Advanced Search

Indexed by SCI、CA、РЖ、PA、CSA、ZR、etc .

Volume 25 Issue 3
Jun 2014
Turn off MathJax
Article Contents
Lu Lu, Zhenhan Wu, Zhen Zhao, Daogong Hu, Peisheng Ye. Zircon SHRIMP U-Pb Dating, Geochemical Characteristics and Tectonic Significance of Granitic Gneisses in Amdo, Tibet. Journal of Earth Science, 2014, 25(3): 473-485. doi: 10.1007/s12583-014-0448-0
Citation: Lu Lu, Zhenhan Wu, Zhen Zhao, Daogong Hu, Peisheng Ye. Zircon SHRIMP U-Pb Dating, Geochemical Characteristics and Tectonic Significance of Granitic Gneisses in Amdo, Tibet. Journal of Earth Science, 2014, 25(3): 473-485. doi: 10.1007/s12583-014-0448-0

Zircon SHRIMP U-Pb Dating, Geochemical Characteristics and Tectonic Significance of Granitic Gneisses in Amdo, Tibet

doi: 10.1007/s12583-014-0448-0
More Information
  • Corresponding author: Lu Lu, yangchunyoulu@163.com
  • Received Date: 16 May 2013
  • Accepted Date: 28 Sep 2013
  • Publish Date: 01 Jun 2014
  • The Amdo microcontinent is located within the middle of Bangong-Nujiang suture (BNS) zone in the shape of lens. The basic geological research restricts geologists from understanding the histories of tectonic evolution of BNS and regional geology more deeply. This paper systematically studies the geochronology and geochemistry of granitic gneisses from Amdo basement. These data provide constraints on formation age,source characteristics and tectonic setting of their protolith. The SHRIMP zircon U-Pb dating is operated for granitic gneisses. Samples AGS-2 and AGS-3 (granitic gneiss) yield average zircon U-Pb ages of 485±14 and 487±6 Ma,respectively. These ages should represent the formation age of protolith and indicate that they are formed in the Early Ordovician. Granitic gneisses are characterized by high SiO2,Na2O,K2O and Al2O3,low Fe and Mg,enrichment in light rare earth elements (LREEs) and large ion lithophile elements (LILEs),depletion in heavy rare earth elements (HREEs) and high field strength elements (HFSEs),with negative Eu anomaly. The Rittmann index (σ) is 1.77 to 2.60,less than 3.3. The aluminum saturation index (A/CNK) values range from 0.88 to 1.26. These features suggest that protolith of granitic gneisses from Amdo basement show characteristics of calc-alkaline and S-type granite,and they could be derived from partial melting of metamorphic greywackes in the upper crust of low maturity. The tectonic setting is syn-collision. These all suggest that the formation of protolith of granitic gneisses from Amdo are caused by the Early Paleozoic orogeny,which could be related to proto-Tethyan oceanic subduction along Gondwana continental margins,and does not result from the production of Pan-African orogenesis.

