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    Volume 49 Issue 3
    Mar.  2024
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    Wang Bin, Xie Chaoming, Dong Yongsheng, Duan Menglong, Song Yuhang, Hao Yujie, 2024. Origin of Serpentinite in Sumdo Area, Xizang and Its Constraint on Subduction of the Sumdo Paleo-Tethys Ocean. Earth Science, 49(3): 837-849. doi: 10.3799/dqkx.2022.474
    Citation: Wang Bin, Xie Chaoming, Dong Yongsheng, Duan Menglong, Song Yuhang, Hao Yujie, 2024. Origin of Serpentinite in Sumdo Area, Xizang and Its Constraint on Subduction of the Sumdo Paleo-Tethys Ocean. Earth Science, 49(3): 837-849. doi: 10.3799/dqkx.2022.474

    Origin of Serpentinite in Sumdo Area, Xizang and Its Constraint on Subduction of the Sumdo Paleo-Tethys Ocean

    doi: 10.3799/dqkx.2022.474
    • Received Date: 2022-08-25
      Available Online: 2024-04-12
    • Publish Date: 2024-03-25
    • Zircons in serpentinite can not only provide chronological information, but also constrain the genesis of serpentinite and regional tectonic evolution process. Longyasongduo serpentinite in Tangjia-Sumdo Paleo-Tethys suture zone was studied by means of zircon U-Pb dating, whole-rock geochemistry, and zircon Hf isotope in this paper. The results show that Longyasongduo serpentinites have high MgO, TFeO and Mg# values but low Al2O3 and TiO2 contents. The chondrite-normalized REE patterns display a gentle U-type. The primitive mantle-normalized spider diagrams exhibit enrichment in U, Ta and depletion in Th, Nb, Zr and Hf. Zircon U-Pb dating of Longyasongduo serpentinite yielded ages of (230.3±2.3) Ma, with εHf(t) values of +13.4 to +16.0. Through chronological and geochemical studies, we argue that the protolith of Longyasongduo serpentinite is the residual of partially melted spinel lherzolite in the mantle wedge. Longyasongduo serpentinite was metasomatized by supercritical fluid generated by subduction of Sumdo Paleo-Tethys oceanic crust to form metasomatic zircon, which may also be metasomatized by aqueous solutions, resulting in enrichment of fluid-mobile elements. Based on previous studies, we infer that the Sumdo Paleo-Tethys Ocean was still in a northward subduction setting in the Late Triassic.

       

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    • Andersen, T., 2002. Correction of Common Lead in U-Pb Analyses that do not Report 204Pb. Chemical Geology, 192(1-2): 59-79. https://doi.org/10.1016/S0009-2541(02)00195-X
      Belousova, E. A., Jiménez, J. M. G., J. M., Graham, I., et al., 2015. The Enigma of Crustal Zircons in Upper-Mantle Rocks: Clues from the Tumut Ophiolite, Southeast Australia. Geology, 43(2): 119-122. https://doi.org/10.1130/G36231.1
      Bodinier, J. L., Godard, M., 2014. Orogenic, Ophiolitic, and Abyssal Peridotites. Treatise on Geochemistry, 2: 103-167. https://doi.org/10.1016/B978-0-08-095975-7.00204-7
      Chen, S. Y., 2010. The Development of Sumdo Suture in the Lhasa Block, Tibet (Dissertation). Chinese Academy of Geological Science, Beijing (in Chinese with English abstract).
      Cheng, H., Liu, Y. M., Vervoort, J. D., et al., 2015. Combined U-Pb, Lu-Hf, Sm-Nd and Ar-Ar Multichronometric Dating on the Bailang Eclogite Constrains the Closure Timing of the Paleo-Tethys Ocean in the Lhasa Terrane, Tibet. Gondwana Research, 28(4): 1482-1499. https://doi.org/10.1016/j.gr.2014.09.017
      Cheng, H., Zhang, C., Vervoort, J. D., et al., 2012. Zircon U-Pb and Garnet Lu-Hf Geochronology of Eclogites from the Lhasa Block, Tibet. Lithos, 155: 341-359. https://doi.org/10.1016/j.lithos.2012.09.011
      Coleman, R. G., 1977. Ophiolites: Ancient Oceanie Lithosphere? Springer-Verlag, Berlin.
