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    塔里木盆地古生代关键期构造演变驱动机制:来自柯坪地区碎屑物源属性示踪的约束

    郭春涛 高剑 李忠

    郭春涛, 高剑, 李忠, 2024. 塔里木盆地古生代关键期构造演变驱动机制:来自柯坪地区碎屑物源属性示踪的约束. 地球科学, 49(11): 4112-4129. doi: 10.3799/dqkx.2023.169
    引用本文: 郭春涛, 高剑, 李忠, 2024. 塔里木盆地古生代关键期构造演变驱动机制:来自柯坪地区碎屑物源属性示踪的约束. 地球科学, 49(11): 4112-4129. doi: 10.3799/dqkx.2023.169
    Guo Chuntao, Gao Jian, Li Zhong, 2024. Driving Mechanism of Tectonic Evolution in Key Paleozoic Period in Tarim Basin: Constraints from Tracing of Provenance Attributes in Keping Area. Earth Science, 49(11): 4112-4129. doi: 10.3799/dqkx.2023.169
    Citation: Guo Chuntao, Gao Jian, Li Zhong, 2024. Driving Mechanism of Tectonic Evolution in Key Paleozoic Period in Tarim Basin: Constraints from Tracing of Provenance Attributes in Keping Area. Earth Science, 49(11): 4112-4129. doi: 10.3799/dqkx.2023.169

    塔里木盆地古生代关键期构造演变驱动机制:来自柯坪地区碎屑物源属性示踪的约束

    doi: 10.3799/dqkx.2023.169
    基金项目: 

    国家自然科学基金项目 40972085

    国家自然科学基金项目 41372120

    山西省高等学校科技创新项目 2021L590

    山西省基础研究计划项目 202203021211287

    来晋工作优秀博士项目 2021PT⁃12

    详细信息
      作者简介:

      郭春涛(1981-),男,博士,副教授,研究方向为沉积学.ORCID:0000-0001-7861-5062.E-mail:xinylx521@163.com

      通讯作者:

      李忠, ORCID:0000-0002-8495-5896.E-mail:lizhong@mail.iggcas.ac.cn

    • 中图分类号: P542;P597

    Driving Mechanism of Tectonic Evolution in Key Paleozoic Period in Tarim Basin: Constraints from Tracing of Provenance Attributes in Keping Area

    • 摘要: 古生代塔里木盆地多期构造格局变迁的动力来源一直是众多学者争议的焦点,特别是早古生代中晚期盆地构造格局发生急剧转变的原因.在重矿物组合分析基础上,针对塔里木盆地西北缘柯坪地区的芙蓉统至下二叠统砂岩样品进行了详细的碎屑锆石U-Pb年代学研究,以此厘定了柯坪地区物源体系,并刻画了该地区的沉积构造演化过程.结果表明,碎屑锆石样品记录了500~420 Ma、870~710 Ma、1 100~880 Ma、2 000~1 710 Ma、2 570~ 2 400 Ma共5期构造热事件,并以前3期年龄为主体.对比潜在物源区,芙蓉世塔里木盆地内的古隆起一直是柯坪地区重要的物源区;志留‒泥盆纪研究区的物源除了盆地古隆起外,还可能存在两个物源区,北侧物源区为塔里木克拉通北缘,南侧可能为西昆仑造山带;石炭纪‒早二叠世研究区的主物源为盆地古隆起,来自于之前地层的剥蚀.综合研究认为,在中晚奥陶世,古天山洋逐渐开始向南俯冲,在塔里木克拉通北缘形成一系列与俯冲相关的岛弧,中天山地块逐渐从塔里木克拉通分离,在两者中间逐渐形成南天山洋,一直到中晚泥盆世中天山地块才完全与塔里木克拉通分开.与此对应,由于塔里木克拉通北侧洋盆的形成和俯冲闭合,导致盆地北缘的构造属性发生多次大的转变.