     

  • loading
  • Bao, P. S., Xiao, X. C., Su, L., et al., 2007. Tectonic Environment of Ophiolite in Dongcuo, Tibet: Implications for Petrology, Geochemical and Geochronology. Science in China Series D: Earth Sciences, 37(3): 298–307 (in Chinese)
    Boger, S. D., Miller, J. M., 2004. Terminal Suturing of Gongdwana and the Onset of the Ross-Delamerian Orogeny: The Cause and Effect of an Early Cambrian Reconfiguration of Plate Motions. Earth and Planetary Science Letters, 219: 35–48 doi: 10.1016/S0012-821X(03)00692-7
    Boynton, W. V., 1984. Geochemistry of the Rare Earth Elements: Meteorite Studies. In: Henderson, P., ed., Rare Earth Element Geochemistry. Elservier, Amsterdam. 63–114
    Cawood, P. A., Johnson, M. R. W., Nemchin, A. A., 2007. Early Palaeozoic Orogenesis along the Indian Margin of Gondwana: Tectonic Response to Gondwana Assembly. Earth and Planetary Science Letters, 255: 70–84 doi: 10.1016/j.epsl.2006.12.006
    Chappell, B. W., White, A. J. R., 1992. I and S type Granites in the Lachlan Fold Belt. Trans. R. Soc. Edinburgh: Earth Sci. , 83: 1–26 doi: 10.1017/S0263593300007720
    Coward, M. P., Kidd, W. S. F., Yun, P., et al., 1988. The Structure of the 1985 Tibet Geotraverse, Lhasa to Golmud. Philosphical Transantions of the Royal Society of London Series A—Mathematical Physical and Engineering Sciences, 327: 307–336 http://www.researchgate.net/publication/253492065_The_Structure_of_the_1985_Tibet_Geotraverse_Lhasa_to_Golmud
    DeCelles, P. G., Gehrels, G. E., Quade, J., et al., 2000. Tectonic Implications of U-Pb Zircon Ages of the Himalayan Orogenic Belt in Nepal. Science, 288: 47–499 http://www.onacademic.com/detail/journal_1000035754416210_513e.html
    Dong, M. L., Dong, G. C., Mo, X. X., et al., 2012. Geochronology and Geochemistry of the Early Palaeozoic Granitoids in Baoshan Block, Western Yunnan and Their Implications. Acta Petrologica Sinica, 28(5): 1453–1464 (in Chinese with English Abstract)
    Fan, S. Q., Shi, R. D., Ding, L., et al., 2010. Geochemical Characteristics and Zircon U-Pb Age of the Plagiogranite in Gaize Ophiolite of Central Tibet and Their Tectonic Significance. Acta Petrologica et Mineralogica, 29(5): 467–478 (in Chinese with English Abstract) http://www.researchgate.net/profile/Houqi_Wang/publication/284026062_Geochemical_characteristics_and_zircon_U-Pb_age_of_the_plagiogranite_in_Gaize_ophiolite_of_central_Tibet_and_their_tectonic_significance/links/567136ff08ae0d8b0cc2e27c.pdf
    Gehrels, G. E., Decelles, P. G., Martin, A., et al., 2003. Initiation of the Himalayan Orogen as an Early Paleozoic Thin-Skinned Thrust belt. GSA Today, 13: 4–9 http://www.geosociety.org/gsatoday/archive/13/9/pdf/gt0309.pdf
    Guynn, J., Kapp, P., Gehrels, E. G., et al., 2012. U-Pb Geochronology of Basement Rocks in Central Tibet and Paleogeographic Implications. Journal of Asian Earth Sciences, 43: 23–50 doi: 10.1016/j.jseaes.2011.09.003
    Hu, P. Y., Li, C., Su, L., et al., 2012. Zircon U-Pb Dating of Granitic Gneiss in Wugong Mountain Area, Central Qiangtang, Qinghai-Tibet Plateau: Age Records of Pan-African Movement and Indo-China Movement. Geology in China, 37(4): 1050–1059 (in Chinese with English Abstract) http://www.researchgate.net/publication/283755840_Zircon_U-Pb_dating_of_granitic_gneiss_in_Wugong_Mountain_area_central_Qiangtang_Qinghai-Tibet_Plateau_Age_records_of_Pan-African_movement_and_Indo-China_movement
