Unconformities formed during the P-T transition in the northwestern Junggar Basin: Nature, evolution and implications
Li Pan1, Li Yong-Qiang2, Jing Jian-Bo3, Cao Zheng-Lin1, Yuan Xuan-Jun1
1 Research Institute of Petroleum Exploration and Development,PetroChina,Beijing 100083,China; 2 Urümqi Branch,Geophysical Research Institute,BGP,CNPC, Urümqi 830016,China; 3 Geological Research Institute of Western Drilling,CNPC,Xinjiang Karamay 834000,China
Abstract Late Permian to Early Triassic represents a significant transition period of the Junggar Basin,resulting in the formation of widespread characteristic unconformities. In this paper,the nature,evolution and implications of these unconformities in the northwestern Junggar Basin are explored,based on seismic and borehole data. This study shows that during the P-T transition two main phases of unconformities were present in the study area,including P3/P2 and T1/P3,with the former expressed mainly as a major angular unconformity and later as a minor parallel or sub-parallel unconformity. Noticeably,the two unconformities are amalgamated to form a superimposed one beneath the Lower Triassic in the north,whereas in the south they co-exist with the Upper Permian in between. Their evolution is characterized by four distinct stages: formation of the major unconformity,its partial onlapping by the Upper Permian,formation of the minor and superimposed unconformity,and their onlapping by the Triassic. The nature and evolution of these unconformities help elucidate the relative influence of the late-stage Hercynian and early-stage Indosinian orogenies,the wedge-shaped connotation of stratigraphic record,and the assignment of tectonic sequences to the Upper Permian and Lower Triassic. The results from this study also indicate that the unconformities and relevant stratigraphy during the P-T transition comprise favorable oil-gas migration pathways,reservoir-seal assemblages and various traps,and are thus of great significance for hydrocarbon exploration.
Fund:National Science and Technology Major Project(No.2017ZX05001)
About author: Li Pan,born in 1985,received a Ph.D. in 2017 from the University of Aberdeen,UK and is now working at the Research Institute of Petroleum Exploration and Development,PetroChina in Beijing. His main research focus is sequence stratigraphy and sedimentology. E-mail: lipanccc@126.com.
Cite this article:
Li Pan,Li Yong-Qiang,Jing Jian-Bo et al. Unconformities formed during the P-T transition in the northwestern Junggar Basin: Nature, evolution and implications[J]. JOPC, 2020, 22(4): 697-714.
Li Pan,Li Yong-Qiang,Jing Jian-Bo et al. Unconformities formed during the P-T transition in the northwestern Junggar Basin: Nature, evolution and implications[J]. JOPC, 2020, 22(4): 697-714.
