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Thermal-history reconstruction of the Baiyun Sag in the deep-water area of the Pearl River Mouth Basin, northern South China Sea

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Abstract

The Baiyun Sag, located in the deep-water area of the northern South China Sea, is the largest and deepest subbasin in the Pearl River Mouth Basin and one of the most important hydrocarbon-accumulation depression areas in China. Thermal history is widely thought to be of great importance in oil and gas potential assessment of a basin as it controls the timing of hydrocarbon generation and expulsion from the source rock. In order to unravel the paleo-heat flow of the Baiyun Sag, we first analyzed tectonic subsidence of 55 pseudo-wells constructed based on newly interpreted seismic profiles, along with three drilled wells. We then carried out thermal modeling using the multi-stage finite stretching method and calibrated the results using collected present-day vitrinite reflectance data and temperature data. Results indicate that the first and second heating of the Baiyun Sag after 49 Ma ceased at 33.9 Ma and 23 Ma. Reconstructed average basal paleoheat flow values at the end of the rifting periods are ~57.7–86.2 mW/m2 and ~66.7–97.3 mW/m2, respectively. Following the last heating period at 23 Ma, the study area has undergone a persistent thermal attenuation phase, and basal heat flow has cooled down to ~64.0–79.2 mW/m2 at present.

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References

  • Allen P A, Allen J R (2013). Basin Analysis: Principles and Application to Petroleum Play Assessment. John Wiley & Sons

    Google Scholar 

  • Anderson R N (1980). 1980 Update of Heat Flow in the East and Southeast Asian Seas. AGU: 319–326

    Google Scholar 

  • Bessis F (1986). Some remarks on the study of subsidence of sedimentary basins application to the Gulf of Lions margin (Western Mediterranean). Mar Pet Geol, 3(1): 37–63

    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. J Geophys Res B Solid Earth, 98(B4): 6299–6328

    Article  Google Scholar 

  • Cande S C, Kent D V (1995). Revised calibration of the geomagnetic polarity timescale for the Late Cretaceous and Cenozoic. J Geophys Res, 10(B4): 6093–6095

    Article  Google Scholar 

  • Carminati E, Cavazza D, Scrocca D, Fantoni R, Scotti P, Doglioni C (2010). Thermal and tectonic evolution of the southern Alps (northern Italy) rifting: coupled organic matter maturity analysis and thermokinematic modeling. AAPG Bull, 94(3): 369–397

    Article  Google Scholar 

  • Chen L (2009). Numerical modeling study of the rifted continental margin of the South China Sea. Dissertation for PhD degree. Institute of Geology and Geophysics, Chinese Academy of Sciences, Beijing, China, 1–165 (in Chinese)

    Google Scholar 

  • Chen L (2014). Stretching factor estimation for the long-duration and multi-stage continental extensional tectonics: application to the Baiyun Sag in the northern margin of the South China Sea. Tectonophysics, 611(0): 167–180

    Article  Google Scholar 

  • Chen L, Zhang Z, Song H (2013). Weak depth and along-strike variations in stretching from a multi-episodic finite stretching model: evidence for uniform pure-shear extension in the opening of the South China Sea. J Asian Earth Sci, 78: 358–370

    Article  Google Scholar 

  • Chen S, Pei C (1993). Geology and geochemistry of source rocks of the eastern Pearl River mouth basin, South China Sea. J Asian Earth Sci, 8(1): 393–406

    Google Scholar 

  • Clift P, Lin J (2001). Preferential mantle lithospheric extension under the South China margin. Mar Pet Geol, 18(8): 929–945

    Article  Google Scholar 

  • Cohen K, Finney S, Gibbard P (2013). International Chronostratigraphic Chart v 2013/01. International Commission on Stratigraphy

    Google Scholar 

  • Cramer B S, Toggweiler J R, Wright J D, Katz M E, Miller K G (2009). Ocean overturning since the Late Cretaceous: inferences from a new benthic foraminiferal isotope compilation. Paleoceanography, 24(4): PA4216

