Surface wave studies for shear wave velocity and bedrock depth estimation over basalts

被引:4
|
作者
Sundararajan, N. [1 ]
Seshunarayana, T. [2 ]
机构
[1] Sultan Qaboos Univ, Dept Earth Sci, Musact, Oman
[2] Natl Geophys Res Inst, Council Sci & Ind Res, Hyderabad 500007, Andhra Pradesh, India
关键词
Shear wave velocity; Earthquake hazard; Bed rock depth; Basalts;
D O I
10.1007/s12517-013-1076-1
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Shear wave velocity (V (S)) estimation is of paramount importance in earthquake hazard assessment and other geotechnical/geo engineering studies. In our study, the shear wave velocity was estimated from ground roll using multichannel analysis of surface wave (MASW) technique making use of dispersive characteristics of Rayleigh type surface waves followed by imaging the shallow subsurface basaltic layers in an earthquake-prone region near Jabalpur, India. The reliability of MASW depends on the accurate determination of phase velocities for horizontally traveling fundamental mode Rayleigh waves. Inversion of data from surface waves resulted in a shear wave velocity (V (S)) in the range of 200-1,200 m/s covering the top soil to weathering and up to bedrock corresponding to a depth of 10-30 m. The P-wave velocity (V (P)) obtained from refraction seismic studies at these locations found to be comparable with V (S) at an assumed specific Poisson's ratio. A pair of selected set of V (S) profiles over basalt which did not result in a hazardous situation in an earthquake of moderate magnitude are presented here as a case study; in other words, the shear wave velocity range of more than 200 m/s indicate that the area is highly unlikely prone to liquefaction during a moderate or strong earthquake. The estimated depth to basalt is found to be 10-12 m in both the cases which is also supported by refraction studies.
引用
收藏
页码:3791 / 3799
页数:9
相关论文
共 50 条
  • [31] Rapid shear wave velocity imaging with seismic landstreamers and surface wave inversion
    O'Neill, Adam
    Safani, Jamhir
    Matsuoka, Toshifumi
    EXPLORATION GEOPHYSICS, 2006, 37 (04) : 292 - 306
  • [32] Near surface shear wave velocity in Bucharest, Romania
    von Steht, M.
    Jaskolla, B.
    Ritter, J. R. R.
    NATURAL HAZARDS AND EARTH SYSTEM SCIENCES, 2008, 8 (06) : 1299 - 1307
  • [33] SHEAR WAVE VELOCITY IN NEAR-SURFACE BASALT
    DIACHOK, O
    JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1979, 65 : S15 - S15
  • [34] SHEAR WAVE VELOCITY DETERMINATION IN SHALLOW SEISMIC STUDIES
    MEIDAV, T
    GEOPHYSICS, 1967, 32 (06) : 1041 - &
  • [35] Shear wave velocity estimation based on rock physics diagnosis
    Tang J.
    Wang H.
    Yao Z.
    Li J.
    Zhao A.
    Shiyou Diqiu Wuli Kantan/Oil Geophysical Prospecting, 2016, 51 (03): : 537 - 543
  • [36] Which is a better proxy, site period or depth to bedrock, in modelling linear site response in addition to the average shear-wave velocity?
    Zhu, Chuanbin
    Pilz, Marco
    Cotton, Fabrice
    BULLETIN OF EARTHQUAKE ENGINEERING, 2020, 18 (03) : 797 - 820
  • [37] Estimation Study on Shear Wave Velocity of Seabed Using GRNN
    Di Shengjie
    Shan Zhigang
    Xu Xueyong
    ADVANCES IN CIVIL AND INDUSTRIAL ENGINEERING IV, 2014, 580-583 : 264 - 267
  • [38] Automatic Shear Wave Velocity Estimation in Bender Element Testing
    Finas, M.
    Ali, H.
    Cascante, G.
    Vanheeghe, P.
    GEOTECHNICAL TESTING JOURNAL, 2016, 39 (04): : 557 - 567
  • [39] SHEAR WAVE SPEED ESTIMATION USING REVERBERANT SHEAR WAVE FIELDS: IMPLEMENTATION AND FEASIBILITY STUDIES
    Ormachea, Juvenal
    Castaneda, Benjamin
    Parker, Kevin J.
    ULTRASOUND IN MEDICINE AND BIOLOGY, 2018, 44 (05): : 963 - 977
  • [40] Time-weighted average shear wave velocity profiles from surface wave tests through a wavelength-depth transformation
    Comina, C.
    Foti, S.
    Passeri, F.
    Socco, L., V
    SOIL DYNAMICS AND EARTHQUAKE ENGINEERING, 2022, 158