      Deschamps, F., Godard, M., Guillot, S., et al., 2013. Geochemistry of Subduction Zone Serpentinites: A Review. Lithos, 178: 96-127. https://doi.org/10.1016/j.lithos.2013.05.019
      Deschamps, F., Guillot, S., Godard, M., et al., 2010. In Situ Characterization of Serpentinites from Forearc Mantle Wedges: Timing of Serpentinization and Behavior of Fluid-Mobile Elements in Subduction Zones. Chemical Geology, 269(3-4): 262-277. https://doi.org/10.1016/j.chemgeo.2009.10.002
      Dong, Y. C., 2021. The Metamorphism of Sumdo High/Ultra High Pressure in Tibet and Its Tectonic Significance (Dissertation). Jilin University, Changchun (in Chinese with English abstract).
      Duan, M. L., Xie, C. M., Fan, J. J., et al., 2019. Identification of the Middle Triassic Oceanic Crust of the Sumdo in the Tibet Plateau and Its Constraints on the Evolution of the Sumdo Paleo-Tethys Ocean. Earth Science, 44(7): 2249-2264 (in Chinese with English abstract).
      Duan, M. L., Xie, C. M., Wang, B., et al., 2022. Ocean Island Rock Assembly and Its Tectonic Significance in Tangga-Sumdo Area, Tibet. Earth Science, 47(8): 2968-2984 (in Chinese with English abstract).
      Evans, B. W., Hattori, K., Baronnet, A., 2013. Serpentinite: What, Why, Where? Elements, 9(2): 99-106. https://doi.org/10.2113/gselements.9.2.99
      Ferry, J. M., Watson, E. B., 2007. New Thermodynamic Models and Revised Calibrations for the Ti-in-Zircon and Zr-in-Rutile Thermometers. Contributions to Mineralogy and Petrology, 154(4): 429-437. https://doi.org/10.1007/s00410-007-0201-0
      Hou, K. J., Li, Y. H., Zou, T. R., et al., 2007. Laser Ablation-MC-ICP-MS Technique for Hf Isotope Microanalysis of Zircon and Its Geological Applications. Acta Petrologica Sinica, 23(10): 2595-2604 (in Chinese with English abstract).
      Irvine, T. N., Baragar, W. R. A., 1971. A Guide to the Chemical Classification of the Common Volcanic Rocks. Canadian Journal of Earth Sciences, 8(5): 523-548. https://doi.org/10.1139/e71-055
      Katayama, I., Muko, A., Iizuka, T., et al., 2003. Dating of Zircon from Ti-Clinohumite-Bearing Garnet Peridotite: Implication for Timing of Mantle Metasomatism. Geology, 31(8): 713-716. https://doi.org/10.1130/g19525.1
      Kawamoto, T., Kanzaki, M., Mibe, K., et al., 2012. Separation of Supercritical Slab-Fluids to Form Aqueous Fluid and Melt Components in Subduction Zone Magmatism. Proceedings of the National Academy of Sciences of the United States of America, 109(46): 18695-18700. https://doi.org/10.1073/pnas.1207687109
      Kodolányi, J., Pettke, T., 2011. Loss of Trace Elements from Serpentinites during Fluid-Assisted Transformation of Chrysotile to Antigorite: An Example from Guatemala. Chemical Geology, 284(3-4): 351-362. https://doi.org/10.1016/j.chemgeo.2011.03.016
      Li, H. Y., Chen, R. X., Zheng, Y. F., et al., 2016. The Crust-Mantle Interaction in Continental Subduction Channels: Zircon Evidence from Orogenic Peridotite in the Sulu Orogen. Journal of Geophysical Research (Solid Earth), 121(2): 687-712. https://doi.org/10.1002/2015JB012231
      Li, W. C., Ni, H. W., 2020. Dehydration at Subduction Zones and the Geochemistry of Slab Fluids. Science in China (Series D), 50(12): 1770-1784 (in Chinese).
