| [1] |
马兵山, 梁瀚, 邬光辉, 等. 四川盆地中部地区多期次走滑断层的形成及演化[J]. 石油勘探与开发, 2023, 50(2):333-345.
doi: 10.11698/PED.20220655
|
|
[MA B S, LIANG H, WU G H, et al. Formation and evolution of the strike-slip faults in the central Sichuan Basin, SW China[J]. Petroleum Exploration and Development, 2023, 50(2): 333-345.]
|
| [2] |
GUAN S W, ZHANG Y Q, JIANG H, et al. Cratonic strike-slip fault systems in the central Sichuan Basin, China[J]. Earth-Science Reviews, 2024, 254: 104800.
|
| [3] |
CHENG X Y, DING W L, PAN L, et al. Geometry and kinematics characteristics of strike-slip fault zone in complex structure area: A case study from the South No. 15 strike-slip fault zone in the Eastern Sichuan Basin, China[J]. Frontiers in Earth Science, 2022, 10: 922664.
doi: 10.3389/feart.2022.922664
URL
|
| [4] |
马德波, 汪泽成, 段书府, 等. 四川盆地高石梯—磨溪地区走滑断层构造特征与天然气成藏意义[J]. 石油勘探与开发, 2018, 45(5): 795-805.
doi: 10.11698/PED.2018.05.05
|
|
[MA D B, WANG Z C, DUAN S F, et al. Strike-slip faults and their significance for hydrocarbon accumulation in Gaoshiti-Moxi area, Sichuan Basin, SW China[J]. Petroleum Exploration and Development, 2018, 45(5): 795-805.]
|
| [5] |
LI W K, WANG J, LI J S, et al. Characteristics and origin of the Sinian-Permian fault system and its controls on the formation of paleo-carbonate reservoirs: A case study from Central Paleo-Uplift, Sichuan Basin, China[J]. Interpretation, 2018, 6(1): T191-T208.
doi: 10.1190/INT-2016-0228.1
URL
|
| [6] |
吴永宏, 刘嘉伟, 冯亮, 等. 四川盆地开江—梁平海槽东南台缘带走滑断裂特征及其控藏作用[J]. 海相油气地质, 2023, 28(3): 291-300.
|
|
[WU Y H, LIU J W, FENG L, et al. Characteristics of the strike-slip faults and their effects on the gas accumulation in the southeastern Kaijiang-Liangping trough, Sichuan Basin[J]. Marine Origin Petroleum Geology, 2023, 28(3): 291-300.]
|
| [7] |
LI S Y, HUANG X R, TANG S H, et al. Characterization of strike-slip fault zones by gradient-driven signed pressure force model in the Northeast Sichuan Basin[J]. Frontiers in Earth Science, 2025, 13: 1540415.
doi: 10.3389/feart.2025.1540415
URL
|
| [8] |
曾韬, 凡睿, 夏文谦, 等. 四川盆地东部走滑断裂识别与特征分析及形成演化: 以涪陵地区为例[J]. 地学前缘, 2023, 30(3): 366-385.
doi: 10.13745/j.esf.sf.2022.12.58
|
|
[ZENG T, FAN R, XIA W Q, et al. Formation and evolution of strike-slip fault zones in the eastern Sichuan Basin and identification and characterization of the fault zones: A case study of the Fuling area[J]. Earth Science Frontiers, 2023, 30(3): 366-385.]
doi: 10.13745/j.esf.sf.2022.12.58
|
| [9] |
MARFURT K J, SUDHAKER V, GERSZTENKORN A, et al. Coherency calculations in the presence of structural dip[J]. Geophysics, 1999, 64(1): 104-111.
doi: 10.1190/1.1444508
URL
|
| [10] |
HALE D. Methods to compute fault images, extract fault surfaces, and estimate fault throws from 3D seismic images[J]. Geophysics, 2013, 78(2): O33-O43.
doi: 10.1190/geo2012-0331.1
URL
|
| [11] |
WU X M, LIANG L M, SHI Y Z, et al. FaultSeg3D: Using synthetic data sets to train an end-to-end convolutional neural network for 3D seismic fault segmentation[J]. Geophysics, 2019, 84(3): IM35-IM45.
doi: 10.1190/geo2018-0646.1
URL
|
| [12] |
陈桂, 刘洋. 基于人工智能的断层自动识别研究进展[J]. 地球物理学进展, 2021, 36(1): 119-131.
|
|
[CHEN G, LIU Y. Research progress of automatic fault recognition based on artificial intelligence[J]. Progress in Geophysics, 2021, 36(1): 119-131.]
|
| [13] |
陈俊安, 陈海东, 龚伟, 等. 深度学习与边缘增强相结合的断裂综合检测技术—顺北地区超深走滑断裂检测应用实例[J]. 石油地球物理勘探, 2022, 57(6): 1304-1316+1256.
