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The Cenozoic activities of Yangjiang-Yitongdong Fault: insights from analysis of the tectonic characteristics and evolution processes in western Zhujiang (Pearl) River Mouth Basin

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Abstract

The Yangjiang-Yitongdong Fault (YJF) is an important NW-trending regional fault, which divides the Zhujiang (Pearl) River Mouth Basin (ZRMB) into western and eastern segments. In Cenozoic, the northern continental margin of the South China Sea (SCS) underwent continental rifting, breakup, seafloor spreading and thermal subsidence processes, and the Cenozoic activities of YJF is one part of this series of complex processes. Two long NW-trending multichannel seismic profiles located on both sides of the YJF extending from the continental shelf to Continent-Ocean Boundary (COB) were used to study the tectonic and sedimentary characteristics of western ZRMB. Using the 2D-Move software and back-stripping method, we constructed the balance cross-section model and calculated the fault activity rate. Through the comprehensive consideration of tectonic position, tectonic evolution history, featured structure, and stress analysis, we deduced the activity history of the YJF in Cenozoic. The results showed that the YJF can be divided into two segments by the central uplift belt. From 65 Ma to 32 Ma, the YJF was in sinistral motion as a whole, inherited the preexisting sinistral motion of Mesozoic YJF, in which, the southern part of YJF was mainly in extension activity, controlling the formation and evolution of Yunkai Low Uplift, coupled with slight sinistral motion. From 32 Ma to 23.8 Ma, the sinistral motion in northern part of YJF continued, while the sinistral motion in southern part began to stop or shifted to a slightly dextral motion. After 23.8 Ma, the dextral motion in southern part of YJF continued, while the sinistral motion in northern part of YJF gradually stopped, or shifted to the slightly dextral motion. The shift of the YJF strike-slip direction may be related to the magmatic underplating in continent-ocean transition, southeastern ZRMB. According to the analysis of tectonic activity intensity and rift sedimentary structure, the activities of YJF in Cenozoic played a regulating role in the rift extension process of ZRMB.

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References

  • Bai Yongliang, Wu Shiguo, Liu Zhan, et al. 2015. Full-fit reconstruction of the South China Sea conjugate margins. Tectonophysics, 661: 121–135, doi: 10.1016/j.tecto.2015.08.028

    Article  Google Scholar 

  • Barckhausen U, Engels M, Franke D, et al. 2014. Evolution of the South China Sea: revised ages for breakup and seafloor spreading. Marine and Petroleum Geology, 58: 599–611, doi: 10.1016/ j.marpetgeo. 2014.02.022

    Article  Google Scholar 

  • Barckhausen U, Engels M, Franke D, et al. 2015. Reply to Chang et al.. 2014. Evolution of the South China Sea: revised ages for breakup and seafloor spreading. Marine and Petroleum Geology, 59: 679–681, doi: 10.1016/j.marpetgeo.2014.09.002

    Article  Google Scholar 

  • Ben-Avraham Z, Uyeda S. 1973. The evolution of the China Basin and the Mesozoic paleogeography of Borneo. Earth and Planetary Science Letters, 18(18): 365–376, doi: 10.1016/0012-821X(73) 90077-0

    Article  Google Scholar 

  • Briais A, Patriat P, Tapponnier P. 1993. Updated interpretation of magnetic anomalies and seafloor spreading stages in the South China Sea: implications for the tertiary tectonics of Southeast Asia. Journal of Geophysical Research, 98(B4): 6299–6328, doi: 10.1029/92JB02280

    Article  Google Scholar 

  • Cameselle A L, Ranero C R, Franke D, et al. 2017. The continent-ocean transition on the northwestern South China Sea. Basin Research, 29(S1): 73–95

    Article  Google Scholar 

  • Chang J H, Lee T Y, Hsu H H, et al. 2015. Comment on Barckhausen et al., 2014-evolution of the South China Sea: revised ages for breakup and seafloor spreading. Marine and Petroleum Geology, 59: 676–678, doi: 10.1016/j.marpetgeo.2014.09.003

