Permian basaltic rocks in the Tarim basin, NW China: Implications for plume-lithosphere interaction

被引:105
作者
Zhang, Yutao [1 ]
Liu, Jiaqi [1 ]
Guo, Zhengfu [1 ]
机构
[1] Chinese Acad Sci, Key Lab Cenozo Geol & Environm, Inst Geol & Geophys, Beijing 100029, Peoples R China
关键词
Tarim basin; Oceanic island basalts (OIB); Large igneous province (LIP); Mantle plume; Geochemistry; LARGE IGNEOUS PROVINCES; EMEISHAN FLOOD BASALTS; VOLCANIC-ROCKS; MANTLE PLUME; CRUSTAL STRUCTURE; NORTHWEST CHINA; TRACE-ELEMENT; MAGMA SERIES; EVOLUTION; PB;
D O I
10.1016/j.gr.2010.03.006
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
There are large areas of Permian basaltic rocks in the Tarim basin (PBRT) in northwestern China. Precise Ar-Ar dating of these rocks revealed an eruption age span of 262 to 285 Ma. Most of the PBRT is composed of alkaline basaltic rocks with high TiO2 (2.43%-4.59%, weight percent), high Fe2O3 + FeO (12.63%-17.83%) and P2O5 (0.32%-1.38%) contents. Trace elements of these rocks have affinities with oceanic island basalts (OIB), as shown in chondrite normalized rare earth elements (REE) diagrams and primitive mantle normalized incompatible elements diagrams. The rocks show complex Sr-Nd isotopic character based on which they can be subdivided into two distinct groups: group 1 has relatively small initial (t=280 Ma)Sr-87/Sr-86 ratio (similar to 0.7048) and positive epsilon Nd(t) (3.42-4.66) values. Group 2 has relatively large initial Sr-87/Sr-86 ratio (0.7060-0.7083) and negative epsilon Nd(t) (from -2.79 to -2.16) values. Lead isotopes are even more complex with variations of (Pb-206/Pb-204)t, (Pb-207/Pb-204)t and (Pb-208/Pb-204)t ranging from 17.9265 to 18.5778, 15.4789 to 15.6067 and 37.2922 to 38.1437, respectively. Moreover, these two groups have different trace elements ratios such as Nb/La, Ba/Nb, Zr/Nb, Nb/Ta and Zr/Hf, implying different magmatic processes. Based on the geochemistry of basaltic rocks and an evaluation of the tectonics, deformation, and the compositions of crust and lithospheric mantle in Tarim, we conclude that these basaltic rocks resulted from plume-lithosphere interaction. Permian mantle plume caused an upwelling of the Tarim lithosphere leading to melting of the asthenospheric mantle by decompression. The magma ascended rapidly to the base of lower crust, where different degrees of assimilation of OIB-like materials and fractionation occurred. Group 1 rocks formed where the upwelling is most pronounced and the assimilation was negligible. In other places, different degrees of assimilation and fractionation account for the geochemical traits of group 2. (C) 2010 International Association for Gondwana Research. Published by Elsevier B.V. All rights reserved.
引用
收藏
页码:596 / 610
页数:15
相关论文
共 50 条
[31]   Neon isotopes in mantle rocks from the Red Sea region reveal large-scale plume-lithosphere interaction [J].
Hopp, J ;
Trieloff, M ;
Altherr, R .
EARTH AND PLANETARY SCIENCE LETTERS, 2004, 219 (1-2) :61-76
[32]   Petrology and geochemistry of Early Permian volcanic rocks in South Tian Shan, NW China: implications for the tectonic evolution and Phanerozoic continental growth [J].
Liu, Dongdong ;
Guo, Zhaojie ;
Jolivet, Marc ;
Cheng, Feng ;
Song, Yan ;
Zhang, Ziya .
INTERNATIONAL JOURNAL OF EARTH SCIENCES, 2014, 103 (03) :737-756
[33]   Submarine palaeoenvironments during Emeishan flood basalt volcanism, SW China: Implications for plume-lithosphere interaction during the Capitanian, Middle Permian ('end Guadalupian') extinction event [J].
Jerram, Dougal A. ;
Widdowson, Mike ;
Wignall, Paul B. ;
Sun, Yadong ;
Lai, Xulong ;
Bond, David P. G. ;
Torsvik, Trond H. .
PALAEOGEOGRAPHY PALAEOCLIMATOLOGY PALAEOECOLOGY, 2016, 441 :65-73
[34]   Riphean-Vendian-Cambrian Magmatism of the Mankhambo Block (Subpolar Urals): Geochemical Typification, Correction of Geodynamic Concepts, and the Role of Plume-Lithosphere Interaction [J].
Kholodnov, V. V. ;
Shardakova, G. Yu. ;
Dushin, V. A. ;
Korovko, A. V. ;
Shagalov, E. S. .
PETROLOGY, 2022, 30 (04) :392-417
[35]   Geochronology and geochemistry of basaltic rocks from the Sartuohai ophiolitic melange, NW China: Implications for a Devonian mantle plume within the Junggar Ocean [J].
Yang, Gaoxue ;
Li, Yongjun ;
Santosh, M. ;
Yang, Baokai ;
Yan, Jing ;
Zhang, Bing ;
Tong, Lili .
JOURNAL OF ASIAN EARTH SCIENCES, 2012, 59 :141-155
[36]   Vestiges of older greenstone in Mesoarchaean Chakradharpur granite gneiss, Singhbhum Craton, India: Implications for plume-lithosphere interaction at rifted cratonic margin [J].
Ghose, Naresh C. ;
Saha, Abhishek .
GEOLOGICAL JOURNAL, 2019, 54 (04) :1927-1949
[37]   Composition of the Tarim mantle plume: Constraints from clinopyroxene antecrysts in the early Permian Xiaohaizi dykes, NW China [J].
Wei, Xun ;
Xu, Yi-Gang ;
Luo, Zhen-Yu ;
Zhao, Jian-Xin ;
Feng, Yue-Xing .
LITHOS, 2015, 230 :69-81
[38]   Plume-orogenic lithosphere interaction recorded in the Haladala layered intrusion in the Southwest Tianshan Orogen, NW China [J].
He, Peng-Li ;
Huang, Xiao-Long ;
Xu, Yi-Gang ;
Li, Hong-Yan ;
Wang, Xue ;
Li, Wu-Xian .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 2016, 121 (03) :1525-1545
[39]   Multiple phases of the Neoproterozoic igneous activity in Quruqtagh of the northeastern Tarim Block, NW China: Interaction between plate subduction and mantle plume? [J].
Zhang, Chuan-Lin ;
Zou, Hai-Bo ;
Wang, Hong-Yan ;
Li, Huai-Kun ;
Ye, Hai-Min .
PRECAMBRIAN RESEARCH, 2012, 222 :488-502
[40]   Petrogenesis of volcanic rocks in the Sangxiu Formation, central segment of Tethyan Himalaya: A probable example of plume-lithosphere interaction [J].
Zhu, Dicheng ;
Pan, Guitang ;
Mo, Xuanxue ;
Liao, Zhongli ;
Jiang, Xinsheng ;
Wang, Liquan ;
Zhao, Zhidan .
JOURNAL OF ASIAN EARTH SCIENCES, 2007, 29 (2-3) :320-335