|
|
[CHEN J A, CHEN H D, GONG W, et al. Application of comprehensive fault detection technology combining deep learning with edge enhancement in detecting ultra-deep strike-slip faults in Shunbei block[J]. Oil Geophysical Prospecting, 2022, 57(6): 1304-1316+1256.]
|
| [14] |
王威, 凡睿, 黎承银, 等. 川东北地区须家河组“断缝体”气藏有利勘探目标和预测技术[J]. 石油与天然气地质, 2021, 42(4): 992-1001.
|
|
[WANG W, FAN R, LI C Y, et al. Exploration and prediction of promising fault-fracture reservoirs in the Xujiahe Formation, northeastern Sichuan Basin[J]. Oil & Gas Geology, 2021, 42(4): 992-1001.]
|
| [15] |
曾令平, 周坤, 潘荣斌, 等. 五宝场地区须家河组成藏主要控制因素[J]. 天然气勘探与开发, 2022, 45(S1): 58-65.
|
|
[ZENG L P, ZHOU K, PAN R B, et al. Main controlling factors of gas accumulation in Xujiahe Formation, Wubaochang area, Sichuan Basin[J]. Natural Gas Exploration and Development, 2022, 45(S1): 58-65.]
|
| [16] |
唐大卿, 陈新军, 张先平. 川东北宣汉-达县地区断裂系统及构造演化[J]. 石油实验地质, 2008, 30(1): 58-63.
|
|
[TANG D Q, CHEN X J, ZHANG X P. Fault systems and their tectonic evolution in Xuanhan-Daxian area, the Northeastern Sichuan Basin[J]. Petroleum Geology & Experiment, 2008, 30(1): 58-63.]
|
| [17] |
舒姚, 胡明. 川东北地区构造特征及变形期次探讨[J]. 复杂油气藏, 2010, 3(2): 17-20.
|
|
[SHU Y, HU M. Structural feature and deformation stages in northeast of Sichuan Basin[J]. Complex Hydrocarbon Reservoirs, 2010, 3(2): 17-20.]
|
| [18] |
赵正望, 张航, 张晓丽, 等. 川东北地区上三叠统须家河组致密气成藏地质特征及成藏模式[J]. 中国石油勘探, 2023, 28(3): 121-131.
doi: 10.3969/j.issn.1672-7703.2023.03.010
|
|
[ZHAO Z W, ZHANG H, ZHANG X L, et al. Geological characteristics and gas accumulation pattern of tight gas reservoirs in the Upper Triassic Xujiahe Formation in northeastern Sichuan Basin[J]. China Petroleum Exploration, 2023, 28(3): 121-131.]
doi: 10.3969/j.issn.1672-7703.2023.03.010
|
| [19] |
徐宇轩, 代宗仰, 胡晓东, 等. 川东北沙溪庙组天然气地球化学特征及地质意义——以五宝场地区为例[J]. 岩性油气藏, 2021, 33(1): 209-219.
doi: 10.12108/yxyqc.20210119
|
|
[XU Y X, DAI Z Y, HU X D, et al. Geochemical characteristics and geological significance of Shaximiao Formation in northeastern Sichuan Basin: A case study from Wubaochang area[J]. Lithologic Reservoirs, 2021, 33(1): 209-219.]
|
| [20] |
刘昭茜, 罗开平, 唐永, 等. 四川盆地元坝-通南巴地区关键构造期构造特征及陆相致密砂岩天然气成藏响应[J]. 地球科学, 2019, 44(3): 756-772.
|
|
[LIU Z Q, LUO K P, TANG Y, et al. Critical tectonic periods and the response of gas accumulation in non-marine tight sandstone reservoir in Yuanba-Tongnanba area, Sichuan Basin[J]. Earth Science, 2019, 44(3): 756-772.]
|
| [21] |
石书缘, 杨威, 周刚, 等. 特提斯域演化对四川超级盆地油气系统形成的影响[J]. 石油勘探与开发, 2024, 51(5): 1024-1039.
doi: 10.11698/PED.20240126
|
|
[SHI S Y, YANG W, ZHOU G, et al. Impact of Tethyan domain evolution on the formation of petroleum systems in the Sichuan super basin, SW China[J]. Petroleum Exploration and Development, 2024, 51(5): 1024-1039.]
|
| [22] |
赵正望, 谢继容, 李楠, 等. 四川盆地须家河组一、三、五段天然气勘探潜力分析[J]. 天然气工业, 2013, 33(6): 23-28.
|
|
[ZHAO Z W, XIE J R, LI N, et al. Gas exploration potential of the 1st, 3rd and 5th members of Xujiahe Fm reservoirs in the Sichuan Basin[J]. Natural Gas Industry, 2013, 33(6): 23-28.]