    Article  Google Scholar 

  • Chen Hanzong, Wu Xiangjie, Zhou Di, et al. 2005. Meso-cenozoic faults in Zhujiang River Mouth Basin and their geodynamic background. Journal of Tropical Oceanography (in Chinese), 24(24): 52–61

    Google Scholar 

  • Chen Jiangxin, Zhang Baojin, Song Haibin. 2014. Far offset refractive velocity properties of the Cenozoic strata in the northern South China Sea. Chinese Journal of Geophysics (in Chinese), 57(57): 2223–2234

    Google Scholar 

  • Chen Lin, Hu Jiwei, Yang Dinghui, et al. 2017. Kinematic models for the opening of the South China Sea: An upwelling divergent flow origin. Journal of Geodynamics, 107: 20–33, doi: 10.1016/j.jog. 2017.03.002

    Article  Google Scholar 

  • Clift P, Lin Jian, Barckhausen U. 2002. Evidence of low flexural rigidity and low viscosity lower continental crust during continental break-up in the South China Sea. Marine and Petroleum Geology, 19(19): 951–970, doi: 10.1016/S0264-8172(02)00108-3

    Article  Google Scholar 

  • Dong Dongdong, Wu Shiguo, Zhang Gongcheng, et al. 2008. Rifting process and formation mechanisms of syn-rift stage prolongation in the deepwater basin, northern South China Sea. Chinese Science Bulletin, 53(53): 3715–3725, doi: 10.1007/sll434-008-0326-1

    Article  Google Scholar 

  • Gao Hongfang. 2008. Comparing the basement characteristics of Cenozoic sedimentary basins on the eastern and western margins of the northern South China Sea. Geological Research of South China Sea (in Chinese), 23–34

    Google Scholar 

  • Guo Lingli, Li Sanzhong, Zhao S J, et al. 2016. Final breakup of continental block and opening of oceanic lithosphere: insights from deep crustal structure and tectonic evolution of the ocean-continent transition zone in the northern South China Sea. Geological Journal, 51(S1): 318–330

    Article  Google Scholar 

  • Gilley L D, Harrison T M, Leloup P H, et al. 2003. Direct dating of left-lateral deformation along the Red River shear zone, China and Vietnam. Journal of Geophysical Research, 108(108): 2127

    Google Scholar 

  • Hall R. 1996. Reconstructing Cenozoic SE Asia. In: Hall R, Blundell D J, eds. Tectonic evolution of Southeast Asia. London: Geological Society Special Publication, 153–184

  • Hall R. 2002. Cenozoic geological and plate tectonic evolution of SE Asia and the SW Pacific: computer-based reconstructions, model and animations. Journal of Asian Earth Science, 20(20): 353–431, doi: 10.1016/S1367-9120(01)00069-4

    Article  Google Scholar 

  • Hall R. 2012. Late Jurassic-Cenozoic reconstructions of the Indonesian region and the Indian Ocean. Tectonophysics, 570–571: 1–41, doi: 10.1016/j.tecto.2012.04.021

    Google Scholar 

  • Hayes D E, Nissen S S. 2005. The South China Sea margins: implications for rifting contrasts. Earth and Planetary Sciences Letters, 237(3-4): 601–616, doi: 10.1016/j.epsl.2005.06.017

    Google Scholar 

  • Hollway N H. 1982. The stratigraphic and tectonic evolution of Reed Bank, North Palawan and Mindoro to the Asian mainland and its significance in the evolution of the South China Sea. AAPG Bulletin, 66: 1357–1383

    Google Scholar 

  • Hu Dengke, Zhou Di, Wu Xiangjie, et al. 2009. Crustal structure and extension from slope to deepsea basin in the northern South China Sea. Journal of Earth Science, 20(20): 27–37, doi: 10.1007/ S12583-009-0003-6

    Article  Google Scholar 

  • Huang Chunju, Zhou Di, Chen Changmin, et al. 2005. Deep crustal structure of Baiyun Sag, northern South China Sea revealed from deep seismic reflection profile. Chinese Science Bulletin, 50(50): 1131–1138, doi: 10.1360/04wd0207

