Crustal and Upper-Mantle Seismic Reflectors beneath the Three Gorges Reservoir Region

被引:0
|
作者
邹志辉 [1 ,2 ]
周华伟 [1 ,2 ]
廖武林 [3 ]
机构
[1] Tomographic Earth System Imaging Center,China University of Geosciences
[2] Department of Geosciences,Texas Tech University,Lubbock,TX 79409,USA
[3] Hubei Seismological Bureau
基金
中国国家自然科学基金;
关键词
Three Gorges Reservoir; Moho; seismic tomography; crust study; mantle reflector;
D O I
暂无
中图分类号
P631.4 [地震勘探];
学科分类号
0818 ; 081801 ; 081802 ;
摘要
Seismic studies of the crustal structure beneath the Three Gorges Reservoir(TGR) region in Central China have been limited by the sparse and uneven distribution of seismic stations.To in-crease the station coverage,we made three deployments of a mobile seismologic array in the TGR re-gion during the three summers from 2008 to 2010.Here we present interpretations along a west-east profile through the central TGR region based on new seismic waveform data and a velocity model con-strained by regional earthquake data.Two strong mid-crustal reflection interfaces at depths around 10 and 20 km are seen under the TGR.The shallow reflector defines the bottom of the Zigui(秭归) basin.The new waveform data show that the amplitude of the Moho reflection is quite weak,and beneath the Moho,there is a strong reflector around 54-km depth.It is likely that in the TGR region,the Moho is a gradient rather than a sharp boundary.We speculate that the gradient Moho and the 54-km-deep re-flector in the upper mantle in the TGR region may be by-products of the Qinling(秦岭)-Dabie(大别) orogen.
引用
收藏
页码:205 / 213
页数:9
相关论文
共 50 条
  • [41] VARIATIONS IN CRUSTAL AND UPPER-MANTLE STRUCTURE IN RHENISH MASSIF AND ADJACENT AREAS
    MOONEY, WD
    PRODEHL, C
    TRANSACTIONS-AMERICAN GEOPHYSICAL UNION, 1978, 59 (12): : 1025 - 1025
  • [42] Full seismic waveform tomography for upper-mantle structure in the Australasian region using adjoint methods
    Fichtner, Andreas
    Kennett, Brian L. N.
    Igel, Heiner
    Bunge, Hans-Peter
    GEOPHYSICAL JOURNAL INTERNATIONAL, 2009, 179 (03) : 1703 - 1725
  • [43] Upper-mantle structures beneath USArray derived from waveform complexity
    Sun, Daoyuan
    Helmberger, Don
    GEOPHYSICAL JOURNAL INTERNATIONAL, 2011, 184 (01) : 416 - 438
  • [44] Contributions from lithospheric and upper-mantle heterogeneities to upper crustal seismicity in the Korean Peninsula
    Lee, Sungho
    Saxena, Arushi
    Song, Jung-Hun
    Rhie, Junkee
    Choi, Eunseo
    GEOPHYSICAL JOURNAL INTERNATIONAL, 2022, 229 (02) : 1175 - 1192
  • [45] Three-dimensional crustal and upper-mantle resistivity structure of Alberta, Canada: implications for Precambrian tectonics
    Wang, Enci
    Unsworth, Martyn
    GEOPHYSICAL JOURNAL INTERNATIONAL, 2022, 230 (03) : 1679 - 1698
  • [46] UPPER-MANTLE ELECTRICAL-CONDUCTIVITY IN THE HIMALAYAN REGION
    ARORA, BR
    CAMPBELL, WH
    SCHIFFMACHER, ER
    JOURNAL OF GEOMAGNETISM AND GEOELECTRICITY, 1995, 47 (07): : 653 - 665
  • [47] UPPER-MANTLE SEISMIC DISCONTINUITIES AND THE THERMAL STRUCTURE OF SUBDUCTION ZONES
    VIDALE, JE
    BENZ, HM
    NATURE, 1992, 356 (6371) : 678 - 683
  • [48] EFFECTS OF WATER ON SEISMIC-WAVE VELOCITIES IN THE UPPER-MANTLE
    KARATO, S
    PROCEEDINGS OF THE JAPAN ACADEMY SERIES B-PHYSICAL AND BIOLOGICAL SCIENCES, 1995, 71 (02): : 61 - 66
  • [49] Redox-influenced seismic properties of upper-mantle olivine
    C. J. Cline II
    U. H. Faul
    E. C. David
    A. J. Berry
    I. Jackson
    Nature, 2018, 555 : 355 - 358
  • [50] Crustal and upper mantle structure beneath Antarctica and surrounding oceans
    Ritzwoller, MH
    Shapiro, NM
    Levshin, AL
    Leahy, GM
    JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 2001, 106 (B12) : 30645 - 30670