|
| [23] |
杨焱. 川东北五宝场地区须家河组储层特征及分布预测研究[D]. 北京: 中国石油大学(北京), 2022.
|
|
[YANG Y. Study on reservoir characteristics and distribution prediction of Xujiahe Formation in Wubaochang area, Northeast Sichuan[D]. Beijing: China University of Petroleum (Beijing), 2022.]
|
| [24] |
施振生, 朱筱敏, 张亚雄, 等. 四川盆地上三叠统沉积储层研究进展与热点分析[J]. 石油与天然气地质, 2021, 42(4): 784-800.
|
|
[SHI Z S, ZHU X M, ZHANG Y X, et al. Advances and trending topics in sedimentary reservoir research of the Upper Triassic Xujiahe Formation, Sichuan Basin[J]. Oil & Gas Geology, 2021, 42(4): 784-800.]
|
| [25] |
钱治家, 钟克修. 川东北地区须家河组沉积相与储层特征[J]. 天然气工业, 2009, 29(6): 9-12+134.
|
|
[QIAN Z J, ZHONG K X. Sedimentary facies and reservoir features of the Xujiahe Formation in northeastern Sichuan Basin[J]. Natural Gas Industry, 2009, 29(6): 9-12+134.]
|
| [26] |
陈沁, 谢增业, 张璐, 等. 川东北五宝场地区须家河组和沙溪庙组天然气地球化学特征及其勘探意义[J]. 天然气地球科学, 2022, 33(10): 1648-1660.
doi: 10.11764/j.issn.1672-1926.2022.04.006
|
|
[CHEN Q, XIE Z Y, ZHANG L, et al. Geochemical characteristics and exploration significance of natural gas in Xujiahe Formation and Shaximiao Formation in Wubaochang area, Northeast Sichuan[J]. Natural Gas Geoscience, 2022, 33(10): 1648-1660.]
doi: 10.11764/j.issn.1672-1926.2022.04.006
|
| [27] |
李相文. 富满油田致密灰岩断控储层地震预测方法研究[D]. 北京: 中国石油大学(北京), 2022.
|
|
[LI X W. Seismic prediction method of tight limestone fault controlled reservoir in Fuman Oilfield[D]. Beijing: China University of Petroleum (Beijing), 2022.]
|
| [28] |
LI X, LI K W, XU Z F, et al. Fault-Seg-LNet: A method for seismic fault identification based on lightweight and dynamic scalable network[J]. Engineering Applications of Artificial Intelligence, 2024, 127: 107316.
doi: 10.1016/j.engappai.2023.107316
URL
|
| [29] |
邓辉, 李果营, 杨海风, 等. 走滑应变椭圆模型的改进及应用举例[J]. 地球科学进展, 2019, 34(8): 868-878.
doi: 10.11867/j.issn.1001-8166.2019.08.0868
|
|
[DENG H, LI G Y, YANG H F, et al. Improvement and application of riedel shear system[J]. Advances in Earth Science, 2019, 34(8): 868-878.]
|
| [30] |
SYLVESTER A G. Strike-slip faults[J]. Geological Society of America Bulletin, 1988, 100(11): 1666-1703.
doi: 10.1130/0016-7606(1988)100<1666:SSF>2.3.CO;2
URL
|
| [31] |
何登发, 李德生, 张国伟, 等. 四川多旋回叠合盆地的形成与演化[J]. 地质科学, 2011, 46(3): 589-606.
|
|
[HE D F, LI D S, ZHANG G W, et al. Formation and evolution of multi-cycle superposed Sichuan Basin, China[J]. Chinese Journal of Geology (Scientia Geologica Sinica), 2011, 46(3): 589-606.]
|
| [32] |
周路, 李飞, 何登发, 等. 四川盆地北部地区三叠系构造及其演化特征分析[J]. 地质科学, 2013, 48(1): 71-92.
|
|
[ZHOU L, LI F, HE D F, et al. Structure and evolution characteristics analysis of Triassic in northern Sichuan Basin[J]. Chinese Journal of Geology (Scientia Geologica Sinica), 2013, 48(1): 71-92.]
|
| [33] |
黎承银, 李明阳. 川东北地区须家河组构造差异及其对天然气富集的影响[J]. 天然气技术与经济, 2021, 15(3): 35-41+53.
doi: 10.3969/j.issn.2095-1132.2021.03.006
|
|
[LI C Y, LI M Y. Structural difference and its influence on gas accumulation: An example from Xujiahe Formation, northeastern Sichuan Basin[J]. Natural Gas Technology and Economy, 2021, 15(3): 35-41+53.]
|
| [34] |
马德龙, 王宏斌, 张希晨, 等. 川东北通南巴背斜中新生代构造变形的砂箱构造物理模拟[J]. 地球科学, 2023, 48(4): 1307-1320.
