Geoscience ›› 2024, Vol. 38 ›› Issue (02): 300-311.DOI: 10.19657/j.geoscience.1000-8527.2023.081
• Sedimentology and Petroleum Geology • Previous Articles Next Articles
XIE Zhaohan1,2(), FENG Chang1,2, QIU Yongfeng3, LI Heyong3, ZHANG Jianbo4, TANG Haiqing5
Received:
2022-12-25
Revised:
2023-08-09
Online:
2024-04-10
Published:
2024-05-22
CLC Number:
XIE Zhaohan, FENG Chang, QIU Yongfeng, LI Heyong, ZHANG Jianbo, TANG Haiqing. Tectonic Evolution of the Yan ③ Fault Zone and Its Trap-controlling Effect on Yancheng Sag, Subei Basin[J]. Geoscience, 2024, 38(02): 300-311.
活动时期 | 圈闭总面积 (km2) | 圈闭最大 幅度(m) | 圈闭总体 积(km3) | 圈闭 个数 |
---|---|---|---|---|
阜宁组沉积后 | 7.59 | 50 | 176.21 | 9 |
戴南组沉积后 | 6.28 | 50 | 127.32 | 10 |
三垛组一段沉积后 | 5.09 | 45 | 118.89 | 10 |
三垛组沉积后 | 3.68 | 40 | 55.24 | 10 |
现今 | 3.37 | 35 | 34.82 | 6 |
Table 1 Statistical table of the trap parameter changes in different periods
活动时期 | 圈闭总面积 (km2) | 圈闭最大 幅度(m) | 圈闭总体 积(km3) | 圈闭 个数 |
---|---|---|---|---|
阜宁组沉积后 | 7.59 | 50 | 176.21 | 9 |
戴南组沉积后 | 6.28 | 50 | 127.32 | 10 |
三垛组一段沉积后 | 5.09 | 45 | 118.89 | 10 |
三垛组沉积后 | 3.68 | 40 | 55.24 | 10 |
现今 | 3.37 | 35 | 34.82 | 6 |
[1] | 连小翠, 张建培. 西湖凹陷反转构造样式与迁移规律[J]. 上海国土资源, 2016, 37(4): 83-88. |
[2] | 张厚福, 徐兆辉. 从油气藏研究的历史论地层-岩性油气藏勘探[J]. 岩性油气藏, 2008, 20(1): 114-123. |
[3] | LEVORSEN A I, BERRY F A F. Geology of Petroleum[M]. 2nd ed. Tulsa: American Association of Petroleum Geologists Foundation, 2001. |
[4] | 张宙, 何新建, 唐贤君, 等. 东海盆地西湖凹陷构造圈闭特征及其油气藏类型[J]. 海洋地质前沿, 2022, 38(3): 27-35. |
[5] | 邱旭明. 苏北盆地断块圈闭分类及油气成藏特征[J]. 石油与天然气地质, 2003, 24(4): 371-374. |
[6] | 陈安定. 苏北盆地构造特征及箕状断陷形成机理[J]. 石油与天然气地质, 2010, 31(2): 140-150. |
[7] | 能源, 漆家福, 张春峰, 等. 金湖凹陷断裂特征及其石油地质意义[J]. 大地构造与成矿学, 2012, 36(1): 16-23. |
[8] | 毛凤鸣, 陈安定, 严元锋, 等. 苏北盆地复杂小断块油气成藏特征及地震识别技术[J]. 石油与天然气地质, 2006, 27(6): 827-840. |
[9] | 陈伟, 邱旭明. 金湖凹陷石港断裂发育特征及其控圈作用[J]. 复杂油气藏, 2020, 13(3): 1-5, 17. |
[10] | MORLEY C K, GABDI S, SEUSUTTHIYA K. Fault superimposition and linkage resulting from stress changes during rifting: Examples from 3D seismic data, Phitsanulok Basin, Thailand[J]. Journal of Structural Geology, 2007, 29(4): 646-663 |
[11] | 周易. 分期异向分层伸展叠加变形数值模拟研究[D]. 北京: 中国石油大学(北京), 2018. |
[12] | 王海学, 吕延防, 付晓飞, 等. 断裂质量校正及其在油气勘探开发中的作用[J]. 中国矿业大学学报, 2014, 43(3): 482-490. |
[13] | 付晓飞, 孙兵, 王海学, 等. 断层分段生长定量表征及在油气成藏研究中的应用[J]. 中国矿业大学学报, 2015, 44(2): 271-281 |
[14] | PEACOCK A J. Handbook of Polyethylene:Structures, Properties, and Applications[M]. New York: Marcel Dekker, 2000. |
[15] | 漆家福. 渤海湾新生代盆地的两种构造系统及其成因解释[J]. 中国地质, 2004, 31(1): 15-22 |
[16] | FOSSEN H. Structural Geology[M]. Cambridge: Cambridge University Press, 2010 |
[17] | WANG H X, FU X F, LIU S R, et al. Quantitative discrimination of normal fault segment growth and its geological significance: Example from the Tanan Depression, Tamtsag Basin, Mongolia[J]. Australian Journal of Earth Sciences, 2018, 65(5): 711-725. |
