Electrical resistivity structures northeast of the Eastern Kunlun Fault in the Northeastern Tibet: Tectonic implications

被引:55
作者
Xiao, Qibin [1 ]
Zhang, Jin [2 ]
Zhao, Guoze [1 ]
Wang, Jijun [1 ]
机构
[1] China Earthquake Adm, Inst Geol, State Key Lab Earthquake Dynam, Beijing 100029, Peoples R China
[2] Chinese Acad Geol Sci, Inst Geol, Beijing 100037, Peoples R China
基金
中国国家自然科学基金;
关键词
Electrical structures; Magnetotellurics; Weak crustal zone; Qilian Mountain; Northeastern Tibetan Plateau; LOWER CRUSTAL FLOW; QAIDAM BASIN; MAGNETOTELLURIC DATA; SOUTHERN TIBET; CENTRAL-ASIA; CONTINENTAL DEFORMATION; GALVANIC DISTORTION; FLUID PRESSURE; NW CHINA; PLATEAU;
D O I
10.1016/j.tecto.2013.05.003
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
Only sparse deep geophysical data have been obtained in the region to the north of the Eastern Kunlun Fault (EKLF) in the Tibetan Plateau, which leads to inconsistent and ambiguous descriptions of the area in various geodynamic models. The detailed geophysical issues in the region, including the northeast boundary of the plateau and the crust-mantle coupling mode northeast of the EKLF, are under dispute. To resolve these disputes, we have collected magnetotelluric (MT) data along five profiles in the region to the north of the EKLF since 2009. The interpretation of data from the latest profile, labeled L5, which starts from the eastern margin of the Qaidam Basin, crosses the Qilian Mountain and the Hexi Corridor, and finally reaches the Southern Alashan Block, is the focus of this paper. These new results are comparable with our previously determined structures. The two-dimensional (20) resistivity model supports three divisions of the Qilian Mountain: a complex Northern Qilian, a relatively simple sandwiched Southern Qilian, and a transitional Central Qilian in between them. Our data indicate a relatively low-resistivity layer at the middle-lower crust below the eastern margin of the Qaidam Basin and the Southern Qilian Mountain. This result indicates a weak crustal zone (WCZ) existing northeast of the EKLF and is interpreted as a large north-dipping thrust at this depth. The presumed imbricated thrust in the crust in the northeastern plateau resulting from the indenting of the mantle wedge from the south is the primary process in the crustal thickening in the region. The MT results indicate that the northeastern boundary of the Tibetan Plateau is not below the EKLF; instead, we suggest that the northeastern boundary of the outgrowth of the Tibetan Plateau is along and below the northern rim of the Hexi Corridor. (C) 2013 Elsevier B.V. All rights reserved.
引用
收藏
页码:125 / 138
页数:14
相关论文
共 82 条
  • [1] Crustal deformation of the eastern Tibetan plateau revealed by magnetotelluric imaging
    Bai, Denghai
    Unsworth, Martyn J.
    Meju, Max A.
    Ma, Xiaobing
    Teng, Jiwen
    Kong, Xiangru
    Sun, Yi
    Sun, Jie
    Wang, Lifeng
    Jiang, Chaosong
    Zhao, Ciping
    Xiao, Pengfei
    Liu, Mei
    [J]. NATURE GEOSCIENCE, 2010, 3 (05) : 358 - 362
  • [2] Topography associated with crustal flow in continental collisions, with application to Tibet
    Bendick, R.
    McKenzie, D.
    Etienne, J.
    [J]. GEOPHYSICAL JOURNAL INTERNATIONAL, 2008, 175 (01) : 375 - 385
  • [3] Magnetotelluric evidence for thick-skinned tectonics in central Taiwan
    Bertrand, Edward
    Unsworth, Martyn
    Chiang, Chih-Wen
    Chen, Chow-Son
    Chen, Chien-Chih
    Wu, Francis
    Turkoglu, Ersan
    Hsu, Han-Lun
    Hill, Graham
    [J]. GEOLOGY, 2009, 37 (08) : 711 - 714
  • [4] Tectonic insight into a pericratonic subcrustal lithosphere affected by anorogenic Cretaceous magmatism in central Brazil inferred from long-period magnetotellurics
    Bologna, MS
    Padilha, AL
    Vitorello, I
    Fontes, SL
    [J]. EARTH AND PLANETARY SCIENCE LETTERS, 2006, 241 (3-4) : 603 - 616
  • [5] Structural electrical anisotropy in the crust at the South-Central Chilean continental margin as inferred from geomagnetic transfer functions
    Brasse, Heinrich
    Kapinos, Gerhard
    Li, Yuguo
    Muetschard, Lutz
    Soyer, Wolfgang
    Eydam, Diane
    [J]. PHYSICS OF THE EARTH AND PLANETARY INTERIORS, 2009, 173 (1-2) : 7 - 16
  • [6] The magnetotelluric phase tensor
    Caldwell, TG
    Bibby, HM
    Brown, C
    [J]. GEOPHYSICAL JOURNAL INTERNATIONAL, 2004, 158 (02) : 457 - 469
  • [7] ROLE AND EFFECTS OF PORE FLUID PRESSURE IN THRUSTING - THE CASE-HISTORY OF THE UMBRIA-MARCHE APENNINES, CENTRAL ITALY
    CELLO, G
    DEIANA, G
    [J]. TECTONICS, 1995, 14 (04) : 848 - 854
  • [8] ON ELECTRIC AND MAGNETIC GALVANIC DISTORTION TENSOR DECOMPOSITIONS
    CHAVE, AD
    SMITH, JT
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 1994, 99 (B3) : 4669 - 4682
  • [9] Electrically conductive crust in southern Tibet from INDEPTH magnetotelluric surveying
    Chen, LH
    Booker, JR
    Jones, AG
    Wu, N
    Unsworth, MJ
    Wei, WB
    Tan, HD
    [J]. SCIENCE, 1996, 274 (5293) : 1694 - 1696
  • [10] Clark MK, 2000, GEOLOGY, V28, P703, DOI 10.1130/0091-7613(2000)28<703:TOBTEM>2.0.CO