[1] 阿布力米提·依明,唐勇,曹剑,陈刚强,陈静,陶柯宇. 2016. 准噶尔盆地玛湖凹陷下三叠统百口泉组源外“连续型”油藏成藏机理与富集规. 天然气地球科学, 27(2): 241-250. [Ablimit Y,Tang Y,Cao J,Chen G Q,Chen J,Tao K Y.2016. Accumulation mechanism and enrichment rules of the continuous hydrocarbon plays in the Lower Trasssic Baikouquan Formation of the Mahu Sag,Junggar basin. Natural Gas Geoscience, 27(2): 241-250] [2] 曹剑,胡文瑄,张义杰,姚素平,王绪龙,张越迁,唐勇. 2006. 准噶尔盆地油气沿不整合运移的主控因素分析. 沉积学报, 24(3): 399-406. [Cao J,Hu W X,Zhang Y J,Yao S P,Wang X L,Zhang Y Q,Tang Y.2006. The main factor controlling petroleum migration along unconformity in the Junggar Basin. Acta Sedimentologica Sinica, 24(3): 399-406] [3] 陈发景,张光亚,陈昭年. 2004. 不整合分析及其在陆相盆地构造研究中的意义. 现代地质, 18(3): 269-275. [Chen F J,Zhang G Y,Chen Z N.2004. Unconformity analysis and its significance in the study of continental basin tectonics. Geoscience, 18(3): 269-275] [4] 陈建平,查明,柳广弟,谷亚青,张卫海. 2000. 准噶尔盆地西北缘斜坡区不整合面在油气成藏中的作用. 中国石油大学学报: 自然科学版, 24(4): 75-78. [Chen J P,Zha M,Liu G D,Gu Y Q,Zhang W H.2000. Importance of unconformity in oil and gas accumulation in the northwestern slope of Junggar Basin. Journal of China University of Petroleum: Edition of Natural Science, 24(4): 75-78] [5] 陈建平,查明. 2002. 准噶尔盆地环玛湖凹陷二叠系不整合特征及其在油气运移中的意义. 石油勘探与开发, 29(4): 29-31. [Chen J P,Zha M.2002. Permian unconformity and its effect on petroleum migration in the circum-Mahu depression of Junggar basin. Petroleum Exploration and Development, 29(4): 29-31] [6] 陈平,陆永潮,杜学斌,林卫兵. 2012. 准噶尔盆地腹部区中生界不整合面类型及纵向结构. 地质科学, 47(1): 92-101. [Chen P,Lu Y C,Du X B,Lin W B.2012. Types and vertical structures of Mesozoic unconformity in the compression abdominal area of Junggar basin. Chinese Journal of Geology, 47(1): 92-101] [7] 陈新,卢华复,舒良树,王惠民,张国清. 2002. 准噶尔盆地构造演化分析新进展. 高校地质学报, 8(3): 257-267. [Chen X,Lu H X,Shu L S,Wang H M,Zhang G Q.2002. Study on tectonic evolution of Junggar basin. Geological Journal of Chinese Universities, 8(3): 257-267] [8] 陈中红,查明,朱筱敏. 2003. 准噶尔盆地陆梁隆起不整合面与油气运聚关系. 古地理学报, 5(1): 120-126. [Chen Z H,Zha M,Zhu X M.2003. Relation between unconformity surface and hydrocarbon migration and accumulation of Luliang uplift in Junggar Basin. Journal of Palaeogeography(Chinese Edition), 5(1): 120-126]. [9] 方世虎,贾承造,郭召杰,宋岩,徐怀民,刘楼军. 2006. 准噶尔盆地二叠纪盆地属性的再认识及其构造意义. 地学前缘, 13(3): 108-121. [Fang S H,Jia C Z,Guo Z J,Song Y,Xu H M,Liu L J.2006. New view on the Permian evolution of the Junggar basin and its implications for tectonic evolution. Earth Science Frontiers, 13(3): 108-121] [10] 郭维华,牟中海,赵卫军,邓国强. 2006. 准噶尔盆地不整合类型与油气运聚关系研究. 西南石油学院院报, 28(2): 1-3. [Guo W H,Mu Z H,Zhao W J,Deng G Q.2006. Research on the relation of unconformity type with oil and gas migration-accumulation at Zhuengaer Basin. Journal of Southwest Petroleum Institute, 28(2): 1-3] [11] 顾雪祥,董树义,王银宏,胡贵增,杜树浩,焦鹏. 2008. 不整合面控制内生金属成矿的新实例: 山东沂南金铜铁矿床. 现代地质, 22(2): 151-161. [Gu X X,Dong S Y,Wang Y H,Hu G Z,Du S H,Jiao P.2008. A New example of unconformity-related endogenic metallization: The Yinan Au-Cu-Fe Deposition,Shandong Province,China. Geoscience, 22(2): 151-161] [12] 韩宝,王昌伟,盛世锋,庞燕青. 2017. 准噶尔盆地中拐—五区二叠系不整合面对油气成藏控制作用. 天然气地球科学, 28(12): 1821-1828. [Han B,Wang C W,Sheng S F,Pang Y Q.2017. Controls of the Permian unconformity on reservoir formation in Zhongguai-District 5 area of Junggar basin. Natural Gas Geoscience, 28(12): 1821-1828] [13] 郝景宇,黄立良,吴采西,潘立君,马辉树,杨万立,郑秀梅. 2012. 准噶尔盆地西北缘乌尔禾组时代归属及层位关系. 