Late Paleoproterozoic A-type granitic rocks in the northern Yangtze block: evidence for breakup of the Columbia supercontinent

被引:0
|
作者
Huang M. [1 ]
Cui X. [2 ,3 ]
Cheng A. [1 ]
Ren G. [2 ]
He H. [4 ]
Chen F. [2 ,3 ]
Zhang H. [1 ]
Zhang J. [1 ]
Ren F. [2 ]
机构
[1] General Prospecting Institute, China National Administration of Coal Geology, Beijing
[2] Chengdu Center of China Geological Survey, Chengdu
[3] Chengdu University of Technology, Chengdu
[4] Tarim Oilfield Company of PetroChina, Korla, 841000, Xinjiang
来源
Dizhi Xuebao/Acta Geologica Sinica | 2019年 / 93卷 / 03期
关键词
Aluminous A-type granite; Columbia supercontinent; Intraplate rift; Post-collisional extension; Yangtze Block;
D O I
10.19762/j.cnki.dizhixuebao.2019041
中图分类号
学科分类号
摘要
In order to constrain the Late Paleoproterozoic tectonic evolution of the Yangtze Block, this paper reported the geochemical, geochronological, whole-rock Nd isotopes and zircon Hf isotope analyses of the K-feldspar granites and monzogranites from the Huashanguan complex. U-Pb dating of magmatic zircons from K-feldspar granites and monzogranites yielded ages of 1860±12 Ma and 1832±14 Ma respectively, representing the age of their formation. The two types of granitoid are geochemically characterized by aluminous A-type granite. The consistent εHf(t) values (-10.9~-13.8) and TDM2 (2962~3183 Ma) indicate that the K-feldspar granites and monzogranites in the Huashanguan complex were formed by partly melting of the single Archean crust. The previous εHf(t) results also indicate that there two widely-distributed Archean felsic crusts (3.0~3.5 Ga; 3.5~3.9 Ga) in the Yangze Block provided material source for the magmatic evolution of the two types of granitoid. Zircons saturation temperatures of two types of the granite in Huashanguan reveal that the samples should source from much deep crust and monzogranites formed with more heat sources involved. Combined geochemical evidence of coeval A-type granite in the Yangtze block (~1.85 Ga), it can be concluded that the K-feldspar granites in Hushanguan complex and coeval A-type granite have features of post-collisional granite (A2-type and formed in a post-collisional setting. The monzogranites show the geochamical characteristic of A1 type granite, indicating a tectonic environment from post-collision to intraplate rift. The two magmatic events may be related to the breakup of Columbia supercontinent. © 2019, Science Press. All right reserved.
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页码:565 / 584
页数:19
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共 79 条
  • [21] Hu J., Liu X., Chen L., Qu W., Li H., Geng J., A -2.5 Ga magmatic event at the northern margin of the Yangtze craton: Evidence from U-Pb dating and Hf isotope analysis of zircons from the Douling Complex in the South Qinling orogen, Chinese Science Bulletin, 58, pp. 3564-3579, (2013)
  • [22] Hu Z., Zhang W., Liu Y., Gao S., Li M., Zong K., Chen H., Hu S., Wave" signal smoothing and mercury removing device for laser ablation quadrupole and multiple collector ICP-MS analysis: application to lead isotope analysis, Analytical Chemistry, 87, pp. 1152-1157, (2015)
  • [23] Jian P., Yang W., Zhang Z., <sup>207</sup>Pb/<sup>206</sup>Pb zircon dating of the Huangtuling hypersthene-garnet-biotite gneiss from the Dabie Moutians, Luotian Country, Hubei Province China: New evidence for Early Precambrain evolution, Acta Geologica Sinica, 73, 1, pp. 78-83, (1999)
  • [24] Jiao W., Wu Y., Yang S., Peng M., Wang J., The oldest basement rock in the Yangtze Craton revealed by zircon U-Pb age and Hf isotope composition, Science in China Series D: Earth Sciences, 52, pp. 1393-1399, (2009)
  • [25] Kemp A.I.S., Whitehouse M.J., Hawkesworth C.J., Alarcon M.K., A zircon U-Pb study of metaluminous (I-type) granites of the Lachlan fold belt, southeastern Australia: implications for the high/low temperature classification and magma differentiation processes, Contributions to Mineralogy and Petrology, 150, pp. 230-249, (2005)
  • [26] King P.L., White A.J.R., Chappell B.W., Allen C.M., Characterization and origin of aluminous A-type granites from the Lachlan fold belt, southeastern Australia, Journal of Petrology, 38, pp. 371-391, (1997)
  • [27] Le Maitre R.W., A classification of igneous rocks and glossary terms, Recommendations of the International Union of Geological Sciences Subcommission on the Systematics of Igneous Rocks, pp. 1-193, (1989)
  • [28] Li L., Lin S., Davis D.W., Xiao W., Geochronology and geochemistry of igneous rocks from the Kongling terrane Implications for Mesoarchean to Paleoproterozoic crustal evolution of the Yangtze Block, Precambrian Research, 255, pp. 30-47, (2014)
  • [29] Li X., Timing of the Cathaysia Block formation: Constraints from SHRIMPU-Pb zircon geochronology, Episodes, 20, pp. 188-192, (1997)
  • [30] Li X., Wang Y., Zhao Z., Chen D., Zhang H., SHRIMP U-Pb zircon geochronology for amphibolite from the Precambrain basement in SW Zhejiang and NW Fujian Provinces, Geochimica, 27, 4, pp. 327-334, (1998)