    Huang, J. G., Yang, R. D., Yang, J., et al., 2013. Geochemical Characteristics and Tectonic Significance of Triassic Granite from Taer Region, the Northen Margin of Went Kunlun. Acta Geologica Sinica (English Edition), 87(2): 346–357 doi: 10.1111/1755-6724.12055
    Huang, J. J., 2001. Tectonic Characteristic and Evolution of Qiangtang Basin. Regional Geology of China, 20(2): 178–186 (in Chinese with English Abstract) http://www.researchgate.net/publication/285837291_Tectonic_characteristics_and_evolution_of_the_Qiangtang_basin
    Li, C., Xie, Y. W., Sha, S. L., et al., 2008. SHRIMP U-Pb Zircon Dating of the Pan-African Granite in Baxoi County, Eastern Tibet, China. Geological Bulletin of China, 27(1): 64–68 (in Chinese with English Abstract) http://www.researchgate.net/publication/297269632_SHRIMP_U-Pb_zircon_dating_of_the_Pan-African_granite_in_Baxoi_County_eastern_Tibet_China
    Li, Z. H., Lin, S. L., Cong, F., et al., 2012. U-Pb Ages of Zircon from Metamorphic Rocks of the Gaoligongshan Group in Western Yunnan and Its Tectonic Significance. Acta Petrologica Sinica, 28(5): 1529–1541 (in Chinese with English Abstract)
    Lin, S. L., Cong, F., Gao, Y. J., et al., 2012. LA-ICP-MS Zircon U-Pb Age of Gneiss from Gaoligong Mountain Group on the Southeastern Margin of Tengchong Block in Western Yunnan Province. Geological Bulletin of China, 31(2–3): 258–263 (in Chinese with English Abstract) http://www.researchgate.net/publication/283769402_LA-ICP-MS_zircon_U-Pb_age_of_gneiss_from_Gaoligong_Mountain_Group_on_the_southeastern_margin_of_Tengchong_block_in_western_Yunnan_Province
    Lu, S. N., 2004. Comparison of the Pan-Cathaysian Orogeny with the Caledonian and Pan-African Orogenies. Geological Bulletin of China, 23(9–10): 952–958 (in Chinese with English Abstract)
    Meert, J. G., 2003. A Synopsis of Events Related to the Assembly of Eastern Gondwana. Tectonophysics, 362: 1–40 doi: 10.1016/S0040-1951(02)00629-7
    Pan, G. T., Mo, X. X., Hou, Z. Q., et al., 2006. Spatial-Temporal Framework of the Gangdese Orogenic Belt and Its Evolution. Acta Petrologia Sinica, 22(3): 521–533 (in Chinese with English Abstract)
    Peng, P., Guo, J. H. ., Windley, B. F., et al, 2012. Petrogenesis of Late Paleoproterozic Liangcheng Charnockites and S-type Granites in the Central-Northern Margin of the North China Craton. Precambrian Research, 222–223: 107–123 http://www.onacademic.com/detail/journal_1000035736017410_5568.html
    Qi, X. X., Li, H. Q., Li, T. F., et al., 2010. Zircon SHRIMP U-Pb Dating for Garnet-Rich Granite Veins in High-Pressure Granulites from the Namche Barwa Complex, Eastern Syntaxis of the H Imalayas and the Relationship with Exhumation. Acta Petrologica Sinica, 26(3): 975–984 (in Chinese with English Abstract) http://en.cnki.com.cn/Article_en/CJFDTOTAL-YSXB201003026.htm
    Qu, X. M., Wang, R. J., Xin, H. B., et al., 2012. Age and Petrogenesis of A-Type in the Middle Segment of the Bangonghu-Nujiang Suture, Tibetan Plateau. Lithos, (146–147): 264–275