新疆石油地质, 33(1): 43-45. [Hao J Y,Huang L L,Wu C X,Pan L J,Ma H S,Yang W L,Zheng X M.2012. Stratigraphic relationship and horizon relationship of Permian Wuerhe Formation in northwestern margin of Junggar basin. Xinjiang Petroleum Geology, 33(1): 43-45] [14] 何登发. 2007. 不整合面的结构与油气聚集. 石油勘探与开发, 34(2): 142-149. [He D F.2007. Structure and hydrocarbon accumulation on unconformities. Petroleum Exploration and Development, 34(2): 142-149] [15] 何登发. 2018.“下削上超”地层不整合的基本类型与地质意义. 石油勘探与开发, 45(6): 995-1006. [He D F.2018. Basic types and geologic significances of“truncation and onlap”unconformities. Petroleum Exploration and Development, 45(6): 995-1006] [16] 何登发,吴松涛,赵龙,郑孟林,李涤,路玉. 2018. 环玛湖凹陷二叠—三叠纪的构造-沉积背景及其演化. 新疆石油地质, 39(1): 35-47. [He D F,Wu S T,Zhao L,Zhen M L,Li D,Lu Y.2018. Tectono-depositional setting and its evolution during Permian to Triassic around Mahu Sag,Junggar Basin. Xingjiang Petroleum Geology, 39(1): 35-47] [17] 林畅松. 2006. 沉积盆地的构造地层分析: 以中国构造活动盆地研究为例. 现代地质, 20(2): 185-194. [Lin C S.2006. Tectono-stratigraphic analysis of sedmientary basins: A case study on the Inland tectonically active basins in China. Geoscience, 20(2): 185-194] [18] 林畅松. 2009. 沉积盆地的层序和沉积充填结构及过程响应. 沉积学报, 27(5): 849-862. [Lin C S.2009. Sequence and depositional architecture of sedimentary basin and process responses. Acta Sedimentologica Sinica, 27(5): 849-862] [19] 李德江,杨俊生,朱筱敏. 2005. 准噶尔盆地层序地层学研究. 西安石油大学学报(自然科学版), 20(3): 60-71. [Li D J,Yang J S,Zhu X M.2005. Study on the sequence stratigraphy of Junggar basin. Journal of Xi’an Shiyou University(Natural Science Edition), 20(3): 60-71] [20] 李朝阳,刘玉平,管太阳,皮道会,叶霖. 2004. 不整合面中的成矿机制与找矿研究. 地学前缘, 11(2): 353-360. [Li C Y,Liu Y P,Guan T Y,Pi D H,Ye L.2004. Mineralization mechanism and prospection on unconformable contacts. Earth Science Frontiers, 11(2): 353-360]. [21] 李丕龙,冯建辉,陆永潮,郝芳. 2010. 准噶尔盆地构造沉积与成藏. 北京: 地质出版社,1-340. [Li P L,Feng J H,Lu Y C,Hao F.2010. Tectonics,Sedimentation and Hydrocarbon Accumulation in Junggar Basin. Beijing: Geological Publishing House,1-340] [22] 牟中海,何琰,唐勇,陈世加,浦世照,赵卫军. 2005. 准噶尔盆地陆西地区不整合与油气成藏的关系. 石油学报, 26(3): 16-20. [Mu Z H,He Y,Tang Y,Chen S J,Pu S Z,Zhao W J.2005. Relation of unconformity with hydrocarbon accumulation in Luxi area of Junggar Basin. Acta Petrolei Sinica, 26(3): 16-20] [23] 潘钟祥. 1983. 不整合对油气运移聚集的重要性. 石油学报, 4(4): 1-10. [Pan Z X.1983. Significance of unconformity to oil and gas migration and accumulation. Acta Petrolei Sinica, 4(4): 1-10] [24] 任纪舜,徐芹芹,邓平,肖黎微. 2016. 构造旋回与大地构造年表. 地球学报, 37(5): 528-534. [Ren J S,Xu Q Q,Deng P,Xiao L W.2016. Tectonic cycles and tectonic timescale. Acta Geoscientica Sinica, 37(5): 528-534] [25] 隋风贵. 2015. 准噶尔盆地西北缘构造演化及其与油气成藏的关系. 地质学报,89(4): 779-793. [Sui F G.2015. Tectonic evolution and its relationship with hydrocarbon accumulation in the northwest margin of Junggar basin. Acta Geologica Sinica,89(4): 779-793]. [26] 王家林,吴朝东,朱文,李壮,吴峻,陈榕,王军. 2016. 准噶尔盆地南缘二叠纪—三叠纪构造-沉积环境与原型盆地演化. 古地理学报, 18(4): 643-660. [Wang J L,Wu C D,Zhu W,Li Z,Wu J,Chen R,Wang J.2016. Tectonic-depositional environment and prototype basin evolution of the Permian-Triassic in southern Junggar Basin. Journal of Palaeogeography(Chinese Edition), 18(4): 643-660] [27] 吴孔友,查明,柳广弟. 2002. 