       

    • 图  1  柯坪地区地质简图及采样剖面

      Fig.  1.  Geological sketch of Keping area and the location of sampling profile

      图  2  取样剖面柱状图及碎屑锆石样品位置

      a.乌什城南寒武系剖面;b.柯坪水泥厂剖面(夏维书,杨云龙,张桂权,等,2002. 阿图什至柯坪地区古生界至新生界露头区石油地质综合研究报告);c.四石厂剖面(据周志毅等, 2001, 有修改);d.乌什城南石炭系剖面(据张师本和高琴琴, 1992, 有修改)

      Fig.  2.  Histograms of sampling profile and location of detrital zircon samples

      图  3  碎屑锆石样品正交偏光显微图像

      a. G8;b. G7;c. G4;d. KPSDK-4;e. G3;f. WSP1-12-1;Qm. 单晶石英;Qp. 多晶石英;K. 钾长石;P. 斜长石;Lv. (变质)结晶岩岩屑;Ls. (变质)沉积岩岩屑

      Fig.  3.  Orthogonal polarized microscopic images of detrital zircon samples

      图  4  样品碎屑重矿物含量比例

      Fig.  4.  Proportion of heavy minerals in sandstone samples from the Keping area

      图  5  碎屑锆石U-Pb谐和曲线和年龄谱图

      Fig.  5.  Concordia plots, histograms and relative probablity plots of detrital zircon U-Pb ages

      图  6  碎屑锆石Th/U比值分布

      a. G8;b.G7;c.G4;d.KPSDK-4;e.G3;f.WSP1-12-1

      Fig.  6.  Th/U plots of detrital zircons from the samples

      图  7  典型碎屑锆石CL图像

      CL图标示了原位测试点(圆圈直径为32 μm),下方数字为测试点号和U-Pb表面年龄

      Fig.  7.  Typical CL images of detrital zircons

      图  8  样品与潜在物源区年龄对比

      a~g.本文样品;h~m依次郭春涛等(2017)Ma et al.(2012a2012b)Rojas-Agramonte(2014)郭春涛等(2017, 2019);h、l、m为相应单位的结晶岩年龄谱,i~k为中天山地块的碎屑锆石年龄谱

      Fig.  8.  Comparison of the ages between the samples and possible source areas

      图  9  塔里木克拉通北缘、中天山地块古生代构造演化模式简图

      Fig.  9.  Paleozoic tectonic evolution model of northern margin of Tarim craton and Middle Tianshan terrain

      表  1  重矿物样品采样剖面及时代

      Table  1.   Sampling profiles and ages of heavy mineral samples

      样品 取样剖面 层位 岩性 时代
      G8 四石厂剖面 康克林组底部 细砂岩 早二叠世
      G7 乌什城南石炭系剖面 索格当他乌组下部 中细砂岩 晚石炭世
      G6 乌什城南石炭系剖面 乌什组顶部 中细砂岩 早石炭世
      G5 乌什城南石炭系剖面 乌什组底部 中细砂岩 早石炭世
      KPSDK-5 水泥厂剖面 克兹尔塔格组 中细砂岩 早中泥盆世
      KPSDK-4 水泥厂剖面 克兹尔塔格组 中细砂岩 早中泥盆世
      KPSDK-3 水泥厂剖面 克兹尔塔格组 中细砂岩 早中泥盆世
      KPSDK-2 水泥厂剖面 克兹尔塔格组 中细砂岩 早中泥盆世
      KPSDK-1 水泥厂剖面 克兹尔塔格组 细砂岩 早中泥盆世
      WSP2-5-1 乌什城南石炭系剖面 柯坪塔格组 中细砂岩 早志留世
      WSP2-4-1 乌什城南石炭系剖面 柯坪塔格组 中细砂岩 早志留世
      DWG-SK-4 大湾沟剖面 柯坪塔格组 细砂岩 早志留世
      DWG-SK-3 大湾沟剖面 柯坪塔格组 细砂岩 早志留世
      DWG-SK-2 大湾沟剖面 柯坪塔格组 中细砂岩 早志留世
      WSP1-11-2 乌什城南寒武系剖面 下丘里塔格组顶部 细砂岩 芙蓉世
      下载: 导出CSV

