiping,LIU Zhen,MA Ji,et al.A new method for fracrability evaluation in deep and tight sandstone reservoirs[J].Journal of Geomechanics,2019,25(2):223-232. [2] WONG T,DAVID C,ZHU W.The transition from brittle faulting to cataclastic flow in porous sandstones:mechanical deformation[J].Journal of Geophysical Research:Solid Earth,1997,102(B2):3009-3025. [3] 李庆辉,陈勉,金衍,等.页岩脆性的室内评价方法和改进[J].岩石力学与工程学报,2012,31(8):1681-1685. LI Qinghui,CHEN Mian,JIN Yan,et al.Indoor evaluation method for shale brittleness and improvement[J].Chinese Journal of Rock Mechanics and Engineering,2012,31(8):1681-1685. [4] YAGIZ S.An investigation on the relationship between rock strength and brittleness[C]//MMMGD.59th Geological congress of Turkey.Ankara:MTA Genoral Directory Press,2006:352. [5] RICKMAN R,MULLEN M,PETRE E,et al.A practical use of shale petrophysics for stimulation design optimization:all shale plays are not clones of the Barnett shale[J].SPE115258,2008:1-11. [6] ALTINDAG R.The correlation of specific energy with rock brittleness concept on rock cutting[J].Journal of the South African Institute of Mining and Metallurgy,2003,103(3):163-171. [7] JIN X,Shah S N,ROEGIERS J C,et al.An integrated petrophysics and geomechanics approach for fracability evaluation in shale reservoirs[J].SPE Journal,2015,20(3):518-526. [8] TARASOV B,POTVIN Y.Universal criteria for rock brittleness estimation under triaxial compression[J].International Journal of Rock Mechanics & Mining,2013(59):57-69. [9] JARVIE D M,HILL R J,RUBLE T E,et al.Unconventional shale gas systems:the Mississippian Barnett shale of north central Texas as one model for thermogenic shale gas assessment[J].AAPG Bulletin,2007,91(4):475-499. [10] 鲍云杰,杨振恒,杨琦,等.一种泥页岩脆裂性质表征方法及其地质意义[J].石油实验地质,2013,35(6):694-697. BAO Yunjie,YANG Zhenheng,YANG Qi,et al.One kind of brittle shale characterization method and its geological significance[J].Petroleum Geology & Experiment,2013,35(6):694-697. [11] GRIESER B,BRSY J.Identification of production potential in unconventional reservoirs[C].SPE106623,2007:1-6. [12] 赵金洲,任岚,胡永全.页岩储层压裂缝成网延伸的受控因素分析[J].西南石油大学学报(自然科学版),2013,35(1):1-9. ZHAO Jinzhou,REN Lan,HU Yongquan.Controlling factors of hydraulic fractures extending into network in shale formations[J].Journal of Southwest Petroleum University(Science & Technology Edition),2013,35(1):1-9. [13] 刘向君,王小军,赵保伟,等. 砂砾岩储集层水力压裂裂缝扩展规律与可压性评价[J]. 新疆石油地质,2023,44(2):169-177. LIU Xiangjun,WANG Xiaojun,ZHAO Baowei,et al.Propagation of hydraulic fractures and fracability evaluation of sandy conglomerate reservoirs[J].Xinjiang Petroleum Geology,2023,44(2):169-177. [14] SCOTT T E,NIELSE K C.The effects of porosity on the brittle-ductile Transition in sandstones[J].Journal of Geophysical Research Atmospheres,1991,96(B1):405-414. [15] KAMP D V C P.Smectite-Illite-Muscovite transformation,quartz dissolution,and silica release in shales[J].Clays and clay minerals,2008,56(1):66-81. [16] AOUDIA K ,MISKIMINS J L,HARRIS N B,et al.Statistical analysis of the effects of mineralogy on rock mechanical properties of the Woodford shale and the associated impacts for hydraulic fracture treatment design[J].Global Environmental Change,2010,19(1):81-107. [17] SIERRA R,TRAN M H,ABOUSLEIMAN Y N,et al.Woodford shale mechanical properties and the impacts of lithofacies[C]//ARMR.44th U.S.Rock mecnanics symposium ara 5th V.S Conoda rock methanics symposium.Vtah:One petro,2010:461. [18] FISHER Q J,CASEY M,HARRIS S D,et al.The fluid flow properties of faults in sandstone:the importance of temperature history[J].Geology,2003,31(11):965-968. [19] FISHER Q J,HARRIS S D,CASEY M,et al.Influence of grain size and geothermal gradient on the ductile-to-brittle transition in arenaceous sedimentary rocks:implications for fault structure and fluid flow[J].Geological Society,2007,289(1):105-121. [20] 王升,柳波,付晓飞,等.