Volume 42 Issue 3
Mar.  2023
Turn off MathJax
Article Contents
Xiaojun Xie, Wu Tang, Gongcheng Zhang, Zhigang Zhao, Shuang Song, Shixiang Liu, Yibo Wang, Jia Guo. The gradual subduction-collision evolution model of Proto-South China Sea and its control on oil and gas[J]. Acta Oceanologica Sinica, 2023, 42(3): 123-137. doi: 10.1007/s13131-022-2132-z
Citation: Xiaojun Xie, Wu Tang, Gongcheng Zhang, Zhigang Zhao, Shuang Song, Shixiang Liu, Yibo Wang, Jia Guo. The gradual subduction-collision evolution model of Proto-South China Sea and its control on oil and gas[J]. Acta Oceanologica Sinica, 2023, 42(3): 123-137. doi: 10.1007/s13131-022-2132-z

The gradual subduction-collision evolution model of Proto-South China Sea and its control on oil and gas

doi: 10.1007/s13131-022-2132-z
Funds:  The National Natural Science Foundation of China under contract No. 91528303; the National Science and Technology Major Project under contract No. 2016ZX05026-004; the CNOOC Basic Geology and Exploration Strategy of Natural Gas in the South China Sea under contract No. 2021-KT-YXKY-05.
More Information
  • Corresponding author: zhanggch@cnooc.com.cn
  • Received Date: 2022-02-23
  • Accepted Date: 2022-11-15
  • Available Online: 2023-01-10
  • Publish Date: 2023-03-25
  • This study involved outcrop, drilling, seismic, gravity, and magnetic data to systematically document the geological records of the subduction process of Proto-South China Sea (PSCS) and establish its evolution model. The results indicate that a series of arc-shaped ophiolite belts and calcalkaline magmatic rocks are developed in northern Borneo, both of which have the characteristics of gradually changing younger from west to east, and are direct signs of subduction and collision of PSCS. At the same time, the subduction of PSCS led to the formation of three accretion zones from the south to the north in Borneo, the Kuching belt, Sibu belt, and Miri belt. The sedimentary formation of northern Borneo is characterized by a three-layer structure, with the oceanic basement at the bottom, overlying the deep-sea flysch deposits of the Rajang–Crocker group, and the molasse sedimentary sequence that is dominated by river-delta and shallow marine facies at the top, recording the whole subduction–collision–orogeny process of PSCS. Further, seismic reflection and tomography also confirmed the subduction and collision of PSCS. Based on the geological records of the subduction and collision of PSCS, combined with the comprehensive analysis of segmented expansion and key tectonic events in the South China Sea, we establish the “gradual” subduction-collision evolution model of PSCS. During the late Eocene to middle Miocene, the Zengmu, Nansha, and Liyue–Palawan blocks were separated by West Baram Line and Balabac Fault, which collided with the Borneo block and Kagayan Ridge successively from the west to the east, forming several foreland basin systems, and PSCS subducted and closed from the west to the east. The subduction and extinction of PSCS controlled the oil and gas distribution pattern of southern South China Sea (SSCS) mainly in three aspects. First, the “gradual” closure process of PSCS led to the continuous development of many large deltas in SSCS. Second, the deltas formed during the subduction–collision of PSCS controlled the development of source rocks in the basins of SSCS. Macroscopically, the distribution and scale of deltas controlled the distribution and scale of source rocks, forming two types of source rocks, namely, coal measures and terrestrial marine facies. Microscopically, the difference of terrestrial higher plants carried by the delta controlled the proportion of macerals of source rocks. Third, the difference of source rocks mainly controlled the distribution pattern of oil and gas in SSCS. Meanwhile, the difference in the scale of source rocks mainly controlled the difference in the amount of oil and gas discoveries, resulting in a huge amount of oil and gas discoveries in the basin of SSCS. Meanwhile, the difference of macerals of source rocks mainly controlled the difference of oil and gas generation, forming the oil and gas distribution pattern of “nearshore oil and far-shore gas”.