      表  2  碎屑锆石样品采样位置及时代

      Table  2.   Sampling locations and ages of detrital zircon samples

      样品 剖面 层位 时代 岩性 GPS
      北纬 东经
      G8 四石厂剖面 康克林组 早二叠世 细砂岩 40°49′39" 79°50′12"
      G7 乌什城南石炭系剖面 索格当他乌组 晚石炭世 中细砂岩 41°07′11" 79°17′28"
      G4 乌什城南石炭系剖面 蒙达勒克组 早石炭世 细砂岩 41°09′15" 79°14′45"
      KPSDK-4 柯坪水泥厂 克兹尔塔格组 早中泥盆世 中细砂岩 40°33′29" 78°56′56"
      G3 乌什城南石炭系剖面 柯坪塔格组 早志留世 细砂岩 41°09′03" 79°14′31"
      WSP1-12-1 乌什城南寒武系剖面 下丘里塔格组 芙蓉世 细砂岩 41°11′41" 79°26′50"
      下载: 导出CSV

      表  3  柯坪地区砂岩重矿物统计(体积百分比)

      Table  3.   Statistics of heavy minerals of sandstone samples in Keping area (volume percentage)

      样品 锆石 金红石 白钛石 锐钛矿 钛铁矿 电气石 方铅矿 重晶石 磷灰石 石榴石 辉石 取样剖面 层位
      G8 75.9 1.6 6.5 0.4 / 11.6 / 4 / / / 四石厂 康克林组
      G7 72.3 3.2 11.1 0.8 / 12.7 / / / / / 乌什县城南 索格当他乌组
      G6 69.9 1.7 6.5 4.1 / 17.6 / / 0.2 / / 乌什县城南 乌什组顶
      G5 68 7.3 0.9 1.2 / 4 / 18.6 / / / 乌什县城南 乌什组底
      KPSDK-5 46.7 3.3 3.3 / / 3.3 / / 40 / 3.3 水泥厂 克兹尔塔格组
      KPSDK-4 53.5 1.2 1.2 37.2 / 2.3 1.2 / / / 3.5 水泥厂 克兹尔塔格组
      KPSDK-3 41.5 3.8 13.2 5.7 / 15.1 15.1 / 5.7 / / 水泥厂 克兹尔塔格组
      KPSDK-2 30.8 2.2 12.1 6.6 / 8.8 13.2 / 26.4 / / 水泥厂 克兹尔塔格组
      KPSDK-1 56.4 5.1 5.1 7.7 / 10.3 / / 15.4 / / 水泥厂 克兹尔塔格组
      WSP2-5-1 40 10 5 10 / 20 / 5 10 / / 乌什县城南 柯坪塔格组
      WSP2-4-1 27.3 9.1 4.5 9.1 4.5 9.1 2.3 27.3 4.5 / 2.3 乌什县城南 柯坪塔格组
      DWG-SK-4 57.3 7.9 4.5 11.2 1.1 15.7 2.2 / / / / 大湾沟 柯坪塔格组
      DWG-SK-3 39.8 5.7 3.4 1.1 / 27.3 0.1 / 9.1 12.5 1 大湾沟 柯坪塔格组
      DWG-SK-2 15.9 1.6 3.2 1.6 1.6 17.5 / / 27 23.8 7.9 大湾沟 柯坪塔格组
      WSP1-11-2 8 4.6 9.1 4.6 / 5.7 3.4 60.5 3.4 / 0.7 乌什县城南 下丘里塔格组顶
      下载: 导出CSV
    • Biske, Y. S., Alexeiev, D. V., Ershova, V. B., et al., 2019. Detrital Zircon U⁃Pb Geochronology of Middle Paleozoic Sandstones from the South Tianshan (Kyrgyzstan): Implications for Provenance and Tectonic Evolution of the Turkestan Ocean. Gondwana Research, 75: 97-117. https://doi.org/10.1016/j.gr.2019.04.010
      Carroll, A. R., Graham, S. A., Chang, E. Z., et al., 2001. Sinian through Permian Tectonostratigraphic Evolution of the Northwestern Tarim Basin, China. Geological Society of America Memoir, 194: 47-70.
      Carroll, A. R., Graham, S. A., Hendrix, M. S., et al., 1995. Late Paleozoic Tectonic Amalgamation of NorthWestern China: Sedimentary Record of the Northern Tarim, Northwestern Turpan, and Southern Junggar Basins. Geological Society of America Bulletin, 107(5): 571-594. https://doi.org/10.1130/0016⁃7606(1995)1070571: lptaon>2.3.co;2 doi: 10.1130/0016⁃7606(1995)1070571:lptaon>2.3.co;2
      Chang, J., Qiu, N. S., Li, J. W., 2012. U⁃Pb Dating of Detrital Zircon from Lower Silurian in Keping Area of Tarim Basin and Its Geological Implication. Journal of Earth Sciences and Environment, 34(3): 32-43 (in Chinese with English abstract).