    Article  Google Scholar 

  • Karig D E. 1971. Origin and development of marginal basins in the western Pacific. Journal of Geophysical Research, 76(76): 2542–2561, doi: 10.1029/JB076i011p02542

    Article  Google Scholar 

  • Leloup P H, Lacassin R, Tapponnier P, et al. 1995. The Ailao Shan-Red River shear zone (Yunnan, China), Tertiary transform boundary of Indochina. Tectonophysics, 251(1-4): 3–10

    Google Scholar 

  • Li Qinying, Luo Fengzhi, Miao Cuizhi. 2000. Research on fault activity ratio and its application. Fault-Block Oil & Gas Field (in Chinese), 7(7): 15–17

    Google Scholar 

  • Li Chunfeng, Xu Xing, Lin Jian, et al. 2014. Ages and magnetic structures of the South China Sea constrained by deep tow magnetic surveys and IODP Expedition 349. Geochemistry, Geophysics, Geosystems, 15(15): 4958–4983, doi: 10.1002/2014GC005567

    Article  Google Scholar 

  • Li Chunfeng, Zhou Zuyi, Li Jiabiao, et al. 2007. Structures of the northeasternmost South China Sea continental margin and ocean basin: geophysical constraints and tectonic implications. Marine Geophysical Researches, 28(28): 59–79, doi: 10.1007/ S11001-007-9014-9

    Article  Google Scholar 

  • Li Chunfeng, Zhou Zuyi, Li Jiabiao, et al. 2008. Magnetic zoning and seismic structure of the South China Sea ocean basin. Marine Geophysical Researches, 29(29): 223–238, doi: 10.1007/sll001-008-9059-4

    Article  Google Scholar 

  • Liu Hailing, Guo Lingzhi, Sun Yan, et al. 2002. Study on Fault System in Nansha Block (South China Sea) and the Block’s Lithospher-ic Dynamics (in Chinese). Beijing: Science Press, 8–19

    Google Scholar 

  • Liu Hailing, Zheng Hongbo, Wang Yanlin, et al. 2011. Basement of the South China Sea: tracing the Tethyan Realm. Acta Geologica Sinica, 85(85): 637–655, doi: 10.1111/acgs.2011.85.issue-3

    Article  Google Scholar 

  • Liu Zhifeng, Wang Shenglan, Yin Binhao, et al. 2013. Different distribution of lacustrine fades and its controlling factors during rifting stage, Zhu I and Zhu III Depressions, Pearl River Mouth Basin. Petroleum Geology and Experiment (in Chinese), 35(35): 523–527

    Google Scholar 

  • Lu Baoliang, Wang Pujun, Zhang Gongcheng, et al. 2011. Basement structures of an epicontinental basin in the northern South China Sea and their significance in petroleum prospect. Acta Petrolei Sinica (in Chinese), 32(32): 580–587

    Google Scholar 

  • Nissen S S, Hayes D E, Buhl P, et al. 1995. Deep penetration seismic soundings across the northern margin of the South China Sea. Journal of Geophysical Research, 100(B11): 22407–22433, doi: 10.1029/95JB01866

    Article  Google Scholar 

  • Pang Xiong, Yang Shaokun, Zhu Ming, et al. 2004. Deep-water fan systems and petroleum resources on the northern slope of the South China Sea. Acta Geologica Sinica, 78(78): 626–631

    Google Scholar 

  • Ru Ke, Zhou Di, Chen Hanzong. 1994. Basin evolution and hydrocarbon potential of the northern South China Sea. In: Zhou Di, Liang Yuanbo, Zeng Chengkui, eds. Oceanology of China Seas. Dordrecht: Springer, 361–372

    Google Scholar 

  • Shi Xiaobin, Burov E, Leroy S, et al. 2005. Intrusion and its implication for subsidence: a case from the Baiyun Sag, on the northern margin of the South China Sea. Tectonophysics, 407(1-2): 117–134, doi: 10.1016/j.tecto.2005.07.004

