Monitoring of velocity changes based on seismic ambient noise: A brief review and perspective

被引:18
|
作者
Wang, Qing-Yu [1 ]
Yao, HuaJian [2 ,3 ,4 ]
机构
[1] Univ Grenoble Alpes, ISTerre, CNRS, Grenoble, France
[2] Univ Sci & Technol China, Sch Earth & Space Sci, Lab Seismol & Phys Earths Interior, Hefei 230026, Peoples R China
[3] Chinese Acad Sci, Univ Sci & Technol China, Ctr Excellence Comparat Planetol, Hefei 230026, Peoples R China
[4] Univ Sci & Technol China, Mengcheng Natl Geophys Observ, Mengcheng 233500, Anhui, Peoples R China
基金
欧洲研究理事会;
关键词
ambient noise correlation; noise-based monitoring; seismic wave velocity changes; the evolution of physical properties of the crust; CODA-WAVE INTERFEROMETRY; 7.9 WENCHUAN EARTHQUAKE; SENSITIVITY KERNELS; TEMPORAL VARIATIONS; SEASONAL-VARIATIONS; MECHANICAL CHANGES; TRAVEL-TIME; FAULT ZONE; PARKFIELD; BEHAVIOR;
D O I
10.26464/epp2020048
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Over the past two decades, the development of the ambient noise cross-correlation technology has spawned the exploration of underground structures. In addition, ambient noise-based monitoring has emerged because of the feasibility of reconstructing the continuous Green's functions. Investigating the physical properties of a subsurface medium by tracking changes in seismic wave velocity that do not depend on the occurrence of earthquakes or the continuity of artificial sources dramatically increases the possibility of researching the evolution of crustal deformation. In this article, we outline some state-of-the-art techniques for noise-based monitoring, including moving-window cross-spectral analysis, the stretching method, dynamic time wrapping, wavelet cross-spectrum analysis, and a combination of these measurement methods, with either a Bayesian least-squares inversion or the Bayesian Markov chain Monte Carlo method. We briefly state the principles underlying the different methods and their pros and cons. By elaborating on some typical noise-based monitoring applications, we show how this technique can be widely applied in different scenarios and adapted to multiples scales. We list classical applications, such as following earthquake-related co- and postseismic velocity changes, forecasting volcanic eruptions, and tracking external environmental forcing-generated transient changes. By monitoring cases having different targets at different scales, we point out the applicability of this technology for disaster prediction and early warning of small-scale reservoirs, landslides, and so forth. Finally, we conclude with some possible developments of noise-based monitoring at present and summarize some prospective research directions. To improve the temporal and spatial resolution of passive-source noise monitoring, we propose integrating different methods and seismic sources. Further interdisciplinary collaboration is indispensable for comprehensively interpreting the observed changes.
引用
收藏
页码:532 / 542
页数:11
相关论文
共 50 条
  • [21] Monitoring Velocity Changes Caused By Underground Coal Mining Using Seismic Noise
    Czarny, Rafal
    Marcak, Henryk
    Nakata, Nori
    Pilecki, Zenon
    Isakow, Zbigniew
    PURE AND APPLIED GEOPHYSICS, 2016, 173 (06) : 1907 - 1916
  • [22] Temporal changes in seismic velocity detected by ambient noise records observed by seafloor seismic network in the Nankai Trough, Japan
    Kimura, Toshinori
    Araki, Eiichiro
    Machida, Yuya
    Kawaguchi, Katsuyoshi
    2018 OCEANS - MTS/IEEE KOBE TECHNO-OCEANS (OTO), 2018,
  • [23] Temporal Changes of Seismic Velocity Caused by Volcanic Activity at Mt. Etna Revealed by the Autocorrelation of Ambient Seismic Noise
    de Plaen, Raphael S. M.
    Cannata, Andrea
    Cannavo, Flavio
    Caudron, Corentin
    Lecocq, Thomas
    Francis, Olivier
    FRONTIERS IN EARTH SCIENCE, 2019, 6
  • [24] Monitoring of environmental influences on seismic velocity at the geological storage site for CO2 in Ketzin (Germany) with ambient seismic noise
    Gassenmeier, M.
    Sens-Schoenfelder, C.
    Delatre, M.
    Korn, M.
    GEOPHYSICAL JOURNAL INTERNATIONAL, 2015, 200 (01) : 524 - 533
  • [25] Monitoring transient changes within overpressured regions of subduction zones using ambient seismic noise
    Chaves, Esteban J.
    Schwartz, Susan Y.
    SCIENCE ADVANCES, 2016, 2 (01):
  • [26] Monitoring Terrestrial Water Storage, Drought and Seasonal Changes in Central Oklahoma With Ambient Seismic Noise
    Zhang, Shuo
    Luo, Bingxu
    Ben-Zion, Yehuda
    Lumley, David E.
    Zhu, Hejun
    GEOPHYSICAL RESEARCH LETTERS, 2023, 50 (17)
  • [27] Ambient Noise Monitoring of Seismic Velocity Around the Longmenshan Fault Zone From 10 Years of Continuous Observation
    Liu, Zhikun
    Huang, Jinli
    He, Ping
    Qi, Juanjuan
    JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 2018, 123 (10) : 8979 - 8994
  • [28] Monitoring seismic velocity change caused by the 2011 Tohoku-oki earthquake using ambient noise records
    Minato, Shohei
    Tsuji, Takeshi
    Ohmi, Shiro
    Matsuoka, Toshifumi
    GEOPHYSICAL RESEARCH LETTERS, 2012, 39
  • [29] Monitoring the tidal response of a sea levee with ambient seismic noise
    Planes, Thomas
    Rittgers, Justin B.
    Mooney, Michael A.
    Kanning, Wim
    Draganov, Deyan
    JOURNAL OF APPLIED GEOPHYSICS, 2017, 138 : 255 - 263
  • [30] Robust seismic velocity change estimation using ambient noise recordings
    Daskalakis, E.
    Evangelidis, C. P.
    Garnier, J.
    Melis, N. S.
    Papanicolaou, G.
    Tsogka, C.
    GEOPHYSICAL JOURNAL INTERNATIONAL, 2016, 205 (03) : 1926 - 1936