Double-sided subduction with contrasting polarities beneath the Pamir-Hindu Kush: Evidence from focal mechanism solutions and stress field inversion附视频

被引:0
作者
Yu Yang [1 ,2 ]
Zuoxun Zeng [1 ,2 ]
Scott DKing [3 ]
Xiao Shuang [2 ,4 ]
机构
[1] School of Earth Sciences,China University of Geosciences (Wuhan)
[2] Huazhong Tectonomechanical Research Center,China University of Geosciences (Wuhan)
[3] Department of Geosciences,Virginia Tech
[4] Fuyang Branch of Hangzhou Bureau of Planning and Natural
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P315.7 [地震观测预报];
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摘要
The Pamir-Hindu Kush region at the western end of the Himalayan-Tibet orogen is one of the most active regions on the globe with strong seismicity and deformation and provides a window to evaluate continental collision linked to two intra-continental subduction zones with different polarities. The seismicity and seismic tomography data show a steep northward subducting slab beneath the Hindu Kush and southward subducting slab under the Pamir. Here, we collect seismic catalogue with 3988 earthquake events to compute seismicity images and waveform data from 926 earthquake events to invert focal mechanism solutions and stress field with a view to characterize the subducting slabs under the Pamir-Hindu Kush region. Our results define two distinct seismic zones: a steep one beneath the Hindu Kush and a broad one beneath the Pamir. Deep and intermediate-depth earthquakes are mainly distributed in the Hindu Kush region which is controlled by thrust faulting, whereas the Pamir is dominated by strike-slip stress regime with shallow and intermediate-depth earthquakes. The area where the maximum principal stress axis is vertical in the southern Pamir corresponds to the location of a highconductivity low-velocity region that contributes to the seismogenic processes in this region. We interpret the two distinct seismic zones to represent a double-sided subduction system where the Hindu Kush zone represents the northward subduction of the Indian plate, and the Pamir zone shows southward subduction of the Eurasian plate. A transition fault is inferred in the region between the Hindu Kush and the Pamir which regulates the opposing directions of motion of the Indian and Eurasian plates.
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页码:102 / 117
页数:16
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共 80 条
  • [1] Focal mechanisms of the Lushan earthquake sequence and spatial variation of the stress field[J] LUO Yan;ZHAO Li;ZENG XiangFang;GAO Yuan; Science China(Earth Sciences) 2015, 07
  • [2] 板内地震过程的三层次构造模式
    杨巍然
    曾佐勋
    李德威
    邢集善
    王杰
    罗文行
    [J]. 地学前缘, 2009, 16 (01) : 206 - 217
  • [3] 东喜马拉雅构造结南迦巴瓦岩群中的石榴辉石岩——印度大陆向欧亚板块之下俯冲至80~100km深度的证据
    张泽明
    郑来林
    王金丽
    赵旭东
    石超
    [J]. 地质通报, 2007, (01) : 1 - 12
  • [4] 帕米尔及邻区地壳上地幔P波三维速度结构的研究
    雷建设
    周蕙兰
    赵大鹏
    [J]. 地球物理学报, 2002, (06) : 802 - 811+907
  • [5] Deep Crustal Contact Between the Pamir and Tarim Basin Deduced From Receiver Functions[J] Xu Qiang;Zhao Junmeng;Yuan Xiaohui;Liu Hongbing;Ju Changhui;Schurr Bernd;Bloch Wasja Geophysical Research Letters 2021,
  • [6] The Hindu Kush slab break-off as revealed by deep structure and crustal deformation[J] Kufner Sofia Katerina;Kakar Najibullah;Bezada Maximiliano;Bloch Wasja;Metzger Sabrina;Yuan Xiaohui;Mechie James;Ratschbacher Lothar;Murodkulov Shokhruhk;Deng Zhiguo;Schurr Bernd Nature Communications 2021,
  • [7] The GEM Global Active Faults Database[J] Richard Styron;Marco Pagani Earthquake Spectra 2020,
  • [8] Interaction of the Indian and Asian Plates Under the Pamir and Hindu‐Kush Regions: Insights From 3‐D Shear Wave Velocity and Anisotropic Structures[J] Yanling Liang;Lun Li;Jie Liao;Rui Gao Geochemistry Geophysics Geosystems: G3 2020,
  • [9] Spatial variability of modern tectonic stress fields in the north-eastern margin of Tibetan Plateau[J] Li Liming;Li Xianrui;Li Mingtao;Liang Zhirong;Tian Jingxiong;Zeng Zuoxun;Zeng Xianwei;Yan Guoxiang;Lu Maoxin;Yang Fanyan;Tan Zhen Geological Journal 2020,
  • [10] Present‐Day Crustal Deformation of Continental China Derived From GPS and Its Tectonic Implications[J] Wang Min;Shen ZhengKang Journal of Geophysical Research: Solid Earth 2020,