The 2010 Mw 7.8 Mentawai earthquake: Very shallow source of a rare tsunami earthquake determined from tsunami field survey and near-field GPS data

被引:151
|
作者
Hill, Emma M. [1 ]
Borrero, Jose C. [2 ,3 ]
Huang, Zhenhua [1 ,4 ]
Qiu, Qiang [1 ]
Banerjee, Paramesh [1 ]
Natawidjaja, Danny H. [5 ]
Elosegui, Pedro [6 ,7 ]
Fritz, Hermann M. [8 ]
Suwargadi, Bambang W. [5 ]
Pranantyo, Ignatius Ryan [9 ]
Li, LinLin [1 ]
Macpherson, Kenneth A. [1 ]
Skanavis, Vassilis [10 ]
Synolakis, Costas E. [3 ,11 ]
Sieh, Kerry [1 ]
机构
[1] Nanyang Technol Univ, Earth Observ Singapore, Singapore 639798, Singapore
[2] ASR Ltd, Marine Consulting & Res, Raglan, New Zealand
[3] Univ So Calif, Los Angeles, CA USA
[4] Nanyang Technol Univ, Sch Civil & Environm Engn, Singapore, Singapore
[5] LIPI Geoteknol, Bandung, Jawa, Indonesia
[6] CSIC, Inst Space Sci, Barcelona, Spain
[7] CSIC, Marine Technol Unit, Barcelona, Spain
[8] Georgia Inst Technol, Savannah, GA USA
[9] Inst Teknol Bandung, Bandung, Indonesia
[10] Tech Univ Crete, Khania, Greece
[11] Hellen Ctr Marine Res, Anavyssos, Greece
基金
新加坡国家研究基金会;
关键词
NIAS-SIMEULUE EARTHQUAKE; SUMATRA EARTHQUAKE; SUBDUCTION ZONES; DEFORMATION; FAULT; SLIP; MEGATHRUST; GENERATION; SEPTEMBER; AFTERSLIP;
D O I
10.1029/2012JB009159
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
The M-w 7.8 October 2010 Mentawai, Indonesia, earthquake was a "tsunami earthquake," a rare type of earthquake that generates a tsunami much larger than expected based on the seismic magnitude. It produced a locally devastating tsunami, with runup commonly in excess of 6 m. We examine this event using a combination of high-rate GPS data, from instruments located on the nearby islands, and a tsunami field survey. The GPS displacement time series are deficient in high-frequency energy, and show small coseismic displacements (<22 cm horizontal and <4 cm subsidence). The field survey shows that maximum tsunami runup was >16 m. Our modeling results show that the combination of the small GPS displacements and large tsunami can only be explained by high fault slip at very shallow depths, far from the islands and close to the oceanic trench. Inelastic uplift of trench sediments likely contributed to the size of the tsunami. Recent results for the 2011 M-w 9.0 Tohoko-Oki earthquake have also shown shallow fault slip, but the results from our study, which involves a smaller earthquake, provide much stronger constraints on how shallow the rupture can be, with the majority of slip for the Mentawai earthquake occurring at depths of <6 km. This result challenges the conventional wisdom that the shallow tips of subduction megathrusts are aseismic, and therefore raises important questions both about the mechanical properties of the shallow fault zone and the potential seismic and tsunami hazard of this shallow region.
引用
收藏
页数:21
相关论文
共 50 条
  • [21] The September 16,2015 Mw 8.3 Illapel,Chile Earthquake:characteristics of tsunami wave from near-field to far-field
    REN Zhiyuan
    YUAN Ye
    WANG Peitao
    FAN Tingting
    WANG Juncheng
    HOU Jingming
    [J]. Acta Oceanologica Sinica, 2017, 36 (05) : 73 - 82
  • [22] Results of Post-Field Survey on the Mw 8.3 Illapel Earthquake Tsunami in 2015
    Tomita, Takashi
    Arikawa, Taro
    Takagawa, Tomohiro
    Honda, Kazuhiko
    Chida, Yu
    Sase, Koichi
    Oberreuter Olivares, Raul Alejandro
    [J]. COASTAL ENGINEERING JOURNAL, 2016, 58 (02)
  • [23] Tsunami Alert Efficiency in the Eastern Mediterranean Sea: The 2 May 2020 Earthquake (Mw6.6) and Near-Field Tsunami South of Crete (Greece)
    Papadopoulos, Gerassimos A.
    Lekkas, Efthymios
    Katsetsiadou, Katerina-Navsika
    Rovythakis, Emmanouil
    Yahav, Amir
    [J]. GEOHAZARDS, 2020, 1 (01): : 44 - 60
  • [24] Review on Near-Field Tsunami Forecasting from Offshore Tsunami Data and Onshore GNSS Data for Tsunami Early Warning
    Tsushima, Hiroaki
    Ohta, Yusaku
    [J]. JOURNAL OF DISASTER RESEARCH, 2014, 9 (03) : 339 - 357
  • [25] Source estimate and tsunami forecast from far-field deep-ocean tsunami waveforms-The 27 February 2010 Mw 8.8 Maule earthquake
    Yoshimoto, Masahiro
    Watada, Shingo
    Fujii, Yushiro
    Satake, Kenji
    [J]. GEOPHYSICAL RESEARCH LETTERS, 2016, 43 (02) : 659 - 665
  • [26] Rupture process of the 18 April 1906 California earthquake from near-field tsunami waveform inversion
    Lorito, Stefano
    Piatanesi, Alessio
    Lomax, Anthony
    [J]. BULLETIN OF THE SEISMOLOGICAL SOCIETY OF AMERICA, 2008, 98 (02) : 832 - 845
  • [27] Toward a Unified Near-Field Intensity Map of the 2015 Mw 7.8 Gorkha, Nepal, Earthquake
    Adhikari, Sujan Raj
    Baysal, Gopi
    Dixit, Amod
    Martin, Stacey S.
    Landes, Mattieu
    Bossu, Remy
    Hough, Susan E.
    [J]. EARTHQUAKE SPECTRA, 2017, 33 : S21 - S34
  • [28] Estimation of the 2010 Mentawai tsunami earthquake rupture process from joint inversion of teleseismic and strong ground motion data
    Zhang Lifen
    Liao Wulin
    Li Jinggang
    Wang Qiuliang
    [J]. Geodesy and Geodynamics, 2015, 6 (03) : 180 - 186
  • [29] Estimation of the 2010 Mentawai tsunami earthquake rupture process from joint inversion of teleseismic and strong ground motion data
    Zhang Lifen
    Liao Wulin
    Li Jinggang
    Wang Qiuliang
    [J]. GEODESY AND GEODYNAMICS, 2015, 6 (03) : 180 - 186
  • [30] Slip Distribution of the 1952 Kamchatka Great Earthquake Based on Near-Field Tsunami Deposits and Historical Records
    MacInnes, Breanyn T.
    Weiss, Robert
    Bourgeois, Joanne
    Pinegina, Tatiana K.
    [J]. BULLETIN OF THE SEISMOLOGICAL SOCIETY OF AMERICA, 2010, 100 (04) : 1695 - 1709