  • loading
  • Aurelio M A, Forbes M T, Taguibao K J L, et al. 2014. Middle to late Cenozoic tectonic events in south and central Palawan (Philippines) and their implications to the evolution of the south-eastern margin of South China Sea: evidence from onshore structural and offshore seismic data. Marine and Petroleum Geology, 58: 658–673. doi: 10.1016/j.marpetgeo.2013.12.002
    Barckhausen U, Roeser H A. 2004. Seafloor spreading anomalies in the South China Sea revisited. In: Clift P, Kuhnt W, Wang P, et al., eds. Continent-Ocean Interactions within East Asian Marginal Seas. Washington: American Geophysical Union, 121–125. doi: 10.1029/149GM07
    Ben-Avraham Z, Uyeda S. 1973. The evolution of the China basin and the Mesozoic paleogeography of Borneo. Earth and Planetary Science Letters, 18(2): 365–376. doi: 10.1016/0012-821X(73)90077-0
    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
    Cao Zicheng. 2019. Jurassic-Paleogene sedimentary provenance and paleogeographic reconstruction of the eastern South China Sea region (in Chinese)[dissertation]. Shanghai: Tongji University, 1–201
    Cullen A. 2014. Reprint of: nature and significance of the West Baram and Tinjar lines, NW Borneo. Marine and Petroleum Geology, 58: 674–686. doi: 10.1016/j.marpetgeo.2014.01.009
    Cullen A, Reemst P, Henstra G, et al. 2010. Rifting of the South China Sea: new perspectives. Petroleum Geoscience, 16(3): 273–282. doi: 10.1144/1354-079309-908
    Deng Yunhua, Lan Lei, Li Youchuan, et al. 2019. On the control effect of deltas on the distribution of marine oil and gas fields in the South China Sea. Acta Petrolei Sinica (in Chinese), 40(S2): 1–12
    Feng Changmao, Wang Houjin, Xie Xinong, et al. 2015. Thermal evolution of source rocks and contributing factors of the northern and southern continental marginal basins in the South China Sea. Geoscience (in Chinese), 29(1): 97–108
    Franke D, Barckhausen U, Heyde I, et al. 2008. Seismic images of a collision zone offshore NW Sabah/Borneo. Marine and Petroleum Geology, 25(7): 606–624. doi: 10.1016/j.marpetgeo.2007.11.004
    Franke D, Savva D, Pubellier M, et al. 2014. The final rifting evolution in the South China Sea. Marine and Petroleum Geology, 58: 704–720. doi: 10.1016/j.marpetgeo.2013.11.020
    Gatinsky Y G, Hutchison C S. 1986. Cathaysia, Gondwanaland, and the Paleotethys in the evolution of continental Southeast Asia. Bulletin of the Geological Society of Malaysia, 20: 179–199. doi: 10.7186/bgsm20198610
    Gong Ming, Li Tanggen, Wu Yajun. 2001. The Structural Characteristics of the Nansha Sea Basin Evolution (in Chinese). Wuhan: China University of Geosciences Press, 1–100
    Guo Jia, Xie Xiaojun, Liu Shixiang, et al. 2016. Cenozoic sedimentary systems in Zengmu Basin, South China Sea. China Petroleum Exploration (in Chinese), 21(4): 99–107
    Hafkenscheid E. 2004. Subduction of the Tethys Oceans reconstructed from plate kinematics and mantle tomography [dissertation]. Utrecht: Utrecht University, 1–208
    Hakimi M H, Abdullah W H, Sia S G, et al. 2013. Organic geochemical and petrographic characteristics of Tertiary coals in the northwest Sarawak, Malaysia: implications for palaeoenvironmental conditions and hydrocarbon generation potential. Marine and Petroleum Geology, 48: 31–46. doi: 10.1016/j.marpetgeo.2013.07.009
    Hall R. 2013. Contraction and extension in northern Borneo driven by subduction rollback. Journal of Asian Earth Sciences, 76: 399–411. doi: 10.1016/j.jseaes.2013.04.010
    Hall R, Breitfeld H T. 2017. Nature and demise of the Proto-South China Sea. Bulletin of the Geological Society of Malaysia, 63: 61–76. doi: 10.7186/bgsm63201703
    Hall R, Spakman W, 2015. Mantle structure and tectonic history of SE Asia. Tectonophysics, 658: 14–45