    Article  Google Scholar 

  • Dai Y, Pang X (1999). Petroleum geological characteristics of the Zhu II Depression, Pearl River Mouth Basin. China Offshore Oil and Gas, 13(3): 169–173 (in Chinese)

    Google Scholar 

  • Davis M, Kusznir N (2004). Depth-dependent lithospheric stretching at rifted continental margins. Proceedings of NSF Rifted Margins Theoretical Institute, 136: 92

    Google Scholar 

  • Ding W, Franke D, Li J, Steuer S (2013). Seismic stratigraphy and tectonic structure from a composite multi-channel seismic profile across the entire Dangerous Grounds, South China Sea. Tectonophysics, 582(0): 162–176

    Article  Google Scholar 

  • Dong D, Zhang G, Zhong K, Yuan S, Wu S (2009). Tectonic evolution and dynamics of deepwater area of Pearl River Mouth Basin, Northern South China Sea. J Earth Sci, 20(1): 147–159

    Article  Google Scholar 

  • Falvey D A (1974). The development of continental margins in plate tectonic theory. Am Assoc Pet Geol Bull, 14(1): 95–106

    Google Scholar 

  • Franke D, Barckhausen U, Baristeas N, Engels M, Ladage S, Lutz R, Montano J, Pellejera N, Ramos E G, Schnabel M (2011). The continent-ocean transition at the southeastern margin of the South China Sea. Mar Pet Geol, 28(6): 1187–1204

    Article  Google Scholar 

  • Guo X, He S (2007). Source rock thermal and maturity history modeling in the Baiyun sag of the Pearl River Mouth basin. Petroleum Geology and Experiment, 29(4): 420–425 (in Chinese)

    Google Scholar 

  • He L, Wang K, Xiong L, Wang J (2001). Heat flow and thermal history of the South China Sea. Phys Earth Planet Inter, 126(3–4): 211–220

    Article  Google Scholar 

  • He L, Xiong L, Wang J (2002). Heat flow and thermal modeling of the Yinggehai Basin, South China Sea. Tectonophysics, 351(3): 245–253

    Article  Google Scholar 

  • Hu D, Zhou D, Wu X, He M, Pang X, Wang Y (2009). Crustal structure and extension from slope to deepsea basin in the northern South China Sea. J Earth Sci, 20(1): 27–37

    Article  Google Scholar 

  • Hudson S M, Hanson A D (2010). Thermal maturation and hydrocarbon migration within La Popa Basin, northeastern Mexico, with implications for other salt structures. AAPG Bull, 94(3): 273–291

    Article  Google Scholar 

  • Jarvis G T, McKenzie D P (1980). Sedimentary basin formation with finite extension rates. Earth Planet Sci Lett, 48(1): 42–52

    Article  Google Scholar 

  • Jessop A M, Hobart M A, Sclater J G (1976). The world heat flow data collection 1975. Geothermal Series Number 5, Earth Physics Branch, Energy, Mines and Resources, Ottawa, Canada

    Google Scholar 

  • Kido Y, Suyehiro K, Kinoshita H (2001). Rifting to spreading process along the northern continental margin of the South China Sea. Mar Geophys Res, 22(1): 1–15

    Article  Google Scholar 

  • Kominz M A, Browning J V, Miller K G, Sugarman P J, Mizintseva S, Scotese C R (2008). Late Cretaceous to Miocene sea-level estimates from the New Jersey and Delaware coastal plain coreholes: an error analysis. Basin Res, 20(2): 211–226

    Article  Google Scholar 

  • Li P (1993). Cenozoic tectonic movement in the Pearl River Mouth Basin. China Offshore Oil Gas (Geol), 7(6): 11–17 (in Chinese)

    Google Scholar 

  • Matsubayashi O, Nagao T (1991). Compilation of heat flow data in southeast Asia and its marginal seas. In: Cermak V, Rybach L, eds. Terrestrial Heat Flow and the Lithosphere Structure. Berlin: Springer, 445–456