|
|
[MA D L, WANG H B, ZHANG X C, et al. Analogue modeling of structural deformation of Tongnanba anticline in Mesozoic and Cenozoic, NE Sichuan Basin[J]. Earth Science, 2023, 48(4): 1307-1320.]
|
| [35] |
MARTIN E S. The distribution and characterization of strike-slip faults on Enceladus[J]. Geophysical Research Letters, 2016, 43(6): 2456-2464.
doi: 10.1002/grl.v43.6
URL
|
| [36] |
DENG S, LI H L, ZHANG Z P, et al. Structural characterization of intracratonic strike-slip faults in the central Tarim Basin[J]. AAPG Bulletin, 2019, 103(1): 109-137.
doi: 10.1306/06071817354
URL
|
| [37] |
唐浩, 邬光辉, 马兵山, 等. 川中地区二叠系走滑断裂特征及成藏意义[J]. 现代地质, 2025, 39(4): 884-897.
|
|
[TANG H, WU G H, MA B S, et al. Characteristics of Permian strike-slip faults in central Sichuan Basin and their significance for hydrocarbon accumulation[J]. Geoscience, 2025, 39(4): 884-897.]
|
| [38] |
王珍, 唐大卿, 康志江, 等. 塔里木盆地顺北5号走滑断裂带中北段发育特征及控藏作用[J]. 地球科学, 2023, 48(11): 4117-4134.
|
|
[WANG Z, TANG D Q, KANG Z J, et al. Development characteristics and its role in controlling oil and gas accumulation of mid-north part of Shunbei No. 5 strike-slip fault zone in Tarim Basin[J]. Earth Science, 2023, 48(11): 4117-4134.]
|
| [39] |
邬光辉, 马兵山, 韩剑发, 等. 塔里木克拉通盆地中部走滑断裂形成与发育机制[J]. 石油勘探与开发, 2021, 48(3): 510-520.
doi: 10.11698/PED.2021.03.07
|
|
[WU G H, MA B S, HAN J F, et al. Origin and growth mechanisms of strike-slip faults in the central Tarim Cratonic Basin, NW China[J]. Petroleum Exploration and Development, 2021, 48(3): 510-520.]
|
| [40] |
林波, 云露, 李海英, 等. 塔里木盆地顺北5号走滑断层空间结构及其油气关系[J]. 石油与天然气地质, 2021, 42 (6): 1344-1353+1400.
|
|
[LIN B, YUN L, LI H Y, et al. Spatial structure of Shunbei No.5 strike-slip fault and its relationship with oil and gas reservoirs in the Tarim Basin[J]. Oil & Gas Geology, 2021, 42 (6): 1344-1353+1400.]
|
| [41] |
王清华, 杨海军, 李勇, 等. 塔里木盆地富满大型碳酸盐岩油气聚集区走滑断裂控储模式[J]. 地学前缘, 2022, 29(6): 239-251.
doi: 10.13745/j.esf.sf.2022.8.17
|
|
[WANG Q H, YANG H J, LI Y, et al. Control of strike-slip fault on the large carbonate reservoir in Fuman, Tarim Basin——a reservoir model[J]. Earth Science Frontiers, 2022, 29(6): 239-251.]
|
| [42] |
徐文畅. 川中地区中生界致密气及地层水特征研究[D]. 武汉: 长江大学, 2024.
|
|
[XU W C. Study on the characteristics of Mesozoic tight gas and formation water in central Sichuan[D]. Wuhan: Yangtze University, 2024.]
|
| [43] |
张雷, 李毕松, 朱祥, 等. 超深层油气成藏关键要素及成藏过程研究——以川北元坝地区灯影组为例[J]. 石油科学通报, 2025, 10(3): 415-429.
|
|
[ZHANG L, LI B S, ZHU X, et al. Key controls and accumulation processes of ultra-deep hydrocarbon reservoirs: A case study of the Dengying Formation in the Yuanba Area, northern Sichuan Basin[J]. Petroleum Science Bulletin, 2025, 10(3): 415-429.]
|
| [44] |
秦彪, 范立勇, 苏亭, 等. 鄂尔多斯盆地东北部奥陶系马家沟组盐下烃源岩黄铁矿成因及对氧化还原条件的启示: 来自微区原位S-Fe同位素和微量元素的证据[J]. 天然气地球科学, 2025, 36(8): 1586-1601.
doi: 10.11764/j.issn.1672-1926.2025.02.011
|
|
[QIN B, FAN L Y, SU T, et al. Pyrite origins in the subsalt source rocks of the Ordovician Majiagou Formation in the northeast Ordos Basin and its implications for REDOX conditions: Evidences from in-situ S-Fe isotopes and trace elements in the micro-zones[J]. Natural Gas Geoscience, 2025, 36(8): 1586-1601.]
|