    Hall R, van Hattum M W A, Spakman W. 2008. Impact of India-Asia collision on SE Asia: the record in Borneo. Tectonophysics, 451(1–4): 366–369,
    Hamilton W B. 1973. Tectonics of the Indonesian region. Bulletin of the Geological Society of Malaysia, 6: 3–10. doi: 10.7186/bgsm06197301
    Hasiah A W, Lee C P, Gou P, et al. 2013. Coal-bearing strata of Labuan: mode of occurrences, organic petrographic characteristics and stratigraphic associations. Journal of Asian Earth Sciences, 76: 334–345. doi: 10.1016/j.jseaes.2013.05.017
    Hesse S, Back S, Franke D. 2009. The deep-water fold-and-thrust belt offshore NW Borneo: gravity-driven versus basement-driven shortening. GSA Bulletin, 121(5–6): 939–953
    Hinz K, Block M, Kudrass H R, et al. 1991. Structural elements of the Sulu Sea, Philippines. AAPG Bulletin, 78(7): 483–506
    Holloway N H. 1982. North Palawan Block, Philippines—its relation to Asian Mainland and role in evolution of South China Sea. AAPG Bulletin, 66(9): 1355–1383. doi: 10.1306/03B5A7A5-16D1-11D7-8645000102C1865D
    Huang Chiyue, Wang Pinxian, Yu Mengming, et al. 2019. Potential role of strike-slip faults in opening up the South China Sea. National Science Review, 6(5): 891–901. doi: 10.1093/nsr/nwz119
    Hutchison C S. 1989. Geological Evolution of South-East Asia. Oxford: Clarendon Press, 376
    Hutchison C S. 1996. The ‘Rajang accretionary prism’ and ‘Lupar Line’ problem of Borneo. In: Hall R, Blundell D, eds. Tectonic Evolution of Southeast Asia. London: Geological Society, 106(1): 247–261
    Hutchison C S. 2004. Marginal basin evolution: the southern South China Sea. Marine and Petroleum Geology, 21(9): 1129–1148. doi: 10.1016/j.marpetgeo.2004.07.002
    Hutchison C S. 2010. Oroclines and paleomagnetism in Borneo and South-East Asia. Tectonophysics, 496(1–4): 53–67,
    Hutchison C S, Chakraborty K R. 1979. Tin: a mantle or crustal source?. Bulletin of the Geological Society of Malaysia, 11: 71–79,
    Ilao K A, Morley C K, Aurelio M A. 2018. 3D seismic investigation of the structural and stratigraphic characteristics of the Pagasa Wedge, Southwest Palawan Basin, Philippines, and their tectonic implications. Journal of Asian Earth Sciences, 154: 213–237. doi: 10.1016/j.jseaes.2017.12.017
    Lan Lei. 2019. Controlling factors for different hydrocarbon distribution in basins in Southern South China Sea. Geological Science and Technology Information (in Chinese), 38(4): 23–29
    Lei Chao, Ren Jianye, Zhang Jing. 2015. Tectonic Province Divisions in the South China Sea: implications for basin geodynamics. Earth Science—Journal of China University of Geosciences (in Chinese), 40(4): 744–762. doi: 10.3799/dqkx.2015.062
    Li C F, Lin J, Kulhanek D K, et al. 2015. Expedition 349 summary. In: Li C F, Lin J, Kulhanek D K, et al., Proceedings of the International Ocean Discovery Program, 349: South China Sea Tectonics, 1–43,
    Lin Jian, Li Jiabiao, Xu Yigang, et al. 2019. Ocean drilling and major advances in marine geological and geophysical research of the South China Sea. Haiyang Xuebao (in Chinese), 41(10): 125–140
    Liu Huanjie, Sang Shuxun, Shi Jian. 1997. Comparative Sedimentology Research on Coal-Forming Environments (in Chinese). Xuzhou: China University of mining and Technology Press, 1–100
    Lu Baoliang, Wang Pujun, Liang Jianshe, et al. 2014. Structural properties of Paleo-South China Sea and their relationship with the Tethys and the Paleo-Pacific Tectonic Domain. Journal of Jilin University (Earth Science Edition) (in Chinese), 44(5): 1441–1450
    Luo Xingang, Wang Wanyin, Zhang Gongcheng, et al. 2018. Study on distribution features of faults based on gravity data in the South China Sea and its adjacent areas. Chinese Journal of Geophysics (in Chinese), 61(10): 4255–4268. doi: 10.6038/cjg2018L0561