    Google Scholar 

  • Sibuet J C, Yeh Y C, Lee C S. 2016. Geodynamics of the South China Sea. Tectonophysics, 692: 98–119, doi: 10.1016/j.tecto.2016. 02.022

    Google Scholar 

  • Su Daquan. 2004. Geological and geophysical complimentary survey and evaluation on mineral resources (in Chinese). Beijing: China Oceanic Press, 132

    Google Scholar 

  • Sun Zhen, Pang Xiong, Zhong Zhihong, et al. 2005. Dynamics of tertiary tectonic evolution of the Baiyun Sag in the Pearl River Mouth Basin. Earth Science Frontiers (in Chinese), 12(12): 489–498

    Google Scholar 

  • Sun Xiaomeng, Zhang Xuqing, Zhang Gongcheng, et al. 2014. Texture and tectonic attribute of Cenozoic basin basement in the northern South China Sea. Science China Earth Sciences, 57(57): 1199–1211, doi: 10.1007/sll430-014-4835-2

    Article  Google Scholar 

  • Sun Zhen, Zhong Zhihong, Zhou Di, et al. 2008. Dynamics analysis of the Baiyun Sag in the Pearl River Mouth Basin, North of the South China Sea. Acta Geologica Sinica, 82(82): 73–83

    Google Scholar 

  • Sun Zhen, Zhou Di, Sun Longtao, et al. 2010. Dynamic analysis on rifting stage of Pearl River Mouth basin through analogue modeling. Journal of Earth Science, 21(21): 439–454, doi: 10.1007/ S12583-010-0106-0

    Article  Google Scholar 

  • Tamaki K. 1995. Upper mantle extrusion tectonics of Southeast Asia and formation of the western Pacific back-arc basins. In: Le Pichon X, Rangin C, Tapponnier P, eds. International Workshop: Cenozoic Evolution of the Indochina Peninsula. Hanoi-Do Son, Abstract with Program, 89

    Google Scholar 

  • Tapponnier P, Lacassin R, Leloup P H, et al. 1990. The Ailao Shan /Red River metamorphic belt: Tertiary left-lateral shear between Indochina and South China. Nature, 243(243): 431–437

    Google Scholar 

  • Tapponnier P, Peltzer G, Le Dain A Y, et al. 1982. Propagating extrusion tectonics in Asia: New insights from simple experiments with plasticine. Geology, 10(10): 611–616, doi: 10.1130/0091-7613(1982)10611:PETIAN2.0.CO;2

    Google Scholar 

  • Taylor B, Hayes D E. 1980. The tectonic evolution of the South China Basin. In: Hayes D E, ed. The Tectonic and Geologic Evolution of Southeast Asian Seas and Islands. Washington, DC: American Geophysical Union, 89–104

    Chapter  Google Scholar 

  • Taylor B, Hayes D E. 1983. Origin and history of the South China Sea basin. In: The Tectonic and Geologic Evolution of Southeast Asian Seas and Islands, II. Washington, DC: American Geophysical Union, 23–56

    Google Scholar 

  • Wang Zhangshi, Zhu Weilin, Zhong Kai, et al. 2015. Late cretaceous tectonic thrusting and its genesis in northern slope of the South China Sea (in Chinese). Earth Science-Journal of China University of Geosciences, 40(40): 1505–1516 doi: 10.3799/ dqkx.2015.135

    Article  Google Scholar 

  • Wu Zhe, Zhu Weilin, Shao Lei, et al. 2016. Sedimentary fades and the rifting process during the late Cretaceous to early Oligocene in the northern continental margin, South China Sea. Interpretation, 4(4): SP33-SP45, doi: 10.1190/INT-2015-0163.1

    Google Scholar 

  • Xie Xinong, Miiller R D, Li Sitian, et al. 2006. Origin of anomalous subsidence along the Northern South China Sea margin and its relationship to dynamic topography. Marine and Petroleum Geology, 23(23): 745–765, doi: 10.1016/j.marpetgeo.2006.03.004