      Li, W. Q., 2019. Testing Accuracy of 10 Major Elements in Diabase by Borate Melting Sample Preparation Method. World Geology, 38(3): 843-851 (in Chinese with English abstract).
      Liu, Y., 2020. The U-Pb Chronological Characteristics of Detrital Zircons of Sumdo Formation in Zhikong Area of Tibet and Its Significance (Dissertation). Chengdu University of Technology, Chengdu (in Chinese with English abstract).
      Liu, Y., Liu, H. F., Theye, T., et al., 2009. Evidence for Oceanic Subduction at the NE Gondwana Margin during Permo-Triassic Times. Terra Nova, 21(3): 195-202. https://doi.org/10.1111/j.1365-3121.2009.00874.x
      Ma, L., Kerr, A. C., Wang, Q., et al., 2019. Nature and Evolution of Crust in Southern Lhasa, Tibet: Transformation from Microcontinent to Juvenile Terrane. Journal of Geophysical Research: Solid Earth, 124(7): 6452-6474. https://doi.org/10.1029/2018jb017106
      Mai, Y. J., Zhu, L. D., Yang, W. G., et al., 2021. Zircon U-Pb and Hf Isotopic Composition of Permian Felsic Tuffs in Southeastern Margin of Lhasa, Tibet. Earth Science, 46(11): 3880-3891 (in Chinese with English abstract).
      McDonough, W. F., Sun, S. S., 1995. The Composition of the Earth. Chemical Geology, 120(3-4): 223-253. https://doi.org/10.1016/0009-2541(94)00140-4
      Niu, Y. L., 2004. Bulk-Rock Major and Trace Element Compositions of Abyssal Peridotites: Implications for Mantle Melting, Melt Extraction and Post-Melting Processes beneath Mid-Ocean Ridges. Journal of Petrology, 45(12): 2423-2458. https://doi.org/10.1093/petrology/egh068
      Parkinson, I. J., Pearce, J. A., 1998. Peridotites from the Izu-Bonin-Mariana Forearc (ODP Leg 125): Evidence for Mantle Melting and Melt-Mantle Interaction in a Supra-Subduction Zone Setting. Journal of Petrology, 39(9): 1577-1618. https://doi.org/10.1093/petroj/39.9.1577
      Rubatto, D., Hermann, J., 2003. Zircon Formation during Fluid Circulation in Eclogites (Monviso, Western Alps): Implications for Zr and Hf Budget in Subduction Zones. Geochimica et Cosmochimica Acta, 67(12): 2173-2187. https://doi.org/10.1016/S0016-7037(02)01321-2
      Savov, I. P., Ryan, J. G., D'Antonio, M., et al., 2005. Geochemistry of Serpentinized Peridotites from the Mariana Forearc Conical Seamount, ODP Leg 125: Implications for the Elemental Recycling at Subduction Zones. Geochemistry, Geophysics, Geosystems, 6(4): Q04J15. https://doi.org/10.1029/2004GC000777
      Song, Y. H., Xie, C. M., Gao, Z. W., et al., 2022. Tectonic Transition from Paleo- to Neo-Tethyan Ocean in Tangjia-Sumdo Area, Southern Tibet: Constraints from Early Jurassic Magmatism. Gondwana Research, 105: 12-24. https://doi.org/10.1016/j.gr.2021.11.016
      Wang, B., 2019. Recognition and Tectonic Significance of Sumdo Ophiolite, Tibet (Dissertation). Jilin University, Changchun (in Chinese with English abstract).