    Google Scholar 

  • McKenzie D (1978). Some remarks on the development of sedimentary basins. Earth Planet Sci Lett, 40(1): 25–32

    Article  Google Scholar 

  • Miller K G, Mountain G S, Wright J D, Browning J V (2011). A 180-million-year record of sea level and ice volume variations from continental margin and deep-sea isotopic records. Oceanography (Wash DC), 24(2): 40–53

    Article  Google Scholar 

  • Nagao T, Uyeda S, Matsubayashi O (1995). Overview of heat flow distribution in Asia based on the IHFC compilation with special emphasis on south-east Asia. In: Gupta M L, Yamano M, eds. Terrestrial Heat Flow and Geothermal Energy in Asia. Rotterdam: A. A. Balkema, 221–238

    Google Scholar 

  • Nissen S S, Hayes D E, Bochu Y, Weijun Z, Yongqin C, Xiaupin N (1995b). Gravity, heat flow, and seismic constraints on the processes of crustal extension: northern margin of the South China Sea. J Geophys Res, 100(B11): 22447–22483

    Article  Google Scholar 

  • Nissen S S, Hayes D E, Buhl P, Diebold J, Bochu Y, Zeng W, Chen Y (1995a). Deep penetration seismic soundings across the northern margin of the South China Sea. J Geophys Res Solid Earth, 100 (B11): 22407–22433

    Article  Google Scholar 

  • Pang X, Chen C, Shao L, Wang C, Zhu M, He M, Shen J, Lian S, Wu X (2007). Baiyun Movement, a great tectonic event on the Oligocene–Miocene boundary in the northern South China Sea and its implications. Geological Review, 53(2): 145–151 (in Chinese)

    Google Scholar 

  • Pang X, Chen C, Zhu M, He M, Shen J, Lian S, Wu X, Shao L (2009). Baiyun movement: a significant tectonic event on Oligocene/ Miocene boundary in the northern South China Sea and its regional implications. J Earth Sci, 20(1): 49–56

    Article  Google Scholar 

  • Peng D J, Pang X, Chen C M, Shu Y, Ye B, Gan Q G, Wu C R, Huang X L (2005). From shallow-water shelf to deep-water slope—The study on deep-water fan systems in South China Sea. Acta Sedimentologica Sinica, 23(1): 1–11 (in Chinese)

    Google Scholar 

  • Reston T (2007). Extension discrepancy at North Atlantic nonvolcanic rifted margins: depth-dependent stretching or unrecognized faulting? Geology, 35(4): 367–370

    Article  Google Scholar 

  • Rodon S, Littke R (2005). Thermal maturity in the Central European Basin System (Schleswig-Holstein area): results of ID basin modelling and new coalification maps. Int J Earth Sci (Geol Rundsch), 94(5–6): 815–883

    Article  Google Scholar 

  • Ru K, Pigott J D (1986). Episodic rifting and subsidence in the South China Sea. AAPG Bull, 70(9): 1136–1155

    Google Scholar 

  • Sclater J G, Christie P A F (1980). Continental stretching: an explanation of the post-Mid-Cretaceous subsidence of the central North Sea Basin. J Geophys Res, 85(NB7): 3711–3739

    Article  Google Scholar 

  • Shao L, Li X H, Wang P X, Jian Z M, Wei G J, Pang X, Liu Y (2004). Sedimentary record of the tectonic evolution of the South China Sea since the Oligocene: evidence from deep sea sediments of ODP Site 1148. Advances in Earth Science, 19(4): 539–544 (in Chinese)

    Google Scholar 

  • Shi X B, Burov E, Leroy S, Qiu X L, Xia B (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

    Article  Google Scholar 

  • Shi X, Qiu X, Xia K, Zhou D (2003). Characteristics of surface heat flow in the South China Sea. J Asian Earth Sci, 22(3): 265–277