      Charvet, J., Shu, L. S., Laurent⁃Charvet, S., 2007. Paleozoic Structural and Geodynamic Evolution of Eastern Tianshan (NW China): Welding of the Tarim and Junggar Plates. Episodes, 30(3): 162-186.
      Charvet, J., Shu, L. S., Laurent⁃Charvet, S., et al., 2011. Palaeozoic Tectonic Evolution of the Tianshan Belt, NW China. Science China Earth Sciences, 54(2): 166-184. https://doi.org/10.1007/s11430⁃010⁃4138⁃1
      Gao, J., Qian, Q., Long, L. L., et al., 2009. Accretionary Orogenic Process of Western Tianshan, China. Geological Bulletin of China, 28(12): 1804-1816 (in Chinese with English abstract).
      Ge, R. F., Wilde, S. A., Zhu, W. B., et al., 2022. Formation and Evolution of Archean Continental Crust: A Thermodynamic⁃Geochemical Perspective of Granitoids from the Tarim Craton, NW China. Earth⁃Science Reviews, 234: 104219. https://doi.org/10.1016/j.earscirev.2022.104219
      Ge, R. F., Zhu, W. B., Wu, H. L., et al., 2012. The Paleozoic Northern Margin of the Tarim Craton: Passive or Active? Lithos, 142: 1-15. https://doi.org/10.1016/j.lithos.2012.02.010
      Guo, C. T., Dong, S. L., Li, Z., 2019. Detrital Zircon U⁃Pb Geochronology of Upper Cambrian⁃Lower Silurian Sandstone in the Wushi Area, Northwestern Margin of Tarim Basin: Implications for Provenance System and Tectonic Evolution. Acta Geologica Sinica, 93(11): 2759-2769 (in Chinese with English abstract). doi: 10.3969/j.issn.0001-5717.2019.11.004
      Guo, C. T., Gao, J., Li, Z., 2018. Depositional and Provenance Record of Lower Permian Sandstones from Sishichang Area, Northwestern Tarim Basin: Implications for Tectonic Evolution. Earth Science, 43(11): 4149-4168 (in Chinese with English abstract).
      Guo, C. T., Gao, J., Li, Z., et al., 2017. Depositional and Provenance Records of Upper Devonian to Lower Carboniferous Sandstones from Bachu Area, Northwestern Tarim Basin: Implications for Tectonic Evolution. Earth Science, 42(3): 421-434 (in Chinese with English abstract).
      Han, Y. G., Zhao, G. C., Sun, M., et al., 2015. Paleozoic Accretionary Orogenesis in the Paleo⁃Asian Ocean: Insights from Detrital Zircons from Silurian to Carboniferous Strata at the Northwestern Margin of the Tarim Craton. Tectonics, 34(2): 334-351. https://doi.org/10.1002/2014tc003668
      Li, P. F., Sun, M., Rosenbaum, G., et al., 2020. Tectonic Evolution of the Chinese Tianshan Orogen from Subduction to Arc⁃Continent Collision: Insight from Polyphase Deformation along the Gangou Section, Central Asia. GSA Bulletin, 132(11-12): 2529-2552. https://doi.org/10.1130/b35353.1
