The compositional variation of I-type granites: Constraints from geochemical analyses and phase equilibrium calculations for granites from the Qinling orogen, central China

被引:5
|
作者
Gao, Peng [1 ,2 ]
Lu, Ying-Hui [1 ]
Zhao, Zi-Fu [1 ,2 ]
Zheng, Yong-Fei [1 ,2 ]
机构
[1] Univ Sci & Technol China, Sch Earth & Space Sci, CAS Key Lab Crust Mantle Mat & Environm, Hefei 230026, Peoples R China
[2] Chinese Acad Sci, Ctr Excellence Comparat Planetol, Hefei 230026, Peoples R China
基金
国家重点研发计划;
关键词
I-type granites; Crustal source; Partial melting; Fractional crystallization; Phase equilibrium; Chemical variation; S-TYPE GRANITES; TECTONIC EVOLUTION; MAGMA COMPOSITIONS; NORTHERN MARGIN; OXYGEN FUGACITY; YANGTZE PLATE; ROCKS; SUBDUCTION; PETROGENESIS; CRUST;
D O I
10.1016/j.jseaes.2020.104471
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
There is a large compositional variation of I-type granites. Although partial melting and fractional crystallization are the two primary mechanisms for the variation, it is intriguing to know how they jointly work. This issue is addressed by a combined study of geochemistry and phase equilibrium modelling for a Triassic pluton from the Qinling orogen. The pluton consists of high-K, calc-alkaline I-type granites. Geochemical results suggest that the granites are likely sourced from Triassic mafic-intermediate igneous rocks. Compared with experimental melts, it is inferred that the natural granites are not the crystallized product from pure magmatic melts. This is confirmed by phase equilibrium calculations that have utilized the Triassic mafic-intermediate igneous rocks as the source, yielding modelled melts that contain too low FeOt, MgO and Mg# to match the target granites. The addition of restitic mineral assemblages to melts can relieve the discrepancy, but the modelled magmas have much higher CaO than the granites. Replacing equilibrium melting by disequilibrium melting in terms of the plagioclase behavior can lead to a satisfactory match. Furthermore, by taking the average of the target granites as a parental magma, the modelled crystalline products can well reproduce the variation trends in the high-K, calc-alkaline I-type granites from the Qinling orogen. In this regard, the crustal anatexis would produce the parental magma at first, which experienced fractional crystallization to form the granitic pluton with the compositional variation as observed. Therefore, these two processes would jointly lead to the compositional variation of I-type granites in nature.
引用
收藏
页数:14
相关论文
共 50 条
  • [31] Geochronology and petrogenesis of Cretaceous A-type granites from the NE Jiangnan Orogen, SE China
    Zhou, Jie
    Jiang, Yao-Hui
    Xing, Guangfu
    Zeng, Yong
    Ge, Weiya
    INTERNATIONAL GEOLOGY REVIEW, 2013, 55 (11) : 1359 - 1383
  • [32] W and Li-Cs-Ta geochemical signatures in I-type granites - A case study from the Vosges Mountains, NE France
    Steiner, Benedikt M.
    JOURNAL OF GEOCHEMICAL EXPLORATION, 2019, 197 : 238 - 250
  • [33] Coexistence of A- and I-type granites in the Luliang Complex: Tectonic implications for the middle Paleoproterozoic Trans-North China Orogen, North China Craton
    Liu, Chaohui
    Zhao, Guochun
    Liu, Fulai
    Xu, Wang
    LITHOS, 2021, 380
  • [34] Early Cretaceous I-type granites in the southwest Fujian Province: new constraints on the late Mesozoic tectonic evolution of southeast China
    Zhao, Xilin
    Liu, Kai
    Yu, Minggang
    Jiang, Yang
    Mao, Jianren
    Zhou, Xiaohua
    Yu, Shengyao
    ISLAND ARC, 2015, 24 (03) : 359 - 378
  • [35] High heat production of the Late Mesozoic Luanchuan granites from East Qinling Orogen, China: Implications for petrogenesis and mineral exploration
    Ren, Weidong
    Yang, Fan
    Qian, Zesheng
    Liu, Chao
    Li, Xinyuan
    Santosh, M.
    Xue, Fei
    GEOLOGICAL JOURNAL, 2024, 59 (01) : 12 - 28
  • [36] Genesis of Triassic Buziwannan Granites in the West Kunlun Orogen Belt, China: Constraints from in Situ Major, Trace and Sr Isotope Analyses of Plagioclase
    Wang, Lin
    Chen, Peiwen
    Zeng, Qingdong
    Mi, Renchang
    Han, Runsheng
    PETROLOGY, 2024, 32 (05) : 700 - 715
  • [37] Paleoproterozoic I-type granites and their implications for the Yangtze block position in the Columbia supercontinent: Evidence from the Lengshui Complex, South China
    Wang, Zhengjiang
    Wang, Jian
    Deng, Qi
    Du, Qiuding
    Zhou, Xiaolin
    Yang, Fei
    Liu, Hao
    PRECAMBRIAN RESEARCH, 2015, 263 : 157 - 173
  • [38] Ca. 800 Ma I-type granites from the Hong'an Terrane, central China: New constraints on the mid-Neoproterozoic tectonic transition from convergence to extension in the northern margin of the Yangtze Block
    Xu, Yang
    Yang, Kun-Guang
    Liu, Yu
    Yang, Zhen-Ning
    Deng, Xin
    JOURNAL OF ASIAN EARTH SCIENCES, 2022, 239
  • [39] Evidence for mixed contribution of mantle and lower and upper crust to the genesis of Jurassic I-type granites from Macao, SE China
    Quelhas, Pedro
    Mata, Joao
    Dias, Agata Alveirinho
    GEOLOGICAL SOCIETY OF AMERICA BULLETIN, 2021, 133 (1-2) : 37 - 56
  • [40] Geochronological and geochemical constraints on petrogenesis of Late Mesozoic I- and A-type granites from the coastal area of northeastern Fujian Province, SE China
    Qiu, Jian-Sheng
    Jiang, Shao-Yong
    Xu, Xi-Sheng
    Xiao, E.
    Hu, Jian
    GEOCHIMICA ET COSMOCHIMICA ACTA, 2008, 72 (12) : A770 - A770