[1]陈心怡,黄奇瑜,邵磊. 2018. 福建闽江和九龙江现代沉积物重矿物特征及其物源意义. 古地理学报, 20(4): 637-650. [Chen X Y,Huang Q Y,Shao L.2018. Characteristics of heavy minerals in modern sediments of Minjiang andJiulongjiang Rivers,Fujian Province and their provenance implication. Journal of Palaeogeography(Chinese Edition), 20(4): 637-650] [2]崔宇驰,曹立成,乔培军,陈淑慧,庞雄,邵磊. 2018. 南海北部古近纪沉积物碎屑锆石U-Pb年龄及物源演化. 地球科学, 43(11): 4169-4179. [Cui Y C,Cao L C,Qiao P J,Chen S H,Pang X,Shao L.2018. Provenance evolution of paleogene sequence(Northern South China Sea)based on detrital zircon U-Pb dating analysis. Earth Science, 43(11): 4169-4179] [3]侯元立,邵磊,乔培军,蔡国富,庞雄,张道军. 2020. 珠江口盆地白云凹陷始新世: 中新世沉积物物源研究. 海洋地质与第四纪地质, 40(2): 19-28. [Hou Y L,Shao L,Qiao P J,Cai G F,Pang X,Zhang D J.2020. Provenance of the Eocene-Miocene sediments in the Baiyun Sag,Pearl River Mouth Basin. Marine Geology & Quaternary Geology, 40(2): 19-28] [4]邵磊,崔宇驰,乔培军,朱伟林,钟锴,周俊燊. 2019. 南海北部古河流演变对欧亚大陆东南缘早新生代古地理再造的启示. 古地理学报, 21(2): 216-231. [Shao L,Cui Y C,Qiao P J,Zhu W L,Zhong K,Zhou J S.2019. Implications on the Early Cenozoic palaeogeographical reconstruction of SE Eurasian margin based on northern South China Sea palaeo-drainage system evolution. Journal of Palaeogeography(Chinese Edition), 21(2): 216-231] [5]邵磊,乔培军,崔宇驰,张浩. 2020. 新生代早期南海北部水系演变. 科技导报,38(18): 57-61. [Shao L,Qiao P J,Cui Y C,Zhang H.2020. The evolutions of the fluvial systems in the northern South China Sea since the early Cenozoic. Science & Technology Review,38(18): 57-61] [6]张功成,屈红军,刘世翔,谢晓军,赵钊,沈怀磊. 2015. 边缘海构造旋回控制南海深水区油气成藏. 石油学报, 36(5): 533-545. [Zhang G C,Qu H J,Liu S X,Xie X J,Zhao Z,Shen H L.2015. Tectonic cycle of marginal sea controlled the hydrocarbon accumulation in deep-water areas of South China Sea. Acta Petrolei Sinica, 36(5): 533-545] [7]姚伯初. 1996. 南海海盆新生代的构造演化史. 海洋地质与第四纪地质, 16(2): 1-13. [Yao B C.1996. Tectonic evolution of the South China Sea in Cenozoic. Marine Geology & Quaternary Geo logy, 16(2): 1-13] [8]周蒂,孙珍,陈汉宗,丘元禧. 2005. 南海及其围区中生代岩相古地理和构造演化. 地学前缘, 2(3): 204-218. [Zhou D,Sun Z,Chen H Z,Qiu Y X.2005. Mesozoic lithofacies,paleo-geography,and tectonic evolution of the South China Sea and surrounding areas. Earth Science Frontiers, 2(3): 204-218] [9]Breitfeld H T,Hall R.2018. The eastern Sundaland margin in the latest Cretaceous to late Eocene: sediment provenance and depositional setting of the Kuching and Sibu Zones of Borneo. Gondwana Research, 63: 34-64. [10]Breitfeld H T,Hall R,Galin T,Forster M A,Boudagher-Fadel M K.2017. A Triassic to Cretaceous Sundaland-Pacific subduction margin in west Sarawak,Borneo. Tectonophysics, 694: 35-56. [11]Breitfeld H T,Davies L,Hall R,Armstrong R,Forster M,Lister G,Thirlwall M,Grassineau N,Hennig-Breitfeld J,van Hattum M W A.2020. Mesozoic Paleo-Pacific subduction beneath SW Borneo: U-Pb geochronology of the Schwanergranitoids and the Pinoh metamorphic group. Frontiers in Earth Science, 12(8): 1-37. [12]Burrett C,Zaw K,Meffre S,Lai C,Khositanont S,Chaodumrong P,Udchachon M,Ekins S,Halpin J.2014. The configuration of Greater Gondwana: evidence from LA ICPMS,U-Pbgeochronology of detrital zircons from the Palaeozoic and Mesozoic of Southeast Asia and China. Gondwana Research, 26(1): 31-51. [13]Cao L C,Shao L,Qiao P J,Chen S h,Wu M S.2017. Geochemical evolution of Oligocene-Middle Miocene sediments in the deep-water area of the Pearl River Mouth Basin,northern South China Sea. Marine & Petroleum Geology, 80: 358-368. [14]Cui Y C,Shao L,Li Z X,Zhu W L,Qiao P J,Zhang X T.2021a. A Mesozoic Andean-type active continental margin along coastal South China: new geological records from the basement of the northern South China Sea. Gondwana Research, 99: 36-52. [15]Cui Y C,Shao L,Yu M M,Huang C Y.2021b. Formation of Hengchunaccretionaryprism turbidites and implications for deep-water transport processes in the Northern South China Sea. Acta Geologica Sinica-English Edition, 95(1): 11. [16]Davies L B,Hall R,Armstrong R,2014. Cretaceous crust in SW Borneo: petrological,geochemical and geochronological constraints from the Schwaner Mountains. Proceedings Indonesian Petroleum Association,38th annual convention and exhibition. IPA14-G-025,Jakarta,Indonesia, 3: 21-23. [17]Dickinson W R,Suczek C A.1979. Plate tectonics and sandstone compositions. AAPG Bulletin, 63(12): 2164-2182. [18]Galin T,Breitfeld H T,Hall R,Sevastjanova Ⅰ.2017. Provenance of the Cretaceous Eocene Rajang Group