Geophysical evidence for thrusting of crustal materials from orogenic belts over both sides of the Yangtze Block and its geological significance

Geophysical evidence for thrusting of crustal materials from orogenic belts over both sides of the Yangtze Block and its geological significance

论文摘要

Based on deep geophysical detections, we have reconstructed the crustal structure from the eastern margin of the Tibetan Plateau to the Jiangnan-Xuefeng orogenic belt. The results suggest that the Yangtze Block was overthrusted by crustal materials in its NW direction from the eastern Tibetan Plateau but in its SE direction from the Jiangnan orogen. These overthrusting effects control the crustal structure from the western Sichuan to the western area of the Jiangnan orogen-Xuefeng orogenic belt. The eastward extruded materials from the eastern Tibetan Plateau were blocked by the rigid basement in the Sichuan Basin, where upper-middle crust was overthrusted whereas the lower crust was underthrusted beneath the Sichuan Basin. The underthrusted unit was absorbed by crustal folding, shortening and thickening in the Yangtze Block, forming the Xiongpo and Longquan Mountains tectonic belts and resulting in the NW-directed thrusting of the Pujiang-Chengdu-Deyang fault, and the western hillsiden fault in the Longquan Mountain. These results provide resolution to the controversy where the eastward extrusion material from the Qinghai-Tibet Plateau had gone. Overall, that Yangtze Block was subjected to thrusting of the crustal materials from the orogenic belts over its both sides. This finding has implications for the study of the intracontinental orogenic mechanism in South China, the reconstruction of tectonic evolutionary history and the kinematics processes during the lateral extrusion of the Tibet Plateau.

论文目录

  • 1. Introduction
  • 2. Geophysical work
  •   2.1 Magnetotelluric (MT)
  •   2.2 Deep seismic reflection
  •   2.3 Deep seismic sounding
  •   2.4 Tomography
  • 3. Discussion
  •   3.1 Blocking mechanism
  •   3.2 Driving power of the thrusts
  •   3.3 The processes and timing of the YB subduction
  • 4. Conclusions
  • 文章来源

    类型: 期刊论文

    作者: Yingkang LI,Jianwei GAO,Jian HAN,Yu'e YANG

    来源: Science China(Earth Sciences) 2019年05期

    年度: 2019

    分类: 基础科学

    专业: 地质学

    单位: Geological Cores and Samples Center of Land and Resources,CGS,Institute of Geomechanics, Chinese Academy of Geological Sciences,Sinopec Geophysical Company Limited,North China Branch

    基金: supported by the National Natural Science Foundation of China(Grant Nos.41574093,41774114),SinoProbe-02(Grant No.A1011B)