准噶尔盆地二叠系不整合面及其油气运聚特征. 石油勘探与开发, 29(2): 53-54. [Wu K Y,Zha M,Liu G D.2002. The unconformity surface in the Permian of Junggar basin and the characters of oil-gas migration and accumulation. Petroleum Exploration and Development, 29(2): 53-54] [28] 吴孔友,查明,洪梅. 2003. 准噶尔盆地不整合结构模式及半风化岩石的再成岩作用. 大地构造与成矿学, 27(3): 270-276. [Wu K Y,Zha M,Hong M.2003. Structural models of uncon-formity and recurrent diagenesis of semi-weathering rock in Junggar Basin. Geotectonica et Metallogenia, 27(3): 270-276] [29] 邰浩. 2010. 准噶尔盆地西北缘二叠系不整合空间结构特征及控藏作用. 山东科技大学学报(自然科学版), 29(5): 24-28. [Tai H.2010. Spatial structural characteristics of the Permian unconformity and its reservoir forming control in Northwest edge of Junggar basin. Journal of Shandong University of Science and Technology(Natural Science), 29(5): 24-28] [30] 唐勇,徐洋,李亚哲,王力宝. 2018. 玛湖凹陷大型浅水退覆式扇三角洲沉积模式及勘探意义. 新疆石油地质, 39(1): 16-22. [Tang Y,Xu Y,Li Y Z,Wang L B.2018. Sedimentation model and exploration significance of large-scaled shallow retrogradation fan delta in Mahu Sag. Xinjiang Petroleum Geology, 39(1): 16-22] [31] 唐勇,郭文建,王霞田,鲍海娟,吴海生. 2019. 玛湖凹陷砾岩大油区勘探新突破及启示. 新疆石油地质, 40(2): 127-137. [Tang Y,Guo W J,Wang X T,Bao H J,Wu H S.2019. A new breakthrough in exploration of large conglomerate oil province in Mahu Sag and its implications. Xinjiang Petroleum Geology, 40(2): 127-137] [32] 夏近杰,何君毅,马亮,张吉辉. 2012. 玛东2斜坡区二叠系不整合面与油气成藏关系探讨. 天然气勘探与开发, 35(3): 9-12. [Xia J J,He J Y,Ma L,Zhang J H.2012. Relationship between unconformity surface and reservoir forming of Permian,Madong 2 slope. Natural Gas Exploration and Development, 35(3): 9-12] [33] 张善文. 2013. 准噶尔盆地盆缘地层不整合油气成藏特征及勘探展望. 石油实验地质, 35(3): 231-248. [Zhang S W.2013. Hydrocarbon accumulation characteristics and exploration prospects of stratigraphy unconformity in the basin margin of Junggar basin. Petroleum Geology & Experiment, 35(3): 231-248] [34] 郑孟林,樊向东,何文军,杨彤远,唐勇,丁靖,吴海生,陈磊,郭建辰. 2019. 准瞩尔盆地深层地质结构叠加演变与油气赋存. 地学前缘, 26(1): 22-32. [Zheng M L,Fan X D,He W J,Yang T Y,Tang Y,Ding J,Wu H S,Chen L,Guo J C.2019. Superposition of deep geological structural evolution and hydrocarbon accumulation in the Junggar Basin. Earth Science Frontiers, 26(1): 22-32] [35] 支东明,唐勇,郑孟林,郭文建,吴涛,邹志文. 2018. 玛湖凹陷源上砾岩大油区形成分布与勘探实践. 新疆石油地质, 39(1): 1-8. [Zhi D M,Tang Y,Zheng M L,Guo W J,Wu T,Zou Z W.2018. Discovery,distribution and exploration practice of large oil provinces of above-source conglomerate in Mahu Sag. Xingjiang Petroleum Geology, 39(1): 1-8] [36] 周路,朱江坤,宋永,陆鹏,瞿建华,尤新才,吴勇,任本兵,赵明坤,肖豪. 2019. 玛湖凹陷玛中—玛东地区三叠系百口泉组断裂特征及控藏作用分析. 地学前缘, 26(1): 248-261. [Zhou L,Zhu J K,Song Y,Lu P,Qu J H,You X C,Wu Y,Ren B B,Zhao M K,Xiao H.2019. Analysis of fault characteristics and reservoir control in Triassic Baikouquan Formation in central and eastern Mahu depression. Earth Science Frontiers, 26(1): 248-261] [37] Aubry M P.1991. Sequence stratigraphy: Eustasy or tectonic imprint. Journal of Geophysical Research,96(B4): 6641-6679. [38] Blackwelder E.1909. The valuation of unconformities. Journal of Geology, 17: 289-299. [39] Carroll A R,Wartes M A.2003. Organic carbon buried by large Permian lakes,northwest China. Geological