致密碎屑岩储层岩石破裂特征及脆性评价方法研究[J].石油与天然气地质,2018,39(6):1270-1279. WANG Sheng,LIU Bo,FU Xiaofei,et al.Evaluation of the brittleness and fracturing characteristics for tight clastic reservoir[J].Oil & Gas Geology,2018,39(6):1270-1279. [21] WANG Sheng,ZHAO Wanchun,FU Xiaofei,et al.A universal method for quantitatively evaluating rock brittle-ductile transition behaviors[J].Journal of Petroleum Science and Engineering,2020,195:107774. [22] 王升.致密储层脆性主控因素及可压性分级评价研究[D].大庆:东北石油大学,2021. WANG Sheng.Study on main controlling factors of brittleness and fractability evaluation in tight reservoirs[D].Daqing:Northeast Petroleum University,2021. [23] 傅筱涵,李晓艳,丁琳,等.珠江口盆地HZ26区文昌组储层特征及成因机制[J].中国海上油气,2024,36(2):50-61. FU Xiaohan,LI Xiaoyan,DING Lin,et al.Characteristics and genetic mechanisms of reservoirs of Wenchang Formation in the HZ26 Area of Huizhou Sag,Pearl River Mouth Basin[J].China Offshore Oil and Gas,2024,36(2):50-61. [24] 李敏,张月霞,吴琼玲,等.南海珠江口盆地陆丰凹陷文昌组沉积成岩特征及储层物性控制因素[J].东北石油大学学报,2024,48(4):69-88. LI Min,ZHANG Yuexia,WU Qiongling,et al.Sedimentary diagenetic characteristics and controlling factors of reservoir physical properties of Wenchang Formation in Lufeng Sag,Pearl River Mouth Basin,South China Sea[J].Journal of Northeast Petroleum University,2024,48(4):69-88. [25] 张珂,姜素华,岳家彤,等.高尚堡油田沙三段二、三亚段微相特征研究[J].中国海洋大学学报(自然科学版),2018,48(5):86-94. ZHANG Ke,JIANG Suhua,YUE Jiatong,et al.Sedimentary micro-facies of fan delta in Es32+3 submember,Gaoshangpu Oilfield[J].Periodical of Ocean University of China(Natural Science Edition),2018,48(5):86-94. [26] 张琼,徐文礼,徐姁,等.渤海湾盆地富林洼陷古近系沙三段储层特征及油气主控因素[J].中国地质,2023,50(2):543-556. ZHANG Qiong,XU Wenli,XU Xu,et al.Reservior characteristics and main controlling factors of the third member of Paleogene Shahejie Formation in Fulin Sag,Bohai Bay Basin[J].Geology in China,2023,50(2):543-556. [27] 邱浩,文敏,吴怡,等. 南海油田惠州潜山裂缝性凝析油气藏控水实验[J]. 新疆石油地质,2023,44(1):84-92. QIU Hao,WEN Min,WU Yi,et al.Water control experiments in Huizhou buried-hill fractured condensate reservoirs in Nanhai oilfield[J]. Xinjiang Petroloeum Geology, 2023,44(1):84-92. [28] 李晖.陆丰凹陷南北构造差异与裂缝发育特征[D].北京:中国石油大学(北京),2022. LI Hui.Structural differences and fracture development characteristics in the northern and southern Lufeng Sag[D].Beijing:China University of Petroleum(Beijing),2022. [29] 廖新武,刘奇,李超,等.渤中25-1低渗透油田地应力分布特征及对开发的影响[J].地质力学学报,2015,21(1):30-37. LIAO Xinwu,LIU Qi,LI Chao,et al.Distribution of the present stress in low permeability oilfield of Bozhong 25-1 and its effect on development[J].Journal of Geomechanics,2015,21(1):30-37. [30] 周佳美.某油田低渗透油藏水平井加密及跟踪调整提产[J].新疆石油地质,2023,44(5):577-582. ZHOU Jiamei. Horizontal well infilling and water flooding tracking adjustment for production increase in low permeability reservoirs in X Oilfield[J].Xinjiang Petroleum Geology,2023,44(5):577-582. [31] 关耀,叶青,张冲,等.高压低渗透碎屑岩储层孔隙结构特征及分类评价——以莺歌海盆地东方A-1区黄流组一段为例[J].东北石油大学学报,2024,48(5):75-89. GUAN Yao,YE Qing,ZHANG Chong,et al.Pore structure characteristics and classification evaluation of high-pressure and low-permeability clastic reservoir:taking the first member of Huangliu Formation in Dongfang A-1 Area of Yinggehai Basin as an example[J].Journal of Northeast Petroleum University,2024,48(5):75-89. [32] 魏鸿坤,王健,王丹翎,等.高盐低渗透油藏CO2泡沫微观尺度耐盐性及调驱效果[J]. 新疆石油地质,2024,45(6):703-710. WEI Hongkun,WANG Jian,WANG Danling,et al.Microscale salt tolerance and profile control of CO2 foam in high-salinity,low-permeability reservoirs[J].Xinjiang Petroleum Geology,2024,45(6):703-710. [33] 周永胜,吴伟,冯建伟,等.致密碳酸盐岩气藏裂缝预测及主控因素分析——以四川盆地G气田震旦系灯影组为例[J].东北石油大学学报,2024,48(2):102-115. ZHOU Yongsheng,WU Wei,FENG Jianwei,et al.Fracture prediction and main controlling factors analysis of tight carbonate gas reservoir:take the Sinian Dengying Formation of G Gas Field in Sichuan Basin as an example[J].Journal of Northeast Petroleum University,2024,48(2):102-115. |