Measuring the phase of ambient noise cross correlations: anisotropic Rayleigh and Love wave tomography across the Oman Mountains

被引:7
作者
Wiesenberg, L. [1 ]
Weidle, C. [1 ]
El-Sharkawy, A. [1 ,2 ,3 ]
Timko, M. [4 ]
Lebedev, S. [5 ]
Meier, T. [1 ]
机构
[1] Univ Kiel, Inst Geosci, D-24118 Kiel, Germany
[2] Natl Res Inst Astron & Geophys NRIAG, Cairo 11421, Egypt
[3] Beni Suef Univ, Fac Earth Sci, Bani Suwayf 62511, Egypt
[4] Kovesligethy Rado Seismol Observ, Inst Earth Phys & Space Sci, H-1112 Budapest, Hungary
[5] Univ Cambridge, Dept Earth Sci, Cambridge CB2 1TN, England
关键词
Interferometry; Seismic anisotropy; Seismic noise; Seismic tomography; Surface waves and free oscillation; Crustal structure; GREENS-FUNCTION; SEISMIC NOISE; SURFACE-WAVES; UPPER-MANTLE; LITHOSPHERIC STRUCTURE; AZIMUTHAL ANISOTROPY; CRUSTAL STRUCTURE; BROAD-BAND; FAULT ZONE; VELOCITY;
D O I
10.1093/gji/ggac232
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
Ambient seismic noise tomography has, over the last two decades, developed into a well-established tool for imaging seismic properties of the Earth's crust. Fundamental mode Rayleigh and Love wave phase velocity dispersion curves can be measured from ambient noise cross-correlation functions (CCF) either using a high-frequency approximation theory, or by fitting the spectrum of the CCF to a Bessel function. Here, we advance the latter approach and present an automated algorithm that fits the phase of the Hankel function to the phase of the causal symmetric part of the CCF in order to determine phase velocity curves as continuous functions of frequency. Synthetic tests verify the reliability of the proposed method in the presence of low signal-to-noise ratio (SNR). Moreover, usage of the phase allows for robust phase velocity measurements at longer periods than when using the zero crossings of the Bessel function only and is, therefore, particularly useful at short inter-station distances. In the frequency domain, acceptable bandwidths of smooth phase velocity curves are obtained in an automated procedure using a set of fine-tuned quality criteria. We apply the method to 2.5 yr of continuous waveform data recorded by 58 temporary and permanent broad-band seismic stations in northern Oman. We obtain 1072 and 670 phase velocity curves for Rayleigh and Love waves, respectively, in the period range of 2-40 s. The data are inverted for isotropic and azimuthally anisotropic period-dependent phase velocity maps. Synthetic reconstruction tests show that the phase velocity maps have a lateral resolution of similar to 30 km. The results suggest distinctly different middle to lower crustal architecture between the northern and eastern Oman Mountains. Azimuthal anisotropy shows contrasting fast propagation orientations in the shallow and deep crust, which we attribute to stress-induced and structural anisotropy in the upper crust and to lattice-preferred orientation in the lower crust.
引用
收藏
页码:1233 / 1251
页数:19
相关论文
共 50 条
  • [31] High resolution Rayleigh wave group velocity tomography in North China from ambient seismic noise
    Fang, Lihua
    Wu, Jianping
    Ding, Zhifeng
    Panza, G. F.
    GEOPHYSICAL JOURNAL INTERNATIONAL, 2010, 181 (02) : 1171 - 1182
  • [32] Near-surface structure of the North Anatolian Fault zone from Rayleigh and Love wave tomography using ambient seismic noise
    Taylor, George
    Rost, Sebastian
    Houseman, Gregory A.
    Hillers, Gregor
    SOLID EARTH, 2019, 10 (02) : 363 - 378
  • [33] Rayleigh wave phase velocity maps of Tibet and the surrounding regions from ambient seismic noise tomography
    Yang, Yingjie
    Zheng, Yong
    Chen, John
    Zhou, Shiyong
    Celyan, Savas
    Sandvol, Eric
    Tilmann, Frederik
    Priestley, Keith
    Hearn, Thomas M.
    Ni, James F.
    Brown, Larry D.
    Ritzwoller, Michael H.
    GEOCHEMISTRY GEOPHYSICS GEOSYSTEMS, 2010, 11
  • [34] Crustal and upper mantle 3-D Vs structure of the Pannonian region from joint earthquake and ambient noise Rayleigh wave tomography
    Timko, M.
    El-Sharkawy, A.
    Wiesenberg, L.
    Fodor, L.
    Weber, Z.
    Lebedev, S.
    Eckel, F.
    Meier, T.
    GEOPHYSICAL JOURNAL INTERNATIONAL, 2024, 239 (02) : 1313 - 1334
  • [35] Rayleigh wave tomography from ambient noise in Central and Eastern Chinese mainland
    Zheng Xian
    Zhao Cui-Ping
    Zhou Lian-Qing
    Zheng Si-Hua
    CHINESE JOURNAL OF GEOPHYSICS-CHINESE EDITION, 2012, 55 (06): : 1919 - 1928
  • [36] Rayleigh wave phase velocity and azimuthal anisotropy of Tien Shan orogenic belt from ambient noise tomography
    Lu ZiQiang
    Zhao LiHong
    Li Bo
    Yang Yu Yong
    CHINESE JOURNAL OF GEOPHYSICS-CHINESE EDITION, 2019, 62 (09): : 3354 - 3364
  • [37] Love wave tomography from ambient seismic noise in North-China
    Fang Li-Hua
    Wu Jian-Ping
    Wang Wei-Lai
    Wang Chang-Zai
    Yang Ting
    CHINESE JOURNAL OF GEOPHYSICS-CHINESE EDITION, 2013, 56 (07): : 2268 - 2279
  • [38] Rayleigh wave group velocity tomography from ambient seismic noise in North China
    Fang Li-Hua
    Wu Jian-Ping
    Lue Zuo-Yong
    CHINESE JOURNAL OF GEOPHYSICS-CHINESE EDITION, 2009, 52 (03): : 663 - 671
  • [39] Seismic structure of Iceland revealed by ambient noise Rayleigh wave tomography
    Zhang, Sen
    Chen, Juqing
    Pan, Lei
    Li, Zhengbo
    Chen, Xiaofei
    TECTONOPHYSICS, 2024, 891
  • [40] Rayleigh wave phase velocity and azimuthal anisotropy of central North China Craton derived from ambient noise tomography
    Huang Xiang
    Ding ZhiFeng
    Ning JieYuan
    Chang LiJun
    CHINESE JOURNAL OF GEOPHYSICS-CHINESE EDITION, 2021, 64 (08): : 2701 - 2715