Society of America Special Paper 370, 91-104. [40] Catuneanu O.2006. Principles of Sequence Stratigraphy. Amsterdam, Elsevier: 1-375. [41] Embry A F.1997. Global sequence boundaries of the Triassic and their recognition in the Western Canada Sedimentary Basin. Bulletin of Canadian Petroleum Geology, 45: 415-433. [42] Embry A F,Johannessen E,Owen D,Beauchamp B,Gianolla P.2007. Sequence stratigraphy as a“concrete”stratigraphic discipline. In: Report of the ISSC Task Group on Sequence Stratigraphy,ISSC,February, 2007. 104. [43] Grabau A W.1906. Types of sedimentary overlap. Geological Society of America Bulletin, 17: 567-636. [44] Haq B U,Hardenbol J,Vail P R.1987. Chronology of fluctuating sea levels since the Triassic(250 million years ago to present). Science, 235: 1156-1166. [45] Levorsen A I.1954. Geology of Petroleum. San Francisco: W.H. Freeman Company, 1-703. [46] Liu D D,Zhang C,Yao E D,Song Y,Jiang Z X,Luo Q.2017. What generated the Late Permian to Triassic unconformities in the southern Junggar Basin and western Turpan Basin;tectonic uplift,or increasing aridity? Palaeogeography,Palaeoclimatology, Palaeoecology, 468: 1-17. [47] Miall A D.2016. The valuation of unconformities. Earth Science Reviews, 163: 22-71. [48] Mitchum R M,Vail P R,Sangree J B.1977. Seismic stratigraphy and global changes of sea level,part 6: Stratigraphic interpretation of seismic reflection patterns in depositional sequences. In: Pay C E(ed). Seismic Stratigraphy-Applications to Hydrocarbon Exploration. AAPG Memoir 26, 117-133. [49] Payton C E.1977. Seismic Stratigraphy: Application to Hydrocarbon Exploration. AAPG Memoir 26, 1-516. [50] Posamentier H W,Jervey M T,Vail P R.1988. Eustatic controls on clastic deposition I,Conceptual framework. In: Wilgus C K,Hastings B S,Kendall C G St C. Posamentier H W,Ross C A,Wagoner Wagoner J C(eds).Sea Level Changes: An Integrated Approach. SEPM Special Publication 42, 110-124. [51] Qayyum F,Betzler C,Catuneanu O.2017. The wheeler diagram,flattening theory,and time. Marine and Petroleum Geology, 86: 1417-1430. [52] Romans B.2013. Strata are not flat. In: Hall M (ed). 52 things you should know about Geology. Agile Libre,Nova Scotia, Canada: 76-77. [53] Shanmugam G.1988. Origin,recognition and importance of erosional unconformities in sedimentary basins. In: Kleinspehn K L,Paola C(eds).New Perspectives in Basin Analysis. New York: Springer, 83-108. [54] Sloss L L.1963. Sequences in the cratonic interior of North America. Geological Society of America Bulletin, 74(2): 93-114. [55] Wheeler H E.1964. Baselevel,lithosphere surface,and time-stratigraphy. Geological Society of America Bulletin, 75(7): 599-609. [56] Wartes M A,Carroll A R,Greene T J.2002. Permian stratigraphic evolution of the Turpan-Hami Basin and adjacent regions,northwest China: Constraints on post-amalgamation tectonic evolution. Geological Society of America Bulletin, 114: 131-152. [57] Ying H F,Song H J.2013. Mass extinction and Pangea integration during the Paleozoic-Mesozoic transition. Science China: Earth Sciences,56(11): 1791-1803. doi: 10.1007/s11430-013-4624-3.