Upper mantle anisotropy in the Ordos Block and its margins

被引:0
|
作者
CHANG LiJun*
机构
基金
中国国家自然科学基金;
关键词
Ordos Block; upper mantle anisotropy; SKS wave; fast-wave direction; lithosphere deformation;
D O I
暂无
中图分类号
P542.5 [];
学科分类号
070904 ;
摘要
Based on the polarization analysis of teleseismic data,SKS (SKKS) fast-wave directions and delay times between fast and slow shear waves were determined for each of the 111 seismic stations from both permanent and temporary broadband seismograph networks deployed in the Ordos Block and its margins.Both the Silver and Chan and stacking analysis methods were used.In this way,an image of upper mantle anisotropy in the Ordos Block and its margins was acquired.In the western and northern margins of the Ordos Block,the fast-wave directions are consistently NW-SE.The fast-wave directions are mainly NWW-SEE and EW in the southern margin of the Ordos Block.In the eastern margin of the Ordos Block,the fast-wave directions are generally EW,although some run NEE-SWW or NWW-SEE.In the Ordos Block,the fast-wave directions trend near N-S in the north,but switch to near EW in the south.The delay time between fast and slow waves falls into the interval 0.48-1.50 s,and the average delay time at the stations in the Ordos Block is less than that in its margins.We suggest that the anisotropy of the stable Ordos Block is mainly caused by "fossil" anisotropy frozen in the ancient North China Craton.The NE-trending push of the northeastern margin of the Tibetan Plateau has caused NW-SE-trending lithospheric extension in the western and northern margins of the Ordos Block,and made the upper mantle flow southeastwards.This in turn has resulted in the alignment of the upper mantle peridotite lattice with the direction of material deformation.In the southern margin of the Ordos Block,the collision between the North China and Yangtze blocks resulted in the fast-wave direction running parallel to the collision boundary and the Qinling Orogen.Combining this with the APM and velocity structure of the Qinling Orogen,we propose that eastward-directed asthenospheric-mantle channel flow may have occurred beneath the Qinling Orogen.In the eastern margin of the Ordos Block,the complex anisotropic characteristics of the Fenhe Graben and Taihang Orogen may be caused by the interaction of western Pacific Plate subduction,regional extensional tectonics,and the orogeny.For station YCI,the apparent splitting parameters (the fast-wave directions range from 45° to 106° and the delay times range from 0.6 to 1.5 s) exhibit systematic variations as a function of incoming polarization with a periodicity of π/2.This variation can be best explained by a two-layer anisotropic model (φlower=132°,δtlower=0.8 s,φupper=83°,δtupper=0.5 s).The upper layer anisotropy beneath station YCI can again be attributed to "fossil" anisotropy frozen in the ancient North China Craton.The lower layer anisotropy is affected by the tectonic activity of the western Ordos Block.The NW-SE trending extension caused by the NE trending push of the northeastern margin of the Tibetan Plateau affected the deformation of the lower anisotropic layer beneath station YCI.By comparing the fast-wave directions with GPS velocity directions,we see that the crust and upper mantle possibly have vertically coherent deformation in the margins of the Ordos Block,whereas the internal deformation characteristics of the Ordos Block are complex and require further study.
引用
收藏
页码:888 / 900
页数:13
相关论文
共 50 条
  • [31] Seismic anisotropy of the upper mantle of the Urals
    Kashubin, S
    UPPER MANTLE HETEROGENEITIES FROM ACTIVE AND PASSIVE SEISMOLOGY, 1997, 17 : 317 - 324
  • [32] Unique anisotropy of the Pacific upper mantle
    Nature, 6689 (168-172):
  • [33] Crust and upper mantle electrical structure and tectonic deformation of the northeastern margin of the Tibetan Plateau and the adjacent Ordos Block
    Han Song
    Han Jiang-Tao
    Liu Guo-Xing
    Wang Hai-Yan
    Liang Hong-Da
    CHINESE JOURNAL OF GEOPHYSICS-CHINESE EDITION, 2016, 59 (11): : 4126 - 4138
  • [34] Crust and upper mantle S-wave velocity structure across northeastern Tibetan plateau and ordos block
    Chen, JH
    Liu, QY
    Li, SC
    Guo, B
    Lai, YG
    CHINESE JOURNAL OF GEOPHYSICS-CHINESE EDITION, 2005, 48 (02): : 333 - 342
  • [35] VELOCITY ANISOTROPY IN A MANTLE PERIDOTITE FROM IVREA ZONE - APPLICATION TO UPPER MANTLE ANISOTROPY
    PESELNICK, L
    NICOLAS, A
    STEVENSON, PR
    JOURNAL OF GEOPHYSICAL RESEARCH, 1974, 79 (08): : 1175 - 1182
  • [36] Research on the upper mantle seismic anisotropy beneath Hubei and its geodynamic implication
    Zhang Li-Fen
    Yao Yun-Sheng
    Liao Wu-Lin
    Li Jing-Gang
    Wang Qiu-Liang
    Wang Dun
    CHINESE JOURNAL OF GEOPHYSICS-CHINESE EDITION, 2011, 54 (01): : 35 - 43
  • [37] Anisotropy in crust and upper mantle beneath China continent and its adjacent seas
    Peng Yan-Ju
    Huang Zhong-Xian
    Su Wei
    Zheng Yue-Jun
    CHINESE JOURNAL OF GEOPHYSICS-CHINESE EDITION, 2007, 50 (03): : 752 - 759
  • [38] The crust and upper mantle anisotropy in Baikal Rift Zone and its dynamic significance
    Zhang Jian-Li
    Tian Xiao-Bo
    Zhang Hong-Shuang
    Si Shao-Kun
    Zhang Zhong-Jie
    Teng Ji-Wen
    CHINESE JOURNAL OF GEOPHYSICS-CHINESE EDITION, 2012, 55 (08): : 2523 - 2538
  • [39] Upper mantle anisotropy beneath the north of northeast China and its dynamic significance
    Qiang Zheng-Yang
    Wu Qing-Ju
    CHINESE JOURNAL OF GEOPHYSICS-CHINESE EDITION, 2015, 58 (10): : 3540 - 3552
  • [40] Upper mantle anisotropy in the New Zealand egion
    Klosko, E.R.
    Wu, F.T.
    Anderson, H.J.
    Eberhart-Phillips, D.
    McEvilly, T.V.
    Audoine, E.
    Savage, M.K.
    Gledhill, K.R.
    Geophysical Research Letters, 1999, 26 (10): : 1497 - 1500