      Wang, B., Xie, C. M., Dong, Y. S., et al., 2021. Middle-Late Permian Mantle Plume/Hotspot-Ridge Interaction in the Sumdo Paleo-Tethys Ocean Region, Tibet: Evidence from Mafic Rocks. Lithos, 390/391: 106128. https://doi.org/10.1016/j.lithos.2021.106128
      Weller, O. M., St-Onge, M. R., Rayner, N., et al., 2016. U-Pb Zircon Geochronology and Phase Equilibria Modelling of a Mafic Eclogite from the Sumdo Complex of South-East Tibet: Insights into Prograde Zircon Growth and the Assembly of the Tibetan Plateau. Lithos, 262: 729-741. https://doi.org/10.1016/j.lithos.2016.06.005
      Wu, F. Y., Li, X. H., Zheng, Y. F., et al., 2007. Lu-Hf Isotopic Systematics and Their Applications in Petrology. Acta Petrologica Sinica, 23(2): 185-220 (in Chinese with English abstract).
      Xiong, X. L., Liu, X. C., Li, L., et al., 2020. The Partitioning Behavior of Trace Elements in Subduction Zones: Advances and Prospects. Science in China (Series D), 50(12): 1785-1798 (in Chinese).
      Xu, Z. Q., Dilek, Y., Cao, H., et al., 2015. Paleo-Tethyan Evolution of Tibet as Recorded in the East Cimmerides and West Cathaysides. Journal of Asian Earth Sciences, 105: 320-337. https://doi.org/10.1016/j.jseaes.2015.01.021
      Yang, J. S., Xu, Z. Q., Li, Z. L., et al., 2009. Discovery of an Eclogite Belt in the Lhasa Block, Tibet: A New Border for Paleo-Tethys? Journal of Asian Earth Sciences, 34(1): 76-89. https://doi.org/10.1016/j.jseaes.2008.04.001
      Yu, Y. P., 2020. Permian-Jurassic Magmatism and Its Tectonic Significance in Sumdo Area, Southern Tibet (Dissertation). Jilin University, Changchun (in Chinese with English abstract).
      Yuan, H. L., Gao, S., Liu, X. M., et al., 2004. Accurate U-Pb Age and Trace Element Determinations of Zircon by Laser Ablation-Inductively Coupled Plasma-Mass Spectrometry. Geostandards and Geoanalytical Research, 28(3): 353-370. https://doi.org/10.1111/j.1751-908x.2004.tb00755.x
      Zhang, R. Y., Yang, J. S., Wooden, J. L., et al., 2005. U-Pb SHRIMP Geochronology of Zircon in Garnet Peridotite from the Sulu UHP Terrane, China: Implications for Mantle Metasomatism and Subduction-Zone UHP Metamorphism. Earth and Planetary Science Letters, 237(3-4): 729-743. https://doi.org/10.1016/j.epsl.2005.07.003
      Zheng, J. P., Griffin, W. L., O'Reilly, S. Y., et al., 2006. A Refractory Mantle Protolith in Younger Continental Crust, East-Central China: Age and Composition of Zircon in the Sulu Ultrahigh-Pressure Peridotite. Geology, 34(9): 705-708. https://doi.org/10.1130/G22569.1
      Zheng, J. P., Tang, H. Y., Xiong, Q., et al., 2014. Linking Continental Deep Subduction with Destruction of a Cratonic Margin: Strongly Reworked North China SCLM Intruded in the Triassic Sulu UHP Belt. Contributions to Mineralogy and Petrology, 168(1): 1028. https://doi.org/10.1007/s00410-014-1028-0
      Zheng, J. P., Zhao, Y., Xiong, Q., 2019. Genesis and Geological Significance of Zircons in Orogenic Peridotite. Earth Science, 44(4): 1067-1082 (in Chinese with English abstract).
      Zheng, L., Zhi, X. C., Reisberg, L., 2009. Re-Os Systematics of the Raobazhai Peridotite Massifs from the Dabie Orogenic Zone, Eastern China. Chemical Geology, 268(1-2): 1-14. https://doi.org/10.1016/j.chemgeo.2009.06.021
      Zheng, Y. F., Chen, Y. X., 2019. Crust-Mantle Interaction in Continental Subduction Zones. Earth Science, 44(12): 3961-3983 (in Chinese with English abstract).
