Seismic monitoring in the Gugla rock glacier (Switzerland): ambient noise correlation, microseismicity and modelling

被引:18
|
作者
Guillemot, Antoine [1 ]
Helmstetter, Agnes [1 ]
Larose, Eric [1 ]
Baillet, Laurent [1 ]
Garambois, Stephane [1 ]
Mayoraz, Raphael [2 ]
Delaloye, Reynald [3 ]
机构
[1] Univ Grenoble Alpes, Univ Savoie Mt Blanc, CNRS, IRD,IFSTTAR,ISTerre, F-38000 Grenoble, France
[2] Geol Dept, CH-1951 Sion, Switzerland
[3] Univ Fribourg, Dept Geosci Geograph, CH-1700 Fribourg, Switzerland
关键词
Coda waves; Seismic interferometry; Seismic noise; Glaciology; SEDIMENT TRANSFER; VELOCITY CHANGES; LANDSLIDE; FRICTION; CREEP; FRONT;
D O I
10.1093/gji/ggaa097
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
A network of seismometers has been installed on the Gugla rock glacier since October 2015 to estimate seismic velocity changes and detect microseismicity. These two processes are related to mechanical and structural variations occurring within the rock glacier. Seismic monitoring thus allows a better understanding of the dynamics of rock glaciers throughout the year. We observed seasonal variations in seismic wave velocity and microseismic activity over the 3 yr of the study. In the first part of our analysis, we used ambient noise correlations to compute daily changes of surface wave velocity. In winter, seismic wave velocities were higher, probably due to refreezing of the permafrost active layer and cooling of the uppermost permafrost layers, leading to increased overall rigidity of the medium. This assumption was verified using a seismic model of wave propagation that estimates the depth of P - and S-wave velocity changes from 0 down to 10 m. During melting periods, both a sudden velocity decrease and a decorrelation of the seismic responses were observed. These effects can probably be explained by the increased water content of the active layer. In the second part of our study, we focused on detecting microseismic signals generated in and around the rock glacier. This seismic activity (microquakes and rockfalls) also exhibits seasonal variations, with a maximum in spring and summer, which correlates principally with an exacerbated post-winter erosional phase of the front and a faster rock glacier displacement rate. In addition, we observed short bursts of microseismicity, both during snowfall and during rapid melting periods, probably due to pore pressure increase.
引用
收藏
页码:1719 / 1735
页数:17
相关论文
共 43 条
  • [21] Monitoring transient changes within overpressured regions of subduction zones using ambient seismic noise
    Chaves, Esteban J.
    Schwartz, Susan Y.
    SCIENCE ADVANCES, 2016, 2 (01):
  • [22] 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)
  • [23] Ambient noise and ERT data provide insights into the structure of co-seismic rock avalanche deposits in Sichuan (China)
    Del Gaudio, V
    Wasowski, J.
    Hu, W.
    Capone, P.
    Venisti, N.
    Li, Y.
    BULLETIN OF ENGINEERING GEOLOGY AND THE ENVIRONMENT, 2021, 80 (09) : 7153 - 7170
  • [24] Seismic velocity changes caused by the Earth tide: Ambient noise correlation analyses of small-array data
    Takano, Tomoya
    Nishimura, Takeshi
    Nakahara, Hisashi
    Ohta, Yusaku
    Tanaka, Sachiko
    GEOPHYSICAL RESEARCH LETTERS, 2014, 41 (17) : 6131 - 6136
  • [25] Assessing the vibrational frequencies of the Holweide Hospital in the city of Cologne (Germany) by means of ambient seismic noise analysis and FE modelling
    Parolai, S
    Fäcke, A
    Richwalski, SM
    Stempniewski, L
    NATURAL HAZARDS, 2005, 34 (02) : 217 - 230
  • [26] Assessing the Vibrational Frequencies of the Holweide Hospital in the City of Cologne (Germany) by Means of Ambient Seismic Noise Analysis and FE modelling
    Stefano Parolai
    Andreas Fäcke
    Sandra M. Richwalski
    Lothar Stempniwski
    Natural Hazards, 2005, 34 : 217 - 230
  • [27] Modelling P waves in seismic noise correlations: advancing fault monitoring using train traffic sources
    Sager, Korbinian
    Tsai, Victor C.
    Sheng, Yixiao
    Brenguier, Florent
    Boue, Pierre
    Mordret, Aurelien
    Igel, Heiner
    GEOPHYSICAL JOURNAL INTERNATIONAL, 2022, 228 (03) : 1556 - 1567
  • [28] Passive seismic ambient noise correlation: an example from the Ketzin experimental CO2 storage site, Germany
    Zhang, Fengjiao
    Juhlin, Christopher
    Sopher, Daniel
    EUROPEAN GEOSCIENCES UNION GENERAL ASSEMBLY 2014, EGU DIVISION ENERGY, RESOURCES & THE ENVIRONMENT (ERE), 2014, 59 : 90 - 96
  • [29] Applicability of long-range seismic noise correlation for CO2 geological storage monitoring
    Delatre, Mickael
    Manceau, Jean-Charles
    GHGT-11, 2013, 37 : 4049 - 4056
  • [30] A Passive Estimation Method of Scattering and Intrinsic Absorption Parameters From Envelopes of Seismic Ambient Noise Cross-Correlation Functions
    Hirose, Takashi
    Nakahara, Hisashi
    Nishimura, Takeshi
    GEOPHYSICAL RESEARCH LETTERS, 2019, 46 (07) : 3634 - 3642