    分类号: P542.2

    页码: 812-831

    总页数: 20

    文件大小: 10045K

    下载量: 29

    相关论文文献

    • [1].Cognitions and questions regarding crustal deformation and location forecasts of strong earthquakes[J]. Geodesy and Geodynamics 2015(03)
    • [2].Study of crustal thickness and poisson's ratio of the south of Erenhot area by teleseismic receiver function[J]. Earthquake Science 2018(04)
    • [3].Crustal P-wave velocity structure in the northeastern margin of the Qinghai-Tibetan Plateau and insights into crustal deformation[J]. Science China(Earth Sciences) 2018(09)
    • [4].Influence of crustal layering and thickness on co-seismic effects of Wenchuan earthquake[J]. Geodesy and Geodynamics 2011(01)
    • [5].Effects of Martian crustal magnetic field on its ionosphere[J]. Science China(Technological Sciences) 2010(06)
    • [6].Characteristics of regional crustal deformation before 2016 Menyuan Ms6.4 earthquake[J]. Geodesy and Geodynamics 2016(04)
    • [7].Far-field crustal movements before and after the 2011 Ms9.0 Japan earthquake from GPS observations[J]. Geodesy and Geodynamics 2011(03)
    • [8].A seismic model for crustal structure in North China Craton[J]. Earth and Planetary Physics 2017(01)
    • [9].Three-dimensional crustal deformation before and after the Wenchuan earthquake in Guanzhong and adjacent regions[J]. Geodesy and Geodynamics 2015(01)
    • [10].Constraints on the crustal structure beneath the Sinai subplate,SE Mediterranean,from analysis of local and regional travel times[J]. Geoscience Frontiers 2013(02)
    • [11].Quality analysis of crustal tilt and strain observations in China's earthquakes in 2014[J]. Geodesy and Geodynamics 2015(06)
    • [12].The crustal structures of the central Longmenshan along and its margins as related to the seismotectonics of the 2008 Wenchuan Earthquake[J]. Science China(Earth Sciences) 2014(04)
    • [13].Anomalous crustal movements before great Wenchuan earthquake observed by GPS[J]. Geodesy and Geodynamics 2011(02)
    • [14].Mapping three-dimensional co-seismic surface deformations associated with the 2015 M_W7.2 Murghab earthquake based on InSAR and characteristics of crustal strain[J]. Science China(Earth Sciences) 2018(10)
    • [15].Crustal Structure of Yunnan Province of China from Teleseismic Receiver Functions:Implications for Regional Crust Evolution[J]. Journal of Earth Science 2018(06)
    • [16].Preface to the Special Issue on Advances in Seismic Exploration and Monitoring with Active Sources in China[J]. Earthquake Research in China 2016(03)
    • [17].S-wave crustal and upper mantle's velocity structure in the eastern Tibetan Plateau——Deep environment of lower crustal flow[J]. Science in China(Series D:Earth Sciences) 2008(02)
    • [18].Gravity changes and crustal deformations before the Menyuan,Qinghai Ms6.4 earthquake of 2016[J]. Geodesy and Geodynamics 2019(04)
    • [19].High-resolution 3D crustal S-wave velocity structure of the MiddleLower Yangtze River Metallogenic Belt and implications for its deep geodynamic setting[J]. Science China(Earth Sciences) 2019(09)
    • [20].Regional crustal deformation characteristic before 2016 Yuncheng M4.4 earthquake swarm based on CMONOC continuous GPS data[J]. Geodesy and Geodynamics 2016(06)
    • [21].The effect of large reservoirs impoundment to the spatial and temporal variations of regional crustal deformation in Hubei Province, China[J]. Geodesy and Geodynamics 2016(05)
    • [22].Three-dimensional crustal movement and the activities of earthquakes,volcanoes and faults in Hainan Island,China[J]. Geodesy and Geodynamics 2016(04)
    • [23].Upper crustal structure under Jingtai–Hezuo profile in Northeastern Tibet from topography-dependent eikonal traveltime tomography[J]. Earthquake Science 2014(02)
    • [24].Faulting, magmatism and crustal oceanization of the Okinawa Trough[J]. Acta Oceanologica Sinica 2009(03)
    • [25].Characteristics of PmP phases from earthquakes and their role in crustal tomography:An active volcanic area example,northeastern Japan[J]. Science China(Earth Sciences) 2011(05)
    • [26].Study on crustal deformation of the Ms6.6 Damxungearthquake in 2008 by InSAR measurements[J]. Geodesy and Geodynamics 2010(01)
    • [27].Multi-stage crustal growth and cratonization of the North China Craton[J]. Geoscience Frontiers 2014(04)
    • [28].Eocene high grade metamorphism and crustal anatexis in the North Himalaya Gneiss Domes,Southern Tibet[J]. Chinese Science Bulletin 2012(06)
    • [29].Effect of Kunlun Ms 8.1 earthquake on crustal deformation in northeastern edge region of Qinghal-Tibet plateau[J]. Geodesy and Geodynamics 2010(01)
    • [30].Seismological evidence for the convergence of crustal stress orientation before large earthquakes[J]. Earthquake Science 2009(06)
    Geophysical evidence for thrusting of crustal materials from orogenic belts over both sides of the Yangtze Block and its geological significance
    下载Doc文档

    猜你喜欢