    Shi, R. D., Griffin, W. L., O'Reilly, S. Y., et al., 2012. Melt/Mantle Mixing Produces Podiform Chromite Depos-Its in Ophiolites: Implications of Re-Os Systematics in the Dongqiao Neo-Tethyan Ophiolite, Northern Tibet. Gondwana Research, 21: 194–206 doi: 10.1016/j.gr.2011.05.011
    Shi, R. D., Yang, J. S., Xu, Z. Q., et al., 2008. The Bangong Lake Ophiolite (NW Tibet) and Its Bearing on the Tectonic Evolution of the Bangong-Nujiang Suture Zone. Journal of Asian Earth Sciences, 32: 438–457 doi: 10.1016/j.jseaes.2007.11.011
    Song, B., Zhang, Y. H., Wan, Y. S., et al., 2002. Mount Making and Procedure of the SHRIMP Dating. Geological Review, 48(Suppl. ): 26–30 (in Chinese with English Abstract) http://en.cnki.com.cn/Article_en/CJFDTOTAL-DZLP2002S1006.htm
    Song, S. G., Ji, J. Q., Wei, C. J., et al., 2007. Determination and Tectonic Implications of the Early Paleozoic Gneissic Granites in Nujiang, Northwest Yunnan. Chinese Science Bulletin, 52(8): 927–930 (in Chinese) doi: 10.1360/csb2007-52-8-927
    Sun, S. S., McDonough, W. F., 1989. Chemical and Isotopic Systematics of Oceanic Basalts: Implication for Mantle Composition and Processes. In: Saunder, A. D., Norry, M. J., eds., Magmatism in the Ocean Basins. Geological Society Special Publication, 42: 313–345
    Sylvester, P. J., 1998. Post-Collisional Strongly Peraluminous Granites. Lithos, 45: 29–44 doi: 10.1016/S0024-4937(98)00024-3
    Wang, D. Z., 2004. The Study of Granitic Rocks in South China: Looking Back and Forward. Geological Journal of China Universities, 10(3): 305–314 (in Chinese with English Abstract)
    Wang, D. Z., Liu, C. S., Shen, W. Z., et al., 1993. The Contrast between Tonglu I-Type and Xiangshan S-Type Clastoporphyritic Lava. Acta Petrologica Sinica, 9(1): 44–54 (in Chinese with English Abstract) http://www.oalib.com/paper/1469915
    Wang, L. B., Zhang, Y. Q., Cai, J. J., et al., 2013. Characteristics of the Upper Jurassic Marine Source Rocks and Prediction of Favorable Source Rock Kitchens in the Qiangtang Basin, Tibet. Journal of Earth Science, 24(5): 815–829, doi: 10.1007//s12583-013-0375-5
    Wang, M., Li, C., Xie, C. M., et al., 2012. LA-ICP-MS U-Pb Dating of Zircon from Granitic Gneiss of the Nierong Microcontinent: The Discovery of the Neoproterozoic Basement Rock and Its Significance. Acta Petrologica Sinica, 28(12): 4101–4108 (in Chinese with English Abstract)
    Wang, W. L., Aitchison, J. C., Lo, C. H., et al., 2008. Geochemistry and Geochronology of the Amphibolite Blocks in Ophiolitic Mélanges along Bangong-Nujiang Suture, Central Tibet. Journal of Asian Earth Sciences, 33: 122–138 doi: 10.1016/j.jseaes.2007.10.022
    Williams, I. S., Claesson, S., 1987. Isotopic Evidence for the Precambrian Provenance and Caledonian Metamorphism of High Grade Paragneisses from the Seve Nappes, Scandinavian Caledonides II. Ion Microprobe Zircon U-Th-Pb. Contrib. Mineral. Petrol. , 97: 205–217 doi: 10.1007/BF00371240
    Wu, Z. H., Ye, P. S., Hu, D. G., et al., 2003. Crust Deformation and Tectonic-Geonomorphic Evolution of the Central Tibet Plateau. Geological Publishing House, Beijing. 292 (in Chinese with English Abstract)
    Xia, B., Xu, L. F., Wei, Z. Q., et al., 2008. SHRIMP Zircon Dating of Gabbro from the Dongqiao Ophiolite in Tibet and Its Geological Implications. Acta Geologica Sinica, 82(4): 528–531 (in Chinese with English Abstract) http://en.cnki.com.cn/Article_en/ http://search.cnki.net/down/default.aspx?filename=DZXE200804010&dbcode=CJFD&year=2008&dflag=pdfdown