    Article  Google Scholar 

  • Shipboard Scientific Party (2000). Leg 184 summary: exploring the Asian monsoon through drilling in the South China Sea. In: Wang P, Prell W, Blum P, eds. Proceedings of the ODP, Initial Results. IODP, College Station, TX. 1–77

    Google Scholar 

  • Shyu C T, Hsu S K, Liu C S (1998). Heat flows off southwest Taiwan: measurements over mud diapirs and estimated from bottom simulating reflectors. Terrestrial Atmospheric & Oceanic Sciences, 9(4): 795–812

    Article  Google Scholar 

  • Song Y, Zhao C, Zhang G, Song H, Shan J, Chen L (2011). Research on tectono-thermal modeling for Qiongdongnan Basin and Pearl River Mouth Basin in the northern South China Sea. Chin J Geophys, 54: 3057–3069 (in Chinese)

    Google Scholar 

  • Steckler M, Watts A (1978). Subsidence of the Atlantic-type continental margin off New York. Earth Planet Sci Lett, 41(1): 1–13

    Article  Google Scholar 

  • Su D, White N, McKenzie D A N (1989). Extension and subsidence of the Pearl River Mouth Basin, northern South China Sea. Basin Res, 2 (4): 205–222

    Article  Google Scholar 

  • Sun Z, Pang X, Zhong Z H (2005). Dynamics of tertiary tectonic evolution of the Baiyun Sag in the Pearl River Mouth Basin. Earth Sci Front, 12(4): 489–498

    Google Scholar 

  • Sweeney J J, Burnham A K (1990). Evaluation of a simple-model of vitrinite reflectance based on chemical-kinetics. AAPG Bull, 74(10): 1559–1570

    Google Scholar 

  • Tang X, Chen L, Hu S, Yang S, Zhang G, Shen H, Rao S, Li W (2014a). Tectono-thermal evolution of the Reed Bank Basin, Southern South China Sea. J Asian Earth Sci, 96: 344–352

    Article  Google Scholar 

  • Tang X Y, Hu S B, Zhang G C, Yang S C, Shen H L, Rao S, Li W W (2014b). Characteristic of surface heat flow in the Pearl River Mouth Basin and its relationship with thermal lithosphere thickness. Chin J Geophys, 57(6): 1857–1867

    Google Scholar 

  • Taylor B, Hayes D E (1983). Origin and history of the South China basin. In: Hayes D E, ed. The Tectonics and Geological Evolution of Southeast Asia Seas and Islands, Part 2. Geophysics Monographs Series, AGU, Washington, D.C., 27: 23–56

    Article  Google Scholar 

  • Wang P (2012). Tracing the life history of a marginal sea—on “The South China Sea Deep” research program. Chin Sci Bull, 57(24): 3093–3114

    Article  Google Scholar 

  • Wang P, Blum P, Nessler S (2000). Proceedings of the Ocean Drilling Program, Inital Reports, vol. 184. http://www.ldeo.columbia.edu

  • Wang P, Jian Z, Zhao Q, Li Q, Wang R, Liu Z, Wu G, Shao L, Wang J, Huang B (2003). Evolution of the South China Sea and monsoon history revealed in deep-sea records. Chin Sci Bull, 48(23): 2549–2561

    Article  Google Scholar 

  • Watanabe T, LangsethMG, Anderson R N (1977). Heat flow in back-arc basins of the western Pacific. In: Talwani M, Pitman W C, eds. Island Arcs, Deep Sea Trenches and Back-Arc Basins. AGU, Washington, D.C., 137–167

    Chapter  Google Scholar 

  • Westaway R (1994). Re-evaluation of extension across the Pearl River Mouth Basin, South China Sea-implications for continental lithosphere deformation mechanisms. J Struct Geol, 16(6): 823–838

    Article  Google Scholar 

  • White N (1994). An inverse method for determining lithospheric strain rate variation on geological timescales. Earth Planet Sci Lett, 122(3–4): 351–371

