Crustal Structures of the Qimantagh Metallogenic Belt in the Northern Tibetan Plateau from Magnetotelluric Data and Their Correlation to the Distribution of Mineral Deposits

被引:6
作者
He, Lanfang [1 ]
Di, Qinyun [2 ]
Wang, Zhongxing [2 ]
Lai, Jianqing [3 ]
Xue, Guoqiang [1 ]
Guo, Wenbo [4 ]
机构
[1] Chinese Acad Sci, Inst Geol & Geophys, Key Lab Mineral Resources, Beijing 100029, Peoples R China
[2] Chinese Acad Sci, Inst Geol & Geophys, CAS Engn Lab Deep Resources Equipment & Technol, Beijing 100029, Peoples R China
[3] Cent South Univ, Sch Geosci & Infophys, Key Lab Metallogen Predict Nonferrous Met & Geol E, Minist Educ, Changsha 410083, Peoples R China
[4] Bur Geol Explorat Nonferrous Met Northwest China, Xian Geophys & Geochem Explorat Corp, Xian 710068, Peoples R China
基金
英国科研创新办公室;
关键词
crustal structure; northern Tibetan Plateau; magnetotelluric; Qimantagh; metallogenic belt; KUNLUN MOUNTAINS; SKARN DEPOSITS; QAIDAM BASIN; EVOLUTION; CONSTRAINTS; OROGEN; DYNAMICS; SYSTEMS; COPPER;
D O I
10.3390/min13020225
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Crustal structure and fluid or melt originating in the deep crust and mantle are critical in regional magmatic mineral systems. However, the crustal structure and the processes that entrain and focus fluids from a deep-source region to a metallogenic belt remain relatively undisclosed. We present a magnetotelluric (MT) study of the eastern Qimantagh Metallogenic Belt (QMB) in the northern Tibetan Plateau. Data from 33 MT stations in two sections and 7 dispersed stations are acquired using a surface electromagnetic prospecting (SEP) system in frequency band ranges from 320 Hz to 0.00034 Hz. Data are converted by Bostick conversion and two-dimensional (2D) nonlinear conjugate gradient inversion. Our MT results reveal the geoelectrical crustal structure of the QMB, which consists of a southern low-resistivity domain that reflects the Kumukuri rift, a high-resistivity middle domain that represents the southern QMB in the central Kunlun belt, and a northern low-resistivity domain that covers the northern QMB and southwestern Qaidam block. We present a comprehensive tectonic and geophysical model of QMB based on the MT interpretation and geological analysis. We infer the high-resistivity domain as a reflection of a rigid crust and detached lithospheric mantle, this belt separate the QMB into northern and southern QMB. Most of the mineral deposits are found in the northern low-resistivity domain of QMB. Our study and findings provide an understanding of the tectonic evolution of the northern Tibetan Plateau, the crustal structure that controls the temporal and spatial distribution of magmatic rocks, and the geological signature associated with mineral deposits.
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页数:14
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[1]   Scale-integrated architecture of a world-class gold mineral system: The Archaean eastern Yilgarn Craton, Western Australia [J].
Blewett, R. S. ;
Henson, P. A. ;
Roy, I. G. ;
Champion, D. C. ;
Cassidy, K. F. .
PRECAMBRIAN RESEARCH, 2010, 183 (02) :230-250
[2]   The Magnetotelluric Phase Tensor: A Critical Review [J].
Booker, John R. .
SURVEYS IN GEOPHYSICS, 2014, 35 (01) :7-40
[3]  
Bostick F. X., 1977, US Geol. Surv. Contract 14080001-8, V359, P174
[4]   How close can we get to the classical magnetotelluric sounding? [J].
Calderon-Moctezuma, Armando ;
Gomez-Trevino, E. ;
Yutsis, V ;
Guevara-Betancourt, R. ;
Gomez-Avila, Marianggy .
JOURNAL OF APPLIED GEOPHYSICS, 2022, 203
[5]   Cenozoic evolution of the Qaidam basin and implications for the growth of the northern Tibetan plateau: A review [J].
Cheng, Feng ;
Jolivet, Marc ;
Guo, Zhaojie ;
Wang, Lin ;
Zhang, Changhao ;
Li, Xiangzhong .
EARTH-SCIENCE REVIEWS, 2021, 220
[6]   Imaging the Whole-Lithosphere Architecture of a Mineral System-Geophysical Signatures of the Sources and Pathways of Ore-Forming Fluids [J].
Comeau, Matthew J. ;
Becken, Michael ;
Kuvshinov, Alexey, V .
GEOCHEMISTRY GEOPHYSICS GEOSYSTEMS, 2022, 23 (08)
[7]   Crustal architecture of a metallogenic belt and ophiolite belt: implications for mineral genesis and emplacement from 3-D electrical resistivity models (Bayankhongor area, Mongolia) [J].
Comeau, Matthew J. ;
Becken, Michael ;
Kuvshinov, Alexey V. ;
Demberel, Sodnomsambuu .
EARTH PLANETS AND SPACE, 2021, 73 (01)
[8]   Cassiterite U-Pb geochronology of the Kekekaerde W-Sn deposit in the Baiganhu ore field, East Kunlun Orogen, NW China: Timing and tectonic setting of mineralization [J].
Deng, Xiao-Hua ;
Chen, Yan-Jing ;
Bagas, Leon ;
Zhou, Hong-Ying ;
Zheng, Zhen ;
Yue, Su-Wei ;
Chen, Hong-Jin ;
Li, Hui-Min ;
Tu, Jia-Run ;
Cui, Yu-Rong .
ORE GEOLOGY REVIEWS, 2018, 100 :534-544
[9]   Field testing of the surface electromagnetic prospecting system [J].
Di Qing-Yun ;
Fu Chang-Min ;
An Zhi-Guo ;
Xu Cheng ;
Wang Ya-Lu ;
Wang Zhong-Xing .
APPLIED GEOPHYSICS, 2017, 14 (03) :449-458
[10]   Lithospheric structures across the Qiman Tagh and western Qaidam Basin revealed by magnetotelluric data collected using a self-developed SEP system [J].
Di, Qingyun ;
Xue, Guoqiang ;
Wang, Zhongxing ;
He, Lanfang ;
Pei, Renzhong ;
Zhang, Tianxin ;
Fang, Guangyou .
SCIENCE CHINA-EARTH SCIENCES, 2021, 64 (10) :1813-1820