    Madon M, Kim L K, Wong R. 2013. The structure and stratigraphy of deepwater Sarawak, Malaysia: implications for tectonic evolution. Journal of Asian Earth Sciences, 76: 312–333. doi: 10.1016/j.jseaes.2013.04.040
    Morley C K. 2012. Late Cretaceous–early Palaeogene tectonic development of SE Asia. Earth-Science Reviews, 115(1–2): 37–75,
    Rangin G, Bellon H, Benard F, et al. 1990. Neogene Arc-continent collision in Sabah, Northern Borneo (Malaysia). Tectonophysics, 183(1–4): 305–319,
    Sandal S T. 1996. The Geology and Hydrocarbon Resources of Negara Brunei Darussalam. 2nd ed. Bandar Seri Begawan: Brunei Shell Petroleum Company, 1–243
    Shipboard Scientific Party. 2000. Leg 184 summary: exploring the Asian Monsoon through drilling in the South China Sea. In: Wang P, Prell W I, Blum P, et al., eds. Proceedings of the Ocean Drilling Program, College Station: IODP, 1–77
    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
    Simmons S F, Browne P R L. 1990. Mineralogic, alteration and fluid-inclusion studies of epithermal gold-bearing veins at the Mt. Muro prospect, Central Kalimantan (Borneo), Indonesia. Journal of Geochemical Exploration, 35(1–3): 63–103,
    Soeria-Atmadja R, Noeradi D, Priadi B. 1999. Cenozoic magmatism in Kalimantan and its related geodynamic evolution. Journal of Asian Earth Sciences, 17(1/2): 25–45,
    Sun Zhen, Lin Jian, Qiu Ning, et al. 2019. The role of magmatism in the thinning and breakup of the South China Sea continental margin: special topic: the South China Sea ocean drilling. National Science Review, 6(5): 871–876. doi: 10.1093/nsr/nwz116
    Tang Qunshu, Zheng Chan. 2013. Crust and upper mantle structure and its tectonic implications in the South China Sea and adjacent regions. Journal of Asian Earth Sciences, 63: 510–525. doi: 10.1016/j.jseaes.2012.10.037
    Tang Wu, Zhao Zhigang, Song Shuang, et al. 2021a. Differences in the Tectonic evolution of basins in the Central-Southern South China Sea and their hydrocarbon accumulation conditions. Acta Geologica Sinica (English Edition), 95(1): 30–40. doi: 10.1111/1755-6724.14638
    Tang Wu, Zhao Zhigang, Xie Xiaojun, et al. 2021b. Cenozoic sequence stratigraphic framework and tectonic evolution model of Nansha block in South China Sea. China Offshore Oil and Gas (in Chinese), 33(2): 67–77
    Tang Wu, Zhao Zhigang, Zhang Gongcheng, et al. 2018. Structural deformation characteristics and genetic mechanism of deepwater fold and thrust belts in the Brunei-Sabah Basin. Chinese Journal of Geophysics (in Chinese), 61(10): 4281–4295
    Taylor B, Hayes D E. 1983. Origin and history of the South China Sea basin. In: Hayes D E, ed. The Tectonic and Geologic Evolution of Southeast Asian Seas and islands: Part 2. Washington: American Geophysical Union, 23–56
    Tian Zhiwen, Tang Wu, Wang Pujun, et al. 2021. Tectonic evolution and key geological issues of the Proto-South China Sea. Acta Geologica Sinica (English Edition), 95(1): 77–90. doi: 10.1111/1755-6724.14644
    Todd S P, Dunn M E, Barwise A J G. 1997. Characterizing petroleum charge systems in the tertiary of SE Asia. In: Fraser A J, Matthews S J, Murphy R W, eds. Petroleum Geology of Southeast Asia. London: Geological Society, 126(1): 25–47,
    van Hattum M W A, Hall R, Pickard A L, et al. 2006. Southeast Asian sediments not from Asia: provenance and geochronology of North Borneo sandstones. Geology, 34(7): 589–592. doi: 10.1130/G21939.1
    von Hagke C, Philippon M, Avouac J P, et al. 2016. Origin and time evolution of subduction polarity reversal from plate kinematics of Southeast Asia. Geology, 44(8): 659–662. doi: 10.1130/G37821.1
    Wang Pinxian. 2012. Tracing the life history of a marginal sea—on “the South China Sea Deep” Research Program. Chinese Science Bulletin, 57(24): 3093–3114. doi: 10.1007/s11434-012-5087-1