      Li, X. Q., Ding, H. K., Peng, P., et al., 2021. Provenance of Silurian Kepingtage Formation in Tazhong Area, Tarim Basin: Evidence from Detrital Zircon U⁃Pb Geochronology. Earth Science, 46(8): 2819-2831 (in Chinese with English abstract).
      Li, Z., Gao, J., 2016. Characteristic Source⁃Sink Systems and Palaeogeographic Reconstruction in Active Tectonic Regions: A Case Research on Detrital Zircons Recording the Pan⁃African Event in Northern Tarim Block. Journal of Palaeogeography, 18(3): 424-440 (in Chinese with English abstract).
      Li, Z., Gao, J., Guo, C. T., et al., 2015. Devonian⁃ Carboniferous Tectonic Evolution of Continental Margins in Northern Tarim Block, Northwest China: Constrained by Basin⁃Fill Sequences and Provenance Systems. Earth Science Frontiers, 22(1): 35-52 (in Chinese with English abstract).
      Li, Z., Peng, S. T., 2013. U⁃Pb Geochronological Records and Provenance System Analysis of the Mesozoic⁃ Cenozoic Sandstone Detrital Zircons in the Northern and Southern Piedmonts of Tianshan, Northwest China: Responses to Intracontinental Basin⁃Range Evolution. Acta Petrologica Sinica, 29(3): 739-755 (in Chinese with English abstract).
      Lin, C. S., Li, S. T., Liu, J. Y., et al., 2011. Tectonic Framework and Paleogeographic Evolution of the Tarim Basin during the Paleozoic Major Evolutionary Stages. Acta Petrologica Sinica, 27(1): 210-218 (in Chinese with English abstract).
      Lin, W., Chu, Y., Ji, W. B., et al., 2013. Geochronological and Geochemical Constraints for a Middle Paleozoic Continental Arc on the Northern Margin of the Tarim Block: Implications for the Paleozoic Tectonic Evolution of the South Chinese Tianshan. Lithosphere, 5(4): 355-381. https://doi.org/10.1130/l231.1
      Liu, G. P., 2021. Paleozoic Crustal Growth and Evolution of the Southern Tianshan Orogenic Belt-Constraints from Zircon Chronology and Hf Isotopes of Modern River Detrital (Dissertation). China University of Mining and Technology, Xuzhou, 175 (in Chinese with English abstract).
      Liu, J. Y., Lin, C. S., Li, S. T., et al., 2012a. Detrital Zircon U⁃Pb Geochronology and Its Provenance Implications on Silurian Tarim Basin. Journal of Earth Science, 23(4): 455-475.
      Liu, J. Y., Yang, H. J., Yang, Y. H., et al., 2012b. The U⁃Pb Chronologic Evidence and Sedimentary Responses of Silurian Tectonic Activities at Northeastern Margin of Tarim Basin. Science China Earth Sciences, 55(9): 1445-1460.
      Ma, X. X., Shu, L. S., Jahn, B. M., et al., 2012a. Precambrian Tectonic Evolution of Central Tianshan, NW China: Constraints from U⁃Pb Dating and In Situ Hf Isotopic Analysis of Detrital Zircons. Precambrian Research, 222: 450-473.
