Geotechnical Aspects of the 20115 Mw 8.3 Illapel Megathrust Earthquake Sequence in Chile

被引:14
|
作者
Candia, Gabriel [1 ,6 ]
de Pascale, Gregory P. [2 ,3 ,8 ]
Montalva, Gonzalo [4 ,7 ]
Ledezma, Christian [5 ,6 ]
机构
[1] Univ Desarrollo, Fac Ingn Civil, Ave Plaza 680 Las Condes, Santiago, Chile
[2] Univ Chile, Dept Geol, Plaza Ercilla 803, Santiago, Chile
[3] Univ Chile, FCFM, Plaza Ercilla 803, Santiago, Chile
[4] Univ Concepcion, Dept Ingn Civil, Edmundo Larenas 215 Barrio Univ Concepcion, Concepcion, Chile
[5] Pontificia Univ Catolica Chile, Vicuna Mackenna 4860, Santiago, Chile
[6] CONICYT FONDAP 15110017, CIGIDEN, Natl Res Ctr Integrated Nat Disaster Management, Santiago, Chile
[7] CONICYT FONDAP 15130015, CRHIAM, Water Res Ctr Agr & Min, Santiago, Chile
[8] CEGA FONDAP CONICYT 15090013, Ctr Excelencia Geotermia Los Andes CEGA, Santiago, Chile
基金
美国国家科学基金会;
关键词
TSUNAMI;
D O I
10.1193/031716EQS043M
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
The 2015 Illapel earthquake sequence in Central Chile, occurred along the subduction zone interface in a known seismic gap, with moment magnitudes of M-w 8.3, M-w 7.1, and M-w 7.6. The Main event triggered tsunami waves that damaged structures along the coast, while the surface ground motion induced localized liquefaction, settlement of bridge abutments, rockfall, debris flow, and collapse in several adobe structures. Because of the strict seismic codes in Chile, damage to modern engineered infrastructure was limited, although there was widespread tsunami-induced damage to one-story and two-stories residential homes adjacent to the shoreline. Soon after the earthquake, shear wave measurements were performed at selected potentially liquefiable sites to test recent Vs-based liquefaction susceptibility approaches. This paper describes the effects that this earthquake sequence and tsunami had on a number of retaining structures, bridge abutments, and cuts along Chile's main highway (Route 5). Since tsunami waves redistribute coastal and near shore sand along the coast, liquefaction evidence in coastal zones with tsunami waves is sometimes obscured within minutes because the tsunami waves entrain and deposit sand that covers or erodes evidence of liquefaction (e.g., lateral spread or sand blows). This suggests that liquefaction occurrence and hazard may be under estimated in coastal zones. Importantly, the areas that experienced the greatest coseismic slip, appeared to have the largest volumes of rockfall that impacted roads, which suggests that coseismic slip maps, generated immediately after the shaking stops, can provide a first order indication about where to expect damage during future major events.
引用
收藏
页码:709 / 728
页数:20
相关论文
共 50 条
  • [41] A comprehensive analysis of the Illapel 2015 Mw8.3 earthquake from GPS and InSAR data
    Klein, E.
    Vigny, C.
    Fleitout, L.
    Grandin, R.
    Jolivet, R.
    Rivera, E.
    Metois, M.
    EARTH AND PLANETARY SCIENCE LETTERS, 2017, 469 : 123 - 134
  • [42] Joint modeling of teleseismic and tsunami wave observations to constrain the 16 September 2015 Illapel, Chile, Mw8.3 earthquake rupture process
    Li, Linyan
    Lay, Thorne
    Cheung, Kwok Fai
    Ye, Lingling
    GEOPHYSICAL RESEARCH LETTERS, 2016, 43 (09) : 4303 - 4312
  • [43] The September 16, 2015 Mw 8.3 Illapel, Chile Earthquake: characteristics of tsunami wave from near-field to far-field
    Zhiyuan Ren
    Ye Yuan
    Peitao Wang
    Tingting Fan
    Juncheng Wang
    Jingming Hou
    Acta Oceanologica Sinica, 2017, 36 : 73 - 82
  • [44] Analysis of the Illapel Mw=8.3 Thrust Earthquake Rupture Zone Using GOCE-Derived Gradients
    Alvarez, Orlando
    Pesce, Agustina
    Gimenez, Mario
    Folguera, Andres
    Soler, Santiago
    Chen, Wenjin
    PURE AND APPLIED GEOPHYSICS, 2017, 174 (01) : 47 - 75
  • [45] 2017 Valparaiso earthquake sequence and the megathrust patchwork of central Chile
    Nealy, Jennifer L.
    Herman, Matthew W.
    Moore, Ginevra L.
    Hayes, Gavin P.
    Benz, Harley M.
    Bergman, Eric A.
    Barrientos, Sergio E.
    GEOPHYSICAL RESEARCH LETTERS, 2017, 44 (17) : 8865 - 8872
  • [46] Slow Unlocking Processes Preceding the 2015 Mw 8.4 Illapel, Chile, Earthquake
    Huang, Hui
    Meng, Lingsen
    GEOPHYSICAL RESEARCH LETTERS, 2018, 45 (09) : 3914 - 3922
  • [47] Analysis of the Illapel Mw = 8.3 Thrust Earthquake Rupture Zone Using GOCE-Derived Gradients
    Orlando Álvarez
    Agustina Pesce
    Mario Gimenez
    Andres Folguera
    Santiago Soler
    Wenjin Chen
    Pure and Applied Geophysics, 2017, 174 : 47 - 75
  • [48] Rapid automated W-phase slip inversion for the Illapel great earthquake (2015, Mw=8.3)
    Benavente, Roberto
    Cummins, Phil R.
    Dettmer, Jan
    GEOPHYSICAL RESEARCH LETTERS, 2016, 43 (05) : 1910 - 1917
  • [49] Coseismic Fault Model of Mw 8.3 2015 Illapel Earthquake (Chile) Retrieved from Multi-Orbit Sentinel1-A DInSAR Measurements
    Solaro, Giuseppe
    De Novellis, Vincenzo
    Castaldo, Raffaele
    De Luca, Claudio
    Lanari, Riccardo
    Manunta, Michele
    Casu, Francesco
    REMOTE SENSING, 2016, 8 (04)
  • [50] 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
    Acta Oceanologica Sinica, 2017, 36 (05) : 73 - 82