      Zhu, D. C., Mo, X. X., Niu, Y. L., et al., 2009. Zircon U-Pb Dating and In-Situ Hf Isotopic Analysis of Permian Peraluminous Granite in the Lhasa Terrane, Southern Tibet: Implications for Permian Collisional Orogeny and Paleogeography. Tectonophysics, 469(1-4): 48-60. https://doi.org/10.1016/j.tecto.2009.01.017
      Zhu, D. C., Zhao, Z. D., Niu, Y. L., et al., 2011. The Lhasa Terrane: Record of a Microcontinent and Its Histories of Drift and Growth. Earth and Planetary Science Letters, 301(1-2): 241-255. https://doi.org/10.1016/j.epsl.2010.11.005
      陈松永, 2010. 西藏拉萨地块中古特提斯缝合带的厘定(博士学位论文). 北京: 中国地质科学院.
      董宇超, 2021. 西藏松多高压/超高压变质作用及其构造意义(博士学位论文). 长春: 吉林大学.
      段梦龙, 解超明, 范建军, 等, 2019. 青藏高原松多中三叠世洋壳的识别及其对松多古特提斯洋演化的制约. 地球科学, 44(7): 2249-2264. https://www.cnki.com.cn/Article/CJFDTOTAL-DQKX201907005.htm
      段梦龙, 解超明, 王斌, 等, 2022. 西藏唐加地区石炭纪洋岛型岩石组合及其构造意义. 地球科学, 47(8): 2968-2984. doi: 10.3799/dqkx.2021.156
      侯可军, 李延河, 邹天人, 等, 2007. LA-MC-ICP-MS锆石Hf同位素的分析方法及地质应用. 岩石学报, 23(10): 2595-2604. https://www.cnki.com.cn/Article/CJFDTOTAL-YSXB200710026.htm
      李万财, 倪怀玮, 2020. 俯冲带脱水作用与板片流体地球化学. 中国科学(D辑), 50(12): 1770-1784. https://www.cnki.com.cn/Article/CJFDTOTAL-JDXK202012006.htm
      李文庆, 2019. 硼酸盐熔融制样法测定辉绿岩中10种常量元素的准确度. 世界地质, 38(3): 843-851. https://www.cnki.com.cn/Article/CJFDTOTAL-SJDZ201903029.htm
      刘宇, 2020. 西藏直孔地区松多岩组碎屑锆石U-Pb年代学特征及其意义(硕士学位论文). 成都: 成都理工大学.
      麦源君, 朱利东, 杨文光, 等, 2021. 西藏东南缘早二叠世长英质凝灰岩锆石U-Pb年龄和Hf同位素特征. 地球科学, 46(11): 3880-3891. doi: 10.3799/dqkx.2020.397
      王斌, 2019. 西藏松多地区蛇绿岩的识别及构造意义(硕士学位论文). 长春: 吉林大学.
      吴福元, 李献华, 郑永飞, 等, 2007. Lu-Hf同位素体系及其岩石学应用. 岩石学报, 23(2): 185-220. https://www.cnki.com.cn/Article/CJFDTOTAL-YSXB200702002.htm
      熊小林, 刘星成, 李立, 等, 2020. 俯冲带微量元素分配行为研究: 进展和展望. 中国科学(D辑), 50(12): 1785-1798. https://www.cnki.com.cn/Article/CJFDTOTAL-GDYJ202402002.htm
      于云鹏, 2020. 藏南松多地区二叠纪‒侏罗纪岩浆作用及构造意义(博士学位论文). 长春: 吉林大学.
      郑建平, 赵伊, 熊庆, 2019. 造山带橄榄岩中锆石的成因及其地质意义. 地球科学, 44(4): 1067-1082. doi: 10.3799/dqkx.2018.375
      郑永飞, 陈伊翔, 2019. 大陆俯冲带壳幔相互作用. 地球科学, 44(12): 3961-3983. doi: 10.3799/dqkx.2019.982
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