      Ma, X. X., Shu, L. S., Santosh, M., et al., 2012b. Detrital Zircon U⁃Pb Geochronology and Hf Isotope Data from Central Tianshan Suggesting a Link with the Tarim Block: Implications on Proterozoic Supercontinent History. Precambrian Research, 206: 1-16. https://doi.org/10.1016/j.precamres.2012.02.015
      Morton, A., Allen, M., Simmons, M., et al., 2003. Provenance Patterns in a Neotectonic Basin: Pliocene and Quaternary Sediment Supply to the South Caspian. Basin Research, 15(3): 321-337. https://doi.org/10.1046/j.1365⁃2117.2003.00208.x
      Rojas⁃Agramonte, Y., Kröner, A., Alexeiev, D. V., et al., 2014. Detrital and Igneous Zircon Ages for Supracrustal Rocks of the Kyrgyz Tianshan and Palaeogeographic Implications. Gondwana Research, 26(3-4): 957-974. https://doi.org/10.1016/j.gr.2013.09.005
      Shu, L. S., Deng, X. L., Zhu, W. B., et al., 2011. Precambrian Tectonic Evolution of the Tarim Block, NW China: New Geochronological Insights from the Quruqtagh Domain. Journal of Asian Earth Sciences, 42(5): 774-790. https://doi.org/10.1016/j.jseaes.2010.08.018
      Wang, B., Shu, L. S., Faure, M., et al., 2011. Paleozoic Tectonics of the Southern Chinese Tianshan: Insights from Structural, Chronological and Geochemical Studies of the Heiyingshan Ophiolitic Mélange (NW China). Tectonophysics, 497(1-4): 85-104. https://doi.org/10.1016/j.tecto.2010.11.004
      Wang, B., Song, F., Ni, X. H., et al., 2022. Paleozoic Accretionary Orogenesis and Major Transitional Tectonic Events of the Tianshan Orogen. Acta Geologica Sinica, 96(10): 3514-3540 (in Chinese with English abstract).
      Wang, X. S., Klemd, R., Gao, J., et al., 2018. Final Assembly of the Southwestern Central Asian Orogenic Belt as Constrained by the Evolution of the South Tianshan Orogen: Links with Gondwana and Pangea. Journal of Geophysical Research: Solid Earth, 123(9): 7361-7388. https://doi.org/10.1029/2018jb015689
      Wang, Z. H., Qi, Y. P., Bergström, S. M., 2007. Ordovician Conodonts of the Tarim Region, Xinjiang, China: Occurrence and Use as Paleoenvironment Indicators. Journal of Asian Earth Sciences, 29(5-6): 832-843. https://doi.org/10.1016/j.jseaes.2006.05.007
      Xu, Z. Q., Li, S. T., Zhang, J. X., et al., 2011. Paleo⁃Asian and Tethyan Tectonic Systems with Docking the Tarim Block. Acta Petrologica Sinica, 27(1): 1-22 (in Chinese with English abstract).
      Zhang, C. L., Li, H. K., Santosh, M., et al., 2012. Precambrian Evolution and Cratonization of the Tarim Block, NW China: Petrology, Geochemistry, Nd⁃Isotopes and U⁃Pb Zircon Geochronology from Archaean Gabbro⁃TTG⁃Potassic Granite Suite and Paleoproterozoic Metamorphic Belt. Journal of Asian Earth Sciences, 47: 5-20. https://doi.org/10.1016/j.jseaes.2011.05.018