submarine fan,Sarawak,Malaysia from light and heavy mineral assemblages and U-Pb zircon geochronology. Gondwana Research, 51: 209-233. [19]Haile N S.1974. “Borneo” in Mesozoic-cenozoicorogenic belts. Geological Society, London, Special Publication, 4: 333-347. [20]Hall R,Nichols G J.2002. Cenozoic sedimentation and tectonics in Borneo: climatic influences on orogenesis. Geological Society, London, Special Publications, 191(1): 5-22. [21]Hamilton W.1979. Tectonics of the indonesian region. U.S. Geological Survey Professional Paper,1078. [22]Hennig-Breitfeld J,Breitfeld H T,Hall R,Boudagher-Fadel M,Thirlwall M.2019. A new upper Paleogene to Neogene stratigraphy for Sarawak and Labuan in northwestern Borneo: paleogeography of the eastern Sundaland margin. Earth-Science Reviews, 190: 1-32. [23]Hennig J,Breitfeld H T,Hall R,Nugraha A S.2017. The Mesozoic tectono-magmatic evolution at the Paleo-Pacific subduction zone in West Borneo. Gondwana Research, 48: 292-310. [24]Honza E,John J,Banda R M.2000. An imbrication model for the Rajang accretionary complex in Sarawak,Borneo. Journal of Asian Earth Sciences, 18: 751-759. [25]Hou Y L,Zhu W L,QiaoP J,Huang C Y,Cui Y C,MengX B.2021. Sediment source and environment evolution in Taiwan Island during the Eocene-Miocene. Acta Oceanologica Sinica-English Edition, 40(2): 114-122. [26]Hutchison C S.1996. The‘Rajang accretionary prism’ and‘Lupar Line’ problem of Borneo. Geological Society, London, Special Publications, 106(1): 247-261. [27]Hutchison C S.2004. Marginal Basin evolution: the southern South China Sea. Marine & Petroleum Geology, 21(9): 1129-1148. [28]Li X H,Li Z X,He B,Li W X,Li Q L,Gao Y Y,Wang X C.2012. The Early Permian active continental margin and crustal growth of the Cathaysia Block: in situ U-Pb,Lu-Hf and O isotope analyses of detrital zircons. Chemical Geology,328: 195-207. [29]Meng X B,Shao L,Cui Y C,Zhu W L,Hou Y L.2021. Sedimentary records from Hengchun accretionary prism turbidites on Taiwan Island: implication on late Neogene migration rate of the Luzon subduction system. Marine and Petroleum Geology, 124(1): 104820. [30]Metcalfe Ⅰ.2011. Palaeozoic-Mesozoic history of SE Asia. GSLSP, 355(1): 7-35. [31]Moss S J.1998. Embaluh Group turbidites in Kalimantan: evolution of a remnant oceanic basin in Borneo during the Late Cretaceous to Palaeogene. Journal of the Geological Society,155(3): 509-524. [32]Pieters P E,Sanyoto P.1993. Geology of the Pontianak/Nangataman sheet area, Kalimantan. Bandung,Geological Research and Development Centre. [33]Shao L,Cao L C,Pang X,Jiang T,Qiao P J,Zhao M.2016. Detrital zircon provenance of the Paleogenesyn-rift sediments in the northern South China Sea. Geochemistry, Geophysics, Geosystems, 17(2): 255-269. [34]Shao L,Cui Y C,Stattegger K,Zhu W L,Zhao Z G.2019. Drainage control of Eocene to Miocene sedimentary records in the southeastern margin of Eurasian Plate. GSA Bulletin, 131(3-4): 461-478. [35]Tan D.1982. The Lubok Antu Melange,Lupar Valley,West Sarawak: a Lower Tertiary subduction complex. Bulletin of the Geological Society of Malaysia, 15: 31-46. [36]van Hattum M W A,Hall R,Pickard A L,Nichols G J.2013. Provenance and geochronology of Cenozoic sandstones of northern Borneo. Journal of Asian Earth Sciences, 76: 266-282. [37]Wolfenden E B.1960. The geology and mineral resources of the lower Rajang Valley and adjoining areas,Sarawak. British Territories Borneo Region Geological Survey Department,Memoir 11: 167. [38]Yan Q,Shi X,Liu J,Wang K,Bu W.2010. Petrology and geochemistry of Mesozoic granitic rocks from the Nansha micro-block,the South China Sea: constraints on the basement nature. Journal of Asian Earth Sciences, 37(2): 130-139. [39]Zhang H,Cui Y C,QiaoP J,Zhao M,Xiang X H.2021. Evolution of the Pearl River and its implication for East Asian continental landscape reversion. Acta Geologica Sinica, 95(1): 66-76. [40]Zhao Z G,Zhang H,Cui Y C,Tang W,Qiao P J.2021. Cenozoic sea-land transition and its petroleum geological significance in the Northern South China Sea. Acta Geologica Sinica, 95(1): 41-54. [41]Zhu W L,Cui Y C,Shao L,Qiao P J,Yu P,Pei J X,Liu X Y,Zhang H.2021. Reinterpretation of the northern South China Sea pre-Cenozoic basement and geodynamic implications of the South China continent: constraints from combined geological and geophysical records. Acta Oceanologica Sinica, 40(2): 12-28. |