    Article  Google Scholar 

  • Xia K, Xia S, Chen Z (1995). Geothermal characteristics of the South China Sea. In: Gupta M L, Yamano M, eds. Terrestrial Heat Flow and Geothermal Energy in Asia. New Delhi: IBH Publishing Co. Pvt Ltd, 113–128

    Google Scholar 

  • Yan P, Zhou D, Liu Z (2001). A crustal structure profile across the northern continental margin of the South China Sea. Tectonophysics, 338(1): 1–21

    Article  Google Scholar 

  • Yuan Y, Zhu W L, Mi L J, Zhang G C, Hu S B, He L J (2009). “Uniform geothermal gradient” and heat flow in the Qiongdongnan and Pearl River Mouth Basins of the South China Sea. Mar Pet Geol, 26(7): 1152–1162

    Article  Google Scholar 

  • Zhang Y, Sun Z, Zhou D, Guo X, Shi X, Wu X, Pang X (2008). Stretching characteristics and its dynamic significance of the northern continental margin of South China Sea. Sci China Ser D Earth Sci, 51(3): 422–430

    Article  Google Scholar 

  • Zhao Q (2005). Late Cainozoic ostracod faunas and paleoenvironmental changes at ODP Site 1148, South China Sea. Mar Micropaleontol, 54 (1): 27–47

    Article  Google Scholar 

  • Zhou D, Ru K, Chen H Z (1995). Kinematics of Cenozoic extension on the South China Sea continental margin and its implications for the tectonic evolution of the region. Tectonophysics, 251(1–4): 161–177

    Article  Google Scholar 

  • Zhou D, Sun Z, Liao J, Zhao Z, He M, Wu X, Pang X (2009). Filling history and post-breakup acceleration of sedimentation in Baiyun sag, deepwater northern South China Sea. J Earth Sci, 20(1): 160–171

    Article  Google Scholar 

  • Zhou L, Xie J, Shen W, Zheng Y, Yang Y, Shi H, Ritzwoller M H (2012). The structure of the crust and uppermost mantle beneath South China from ambient noise and earthquake tomography. Geophys J Int, 189(3): 1565–1583

    Article  Google Scholar 

  • Zhu J, Li J, Sun Z, Li S (2016). Crustal thinning and extension in the northwestern continental margin of the South China Sea. Geol J, 51 (S1): 286–303

    Article  Google Scholar 

  • Zhu J, Qiu X, Kopp H, Xu H, Sun Z, Ruan A, Sun J, Wei X (2012). Shallow anatomy of a continent–ocean transition zone in the northern South China Sea from multichannel seismic data. Tectonophysics, 554: 18–29

    Article  Google Scholar 

  • Zhu W, Li M, Wu P (1999). Petroleum systems of the Zhu III subbasin, Pearl River Mouth Basin, South China Sea. AAPG Bulletin-American Association of Petroleum Geologists, 83(6): 990–1003

    Google Scholar 

  • Zuo Y H, Qiu N S, Pang X Q, Li J W, Hao Q Q, Chang J (2015). Meso-Cenozoic Tectono-thermal evolution history in Bohai Bay Basin, North China. J Earth Sci, 26(3): 352–360

    Article  Google Scholar 

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Acknowledgements

Research in this paper was supported by the National Natural Science Foundation of China (Grant No. 41602251), the Chinese Postdoc Fund, No.58 General Fund, 2015 (No. 2015M582636) and the Research Fund for New Teachers of Xi’an Jiaotong University. We are grateful to CNOOC Research Institute for providing the seismic profiles. We also thank anonymous reviewers for their careful and insightful suggestions on the paper.

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Tang, X., Yang, S. & Hu, S. Thermal-history reconstruction of the Baiyun Sag in the deep-water area of the Pearl River Mouth Basin, northern South China Sea. Front. Earth Sci. 12, 532–544 (2018). https://doi.org/10.1007/s11707-017-0675-7

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