    Wang Xuebin. 2015. The relationship of tectonic evolution between the Proto-South China Sea and the South China Sea Basin (in Chinese)[dissertation]. Qingdao: Ocean University of China, 1–70
    Wang Pinxian, Huang Chiyue, Lin Jian, et al. 2019. The South China Sea is not a mini-Atlantic: plate-edge rifting vs intra-plate rifting. National Science Review, 6(5): 902–913. doi: 10.1093/nsr/nwz135
    Wang P C, Li S Z, Guo L L, et al. 2016. Mesozoic and Cenozoic accretionary orogenic processes in Borneo and their mechanisms. Geological Journal, 51(S1): 464–489. doi: 10.1002/gj.2835
    Wu Jonny, Suppe J. 2018. Proto-South China Sea plate tectonics using subducted slab constraints from tomography. Journal of Earth Science, 29(6): 1304–1318. doi: 10.1007/s12583-017-0813-x
    Xie Xinong, Zhang Cheng, Ren Jianye, et al. 2015. Effects of distinct tectonic evolutions on hydrocarbon accumulation in northern and southern continental marginal basins of South China Sea. Chinese Journal of Geophysics (in Chinese), 54(12): 3280–3291
    Yao Yongjian, Yang Chupeng, Li Xuejie, et al. 2013. The seismic reflection characteristics and tectonic significance of the tectonic revolutionary surface of mid-Miocene (T3 seismic interface) in the southern South China Sea. Chinese Journal of Geophysics (in Chinese), 56(4): 1274–1286
    Ye Qing, Mei Lianfu, Shi Hesheng, et al. 2018. The Late Cretaceous tectonic evolution of the South China Sea area: an overview, and new perspectives from 3D seismic reflection data. Earth-Science Reviews, 187: 186–204. doi: 10.1016/j.earscirev.2018.09.013
    Zahirovic S, Seton M, Müller R D. 2014. The Cretaceous and Cenozoic tectonic evolution of Southeast Asia. Solid Earth, 5(1): 227–273. doi: 10.5194/se-5-227-2014
    Zhang Gongcheng. 2010. Tectonic evolution of deepwater area of northern continental margin in South China Sea. Acta Petrolei Sinica (in Chinese), 31(4): 528–533, 541
    Zhang Gongcheng, Mi Lijun, Wu Shiguo, et al. 2007. Deepwater area-the new prospecting targets of northern continental margin of South China Sea. Acta Petrolei Sinica (in Chinese), 28(2): 15–21
    Zhang Gongcheng, Qu Hongjun, Liu Shixiang, et al. 2015. Tectonic cycle of marginal sea controlled the hydrocarbon accumulation in deep-water areas of South China Sea. Acta Petrolei Sinica (in Chinese), 36(5): 533–545
    Zhang Gongcheng, Tang Wu, Xie Xiaojun, et al. 2017. Petroleum geological characteristics of two basin belts in southern continental margin in South China Sea. Petroleum Exploration and Development, 44(6): 899–910. doi: 10.1016/S1876-3804(17)30102-7
    Zhang Gongcheng, Wang Dongdong, Lan Lei, et al. 2021. The Geological characteristics of the large- and medium-sized gas fields in the South China Sea. Acta Oceanologica Sinica, 40(2): 1–12. doi: 10.1007/s13131-021-1754-x
    Zhang Gongcheng, Yang Haizhang, Chen Ying, et al. 2014. The Baiyun Sag: a giant rich gas-generation sag in the deepwater area of the Pearl River Mouth Basin. Natural Gas Industry (in Chinese), 34(11): 11–25
    Zhang Gongcheng, Zhu Weilin, Mi Lijun, et al. 2010. The theory of hydrocarbon Genernation controlled by source rock and heat from circle distribution of outside-oil fields and inside-gas fields in South China Sea. Acta Sedimentologica Sinica (in Chinese), 28(5): 987–1005
    Zhao Shuai, Li Xuejie, Yao Yongjian, et al. 2019. Orogenic events in Southern South China Sea and their relationship with the subduction of the Proto South China Sea. Marine Geology & Quaternary Geology (in Chinese), 39(5): 147–162
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Figures(11)  / Tables(2)

    Article Metrics

    Article views (379) PDF downloads(57) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return