      Zhang, C. L., Zou, H. B., Li, H. K., et al., 2013. Tectonic Framework and Evolution of the Tarim Block in NW China. Gondwana Research, 23(4): 1306-1315. https://doi.org/10.1016/j.gr.2012.05.009
      Zhang, S. B., Gao, Q. Q., 1992. Stratigraphy and Paleontology through Sinian to Permian in Tarim. Petroleum Industrial Press, Beijing, 383 (in Chinese).
      Zhang, X., Wang, X. S., Jiang, T., et al., 2022. Petrogenesis and Tectonic Setting of the Late Carboniferous Igneous Rocks in the Baluntai Region of the Chinese Western Tianshan. Earth Science, 47(3): 1038-1058 (in Chinese with English abstract).
      Zhao, Z. J., Pan, M., Yang, H. J., et al., 2010. The Source Rock of Turbidites of Middle⁃Upper Ordovician in Tarim Basin and Its Tectonic Significance. Chinese Journal of Geology (Scientia Geologica Sinica), 45(3): 681-697 (in Chinese with English abstract).
      Zhou, Z. Y., 2001. Strata of Various Periods in Tarim Basin. Science Press, Beijing (in Chinese with English abstract).
      常健, 邱楠生, 李佳蔚, 2012. 塔里木柯坪地区下志留统碎屑锆石U⁃Pb年代学特征及其地质意义. 地球科学与环境学报, 34(3): 32-43.
      高俊, 钱青, 龙灵利, 等, 2009. 西天山的增生造山过程. 地质通报, 28(12): 1804-1816.
      郭春涛, 董顺利, 李忠, 2019. 塔里木盆地西北缘乌什地区上寒武统—下志留统碎屑锆石U⁃Pb年代学及对物源体系和构造演化的指示. 地质学报, 93(11): 2759-2769.
      郭春涛, 高剑, 李忠, 2018. 塔里木盆地西北缘四石厂地区下二叠统沉积与物源记录及其反映的构造演化. 地球科学, 43(11): 4149-4168. doi: 10.3799/dqkx.2017.595
      郭春涛, 高剑, 李忠, 等, 2017. 塔里木盆地巴楚地区上泥盆统‒下石炭统沉积‒物源记录及其构造演化. 地球科学, 42(3): 421-434. doi: 10.3799/dqkx.2017.032
      李祥权, 丁洪坤, 彭鹏, 等, 2021. 塔里木盆地塔中志留系柯坪塔格组物源示踪: 碎屑锆石U⁃Pb年代学证据. 地球科学, 46(8): 2819-2831. doi: 10.3799/dqkx.2020.197
      李忠, 高剑, 2016. 构造活动区特征源汇体系及古地理重建: 以塔里木块体北缘记录"泛非"事件的碎屑锆石分析为例. 古地理学报, 18(3): 424-440.
      李忠, 高剑, 郭春涛, 等, 2015. 塔里木块体北部泥盆‒石炭纪陆缘构造演化: 盆地充填序列与物源体系约束. 地学前缘, 22(1): 35-52.
      李忠, 彭守涛, 2013. 天山南北麓中‒新生界碎屑锆石U⁃Pb年代学记录、物源体系分析与陆内盆山演化. 岩石学报, 29(3): 739-755.
      林畅松, 李思田, 刘景彦, 等, 2011. 塔里木盆地古生代重要演化阶段的古构造格局与古地理演化. 岩石学报, 27(1): 210-218.
      刘桂萍, 2021. 南天山造山带古生代地壳生长与演化: 来自现代河流碎屑锆石年代学及Hf同位素的约束. 徐州: 中国矿业大学.
      王博, 宋芳, 倪兴华, 等, 2022. 天山古生代增生造山作用及其构造转换事件. 地质学报, 96(10): 3514-3540.
      许志琴, 李思田, 张建新, 等, 2011. 塔里木地块与古亚洲/特提斯构造体系的对接. 岩石学报, 27(1): 1-22.
      张师本, 高琴琴, 1992. 塔里木盆地震旦纪至二叠纪地层古生物. 北京: 石油工业出版社, 383.
      张喜, 王信水, 江拓, 等, 2022. 西天山巴仑台地区晚石炭世岩浆岩的岩石成因及其构造背景. 地球科学, 47(3): 1038-1058. doi: 10.3799/dqkx.2021.187
      赵宗举, 潘懋, 杨海军, 等, 2010. 塔里木盆地中‒上奥陶统浊积岩物源分析及大地构造意义. 地质科学, 45(3): 681-697.
      周志毅, 2001. 塔里木盆地各纪地层. 北京: 科学出版社.
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    • 收稿日期:  2023-08-19
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