    Xie, C. M., Li, C., Su, L., et al., 2010. LA-ICP-MS U-Pb Dating of Zircon from Granite-Gneiss in the Amdo Area, Northern Tibet, China. Geological Bulletin of China, 29(12): 1737–1744 (in Chinese with English Abstract) http://en.cnki.com.cn/Article_en/CJFDTOTAL-ZQYD201012003.htm
    Xie, C. M., Li, C., Wu, Y. W., et al., 2014. 40Ar/39Ar Thenmochronology Contraints on Jurassic Tectonothermal Event of Nyainrong Microcontiment. Journal of Earth Science, 25(1): 98–108, doi: 10.1007/s12583-014-0403-0
    Xu, R. H., Scharer, U., Allegre, C. J., 1985. Magmatism and Metamorphism in the Lhasa block (Tibet): A Geochronological Study. Journal of Geology, 93: 41–57 doi: 10.1086/628918
    Xu, Z. Q., Yang, J. S., Li, H. B., et al., 2007. Orogenic Plateau-Terrane Amalgamation, Collision and Uplift in the Qinghai-Tibet Plateau. Geological Publishing House, Beijing. 458 (in Chinese with English Abstract)
    Xu, Z. Q., Yang, J. S., Liang, F. H., et al., 2005. Pan-African and Early Paleozoic Orogenic Events in the Himalaya Terrane: Inference from SHRIMP U-Pb Zircon Ages. Acta Petrologica Sinica, 21(1): 1–12 (in Chinese with English Abstract) http://www.researchgate.net/publication/283961080_Pan-African_and_Early_Paleozoic_orogenic_events_in_the_Himalaya_terrane_Inference_from_SHRIMP_U-Pb_zircon_ages
    Ye, P. S., Wu, Z. H., Hu, D. G., et al., 2004. Geochemical Characteristics and Tectonic Setting of Ophiolite of Dongqiao, Tibet. Geosciences, 18(3): 300–315 (in Chinese with English Abstract) http://www.researchgate.net/publication/284938968_Geochemical_characteristics_and_tectonic_setting_of_ophiolite_of_Dongqiao_Tibet
    Zhang, Z. M., Dong, X., Santosh, M., et al., 2012. Metamorphism and Tectonic Evolution of the Lhasa Terrane, Central Tibet. Gondwana Research, 25(1): 170–189 http://www.researchgate.net/profile/Zeming_Zhang2/publication/259157825_Metamorphism_and_tectonic_evolution_of_the_Lhasa_terrane_Central_Tibet/links/00b4952a3b9d75d662000000.pdf
    Zhang, Z. M., Wang, J. L., Shen, K., et al., 2008. Paleozoic Circum-Gondwana Orogens: Petrology and Geochronology of the Namche Barwa Complex in the Eastern Himalayan Syntaxis, Tibet. Acta Petrologica Sinica, 24(7): 1627–1637 (in Chinese with English Abstract) http://www.researchgate.net/publication/283929280_Paleozoic_circum-Gondwana_orogens_Petrology_and_geochronology_of_the_Namche_Barwa_complex_in_the_Eastern_Himalayan_syntaxis_Tibet
    Zhou, J. X., Chen, Z. Y., 2002. A New Integrated Method for Dating Minerals Like Zircon Using Electron Microprobe and Cathodoluminescence. Geological Review, 48(Suppl. ): 31–35 (in Chinese with English Abstract) http://search.cnki.net/down/default.aspx?filename=DZLP2002S1007&dbcode=CJFD&year=2002&dflag=pdfdown
    Zhu, D. C., Zhao, Z. D., Niu, Y. L., et al., 2012. Cambrian Bimodal Volcanism in the Lhasa Terrane, Southern Tibet: Record of an Early Paleozoic Andean-Type Magmatic Arc in the Australian Proto-Tethyan Margin. Chemical Geology, 328: 290–308 doi: 10.1016/j.chemgeo.2011.12.024
  • 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(759) PDF downloads(166) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return