[18] | CHILDS C, WATTERSON J, WALSH J J. Fault overlap zones within developing normal fault systems[J]. Journal of the Geological Society, 1995, 152(3): 535-549. |
[19] | CARTWRIGHT J, TRUDGILL B, MANSFIELD C. Fault growth by segment linkage: An explanation for scatter in maximum displacement and trace length data from the Canyonlands grabens of SE Utah: Reply[J]. Journal of Structural Geology, 2000, 22(1): 141-143. |
[20] | FAULDS J E, VARGA R J. The Role of Accommodation Zones and Transfer Zones in the Regional Segmentation of Extended Terranes[M]//Accommodation Zones and Transfer Zones:the Regional Segmentation of the Basin and Range Province. Washington: Geological Society of America, 1998 |
[21] | FRANKOWICZ E, MCCLAY K R. Extensional fault segmentation and linkages, Bonaparte Basin, outer North West Shelf, Australia[J]. AAPG Bulletin, 2010, 94(7): 977-1010. |
[22] | 陈友飞, 严钦尚, 许世远. 苏北盆地沉积环境演变及其构造背景[J]. 地质科学, 1993, 28(2): 151-160. |
[23] | 唐旭. 苏北盆地高邮凹陷断裂演化及砂箱物理模拟[D]. 大庆: 东北石油大学, 2019. |
[24] | 李希元. 苏北盆地石港断裂带成因机制及物理模拟[D]. 大庆: 东北石油大学, 2018. |
[25] | 舒良树, 王博, 王良书, 等. 苏北盆地晚白垩世—新近纪原型盆地分析[J]. 高校地质学报, 2005, 11(4): 534-543. |
[26] | 李志强, 杨波, 韩自军, 等. 南黄海中—新生代裂谷盆地构造-热演化:对成盆机制和烃源岩热演化的指示[J]. 地球科学, 2022, 47(5): 1652-1668. |
[27] | 刘东鹰, 邬冬茹. 断裂在盐城朱家墩气藏成藏中的作用[J]. 石油勘探与开发, 2003, 30(4): 5-6, 28. |
[28] | 祝厚勤, 庞雄奇, 王文军. 苏北盆地盐城凹陷朱家墩气藏成藏期次研究[J]. 煤田地质与勘探, 2006, 34(2): 26-29. |
[29] | 王国建, 邓平, 石美癸. 盐城凹陷朱家墩气田综合化探异常及其地质意义[J]. 物探与化探, 2005, 29(2): 131-134. |
[30] | GE Hongxing, ANDERSON J K. Fault throw profile and kinematics of Normal fault: conceptual models and geologic examples[J]. 高校地质学报, 2007, 13(1): 75-88. |
[31] | DUTTON D M, TRUDGILL B D. Four-dimensional analysis of the Sembo relay system, offshore Angola: Implications for fault growth in salt-detached settings[J]. AAPG Bulletin, 2009, 93(6): 763-794. |
[32] | CHAPMAN T J, MENEILLY A W. The displacement patterns associated with a reverse-reactivated, normal growth fault[J]. Geological Society, London, Special Publications, 1991, 56(1): 183-191. |
[33] | CHILDS C, EASTON S J, VENDEVILLE B C, et al. Kinematic analysis of faults in a physical model of growth faulting above a viscous salt analogue[J]. Tectonophysics, 1993, 228(3/4): 313-329. |
[34] | ROWAN M G, HART B S, NELSON S, et al. Three-dimensional geometry and evolution of a salt-related growth-fault array: Eugene Island 330 field, offshore Louisiana, Gulf of Mexico[J]. Marine and Petroleum Geology, 1998, 15(4): 309-328. |
[35] | 漆家福, 杨桥, 王子煜. 编制盆地复原古构造图的若干问题的讨论[J]. 地质科学, 2003, 38(3): 413-424. |
[36] | 谢昭涵. 尼日尔三角洲深水背斜断裂演化机制及封闭性评价: 以OML130区块Egina油田为例[D]. 大庆: 东北石油大学, 2017. |
[37] | 马如辉, 王安志. 利用构造恢复原理制作古构造演化图[J]. 天然气工业, 2006, 26(1): 34-36, 158. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||