SHEAR-WAVE VELOCITY AND ATTENUATION STRUCTURE BENEATH ANTARCTICA DETERMINED FROM SURFACE-WAVES

被引:1
|
作者
SINGH, DD
机构
[1] National Geophysical Research Institute, Hyderabad, 500 007, Uppal Road
关键词
ANTARCTICA; DISPERSION; Q STRUCTURE;
D O I
10.1111/j.1365-246X.1994.tb03982.x
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
Fundamental and higher mode surface waves generated by nine earthquakes, which occurred in Antarctica and its nearby regions and were recorded at Scott Base (SBA), South Pole (SPA), Novolazarevskaya (NVL) and Mirnyy (MIR) seismic stations are used to determine the shear-wave velocity and attenuation structure beneath these regions. The Frequency-Time Analysis method is used to determine group velocities for periods ranging from 6 to 80 seconds for fundamental and higher mode Rayleigh and Love waves. Crustal thickness is found to be 41 km beneath the eastern part and 30 km beneath the western part of Antarctica. Rayleigh and Love wave group velocities show lower values in the eastern part as compared to the western part of Antarctica. A shear-wave velocity of 3.52 to 3.7 km s(-1) is estimated in the lower part of the crust (15-41 km from the surface) beneath eastern Antarctica. Similarly a shear-wave velocity of 3.48-3.6 km s(-1) is estimated in the lower part of the crust (15-30 km from the surface) beneath western Antarctica. Rayleigh and Love wave group velocities are found to be lower for eastern Antarctica compared to Australia, Canada, India and other shield models of the world. Love and Rayleigh wave attenuation coefficients are estimated at periods of 10-110 s using the spectral amplitude of these waves across the eastern and western parts of Antarctica. Backus & Gilbert inversion theory is applied to the surface-wave attenuation data to obtain average Q(beta)(-1) models for the crust and upper mantle beneath Antarctica. Inversion of Love and Rayleigh wave attenuation data shows a high-attenuation zone (Q = 125-200) at a depth of 10 to 40 km beneath eastern Antarctica. Similarly, a high-attenuation zone (Q = 65) occurs at a depth of 20 to 90 km beneath western Antarctica. The Q(beta)(-1) models show a lithospheric thickness of 80-100 km beneath western Antarctica. The base of the lithosphere is identified as the depth at which there is a significant change in the Q(beta)(-1) value. The Q(beta)(-1) models for Antarctica show that there is a decrease in Q(beta)(-1) value by an average of three factors in the asthenosphere as compared to lithosphere. In general, Q(beta)(-1) in the asthenosphere show a higher value (an average of 2-3 times) compared to the lithosphere. This implies that the asthenosphere beneath Antarctica is cooler compared to other shield structures of the world.
引用
收藏
页码:515 / 528
页数:14
相关论文
共 50 条
  • [41] Upper crustal shear-wave velocity structure Beneath Western Java, Indonesia from seismic ambient noise tomography
    Shindy Rosalia
    Sri Widiyantoro
    Phil R. Cummins
    Tedi Yudistira
    Andri Dian Nugraha
    Zulfakriza Zulfakriza
    Ahmad Setiawan
    [J]. Geoscience Letters, 9
  • [42] Shear-wave velocity structure beneath Alaska from a Bayesian joint inversion of Sp receiver functions and Rayleigh wave phase velocities
    Gama, Isabella
    Fischer, Karen M.
    Eilon, Zachary
    Krueger, Hannah E.
    Dalton, Colleen A.
    Flesch, Lucy M.
    [J]. EARTH AND PLANETARY SCIENCE LETTERS, 2021, 560
  • [43] SHEAR-WAVE VELOCITY STRUCTURE FOR A SPHERICALLY AVERAGED EARTH
    UHRHAMMER, R
    [J]. GEOPHYSICAL JOURNAL OF THE ROYAL ASTRONOMICAL SOCIETY, 1979, 58 (03): : 749 - 767
  • [44] Crustal shear-wave velocity structure beneath the western Tibetan plateau revealed by receiver function inversions
    Wu Zhen-Bo
    Xu Tao
    Wu Cheng-Long
    Zhang Ming -Hui
    Tian Xiao-Bo
    Teng Ji-Wen
    [J]. CHINESE JOURNAL OF GEOPHYSICS-CHINESE EDITION, 2016, 59 (02): : 516 - 527
  • [45] Shear-wave velocity structure of Jeju Island, Korea
    Ki Young Kim
    Myung Ho Hong
    [J]. Geosciences Journal, 2012, 16 : 35 - 45
  • [46] Crustal and uppermost mantle shear wave velocity structure beneath the Middle East from surface wave tomography
    Kaviani, Ayoub
    Paul, Anne
    Moradi, Ali
    Mai, Paul Martin
    Pilia, Simone
    Boschi, Lapo
    Ruempker, Georg
    Lu, Yang
    Tang, Zheng
    Sandvol, Eric
    [J]. GEOPHYSICAL JOURNAL INTERNATIONAL, 2020, 221 (02) : 1349 - 1365
  • [47] Crustal shear-wave velocity structure and its geodynamic implications beneath the Emeishan large igneous province
    Guo Xi
    Chen Yun
    Li Shi-Dong
    Deng Yang-Fan
    Xu Tao
    Li Wei
    Tan Ping
    [J]. CHINESE JOURNAL OF GEOPHYSICS-CHINESE EDITION, 2017, 60 (09): : 3338 - 3351
  • [48] Shear-wave velocity structure of Jeju Island, Korea
    Kim, Ki Young
    Hong, Myung Ho
    [J]. GEOSCIENCES JOURNAL, 2012, 16 (01) : 35 - 45
  • [49] SHEAR-WAVE VELOCITY STRUCTURE NEAR OROVILLE, CALIFORNIA
    SEEKINS, LC
    HILL, DP
    HANKS, TC
    [J]. BULLETIN OF THE SEISMOLOGICAL SOCIETY OF AMERICA, 1978, 68 (03) : 691 - 697
  • [50] MANTLE P-WAVE VELOCITY STRUCTURE BENEATH ANTARCTICA
    MCMECHAN, GA
    [J]. BULLETIN OF THE SEISMOLOGICAL SOCIETY OF AMERICA, 1981, 71 (04) : 1061 - 1074