    Article  Google Scholar 

  • Xia Zhongyu, Wan Zhifeng, Wang Xianqing, et al. 2016. The tectonic differences between the east and the west in the deep-water area of the northern South China Sea. Acta Oceanologica Sinica, 35(35): 86–95, doi: 10.1007/sl3131-016-0799-8

    Article  Google Scholar 

  • Xie Hui, Zhou Di, Li Yuanping, et al. 2014. Cenozoic tectonic subsidence in deepwater sags in the Pearl River Mouth Basin, northern South China Sea. Tectonophysics, 615-616: 182–198, doi: 10.1016/j.tecto.2014.01.010

    Article  Google Scholar 

  • Yan Quanshu, Shi Xuefa, Castillo P R. 2014. The late Mesozoic-Ceno-zoic tectonic evolution of the South China Sea: a petrologic perspective. Journal of Asian Earth Sciences, 85: 178–201, doi: 10.1016/j.jseaes.2014.02.005

    Article  Google Scholar 

  • Yang Shengxiong, Qiu Yan, Zhu Benduo, et al. 2015. Atlas of Geology and Geophysics of the South China Sea. Tianjin: China Navigation Publications

    Google Scholar 

  • Zhang Bingkun, Li Sanzhong, Xia Zhen, et al. 2014. Distribution of Cenozoic igneous rocks and its relation to submarine geological hazards in the deepwater area of the northern South China Sea. Haiyang Xuebao (in Chinese), 36(36): 90–100

    Google Scholar 

  • Zhong Zhihong, Shi Hesheng, Zhu Ming, et al. 2014. A discussion on the tectonic-strati graphic framework and its origin mechanism in Pearl River Mouth Basin. China Offshore Oil and Gas (in Chinese), 26(26): 20–29

    Google Scholar 

  • Zhou Di, Chen Hanzong, Wu Shimin, et al. 2002. Opening of the South China Sea by dextral splitting of the East Asian continental margin. Haiyang Xuebao (in Chinese), 76(76): 180–190

    Google Scholar 

  • Zhou Di, Hu Dengke, He Min, et al. 2008a. The selection of fitting curve in time-depth transformation of deep-seated strata and crust. Earth Science-Journal of China University of Geosciences (in Chinese), 33(33): 531–537, doi: 10.3799/dqkx.2008.067

    Article  Google Scholar 

  • Zhou Di, Sun Zhen, Chen Hanzong, et al. 2008b. Mesozoic paleogeo-graphy and tectonic evolution of South China Sea and adjacent areas in the context of Tethyan and Paleo-Pacific interconnections. Island Arc, 17(17): 186–207, doi: 10.1111/j.1440-1738.2008.00611.x

    Article  Google Scholar 

  • Zhou Di, Wang Wanyin, Wang Jialin, et al. 2006. Mesozoic subduction-accretion zone in northeastern South China Sea inferred from geophysical interpretations. Science in China Series D, 49(49): 471–482, doi: 10.1007/sll430-006-0471-9

    Article  Google Scholar 

  • Zhu Weilin, Mi Lijun. 2011. Atlas of Oil and Gas Basins, China Sea (in Chinese). Beijing: Petroleum Industry Press, 1–316

    Google Scholar 

  • Zhu Weilin, Xie Xinong, Wang Zhenfeng, et al. 2017. New insights on the origin of the basement of the Xisha Uplift, South China Sea. Science China Earth Sciences, 60(60): 2214–2222, doi: 10.1007/S11430-017-9089-9

    Article  Google Scholar 

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Correspondence to Hailing Liu.

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Foundation item: The National Natural Science Foundation of China under contract Nos 41776072, 41476039, 41674092 and 41676045; the Geotectonic Evolution of China and Compilation of International Asian Geotectonic Map under contract No. DD20190364; the Marine Basic Geological Survey Project under contract No. DD20190627.

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Li, Y., Zhu, R., Liu, H. et al. The Cenozoic activities of Yangjiang-Yitongdong Fault: insights from analysis of the tectonic characteristics and evolution processes in western Zhujiang (Pearl) River Mouth Basin. Acta Oceanol. Sin. 38, 87–101 (2019). https://doi.org/10.1007/s13131-019-1477-x

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