Pre- and post-seismic deformation related to the 2015, Mw7.8 Gorkha earthquake, Nepal

被引:74
作者
Gualandi, Adriano [1 ]
Avouac, Jean-Philippe [1 ,2 ]
Galetzka, John [3 ]
Genrich, Joachim F. [1 ]
Blewitt, Geoffrey [4 ]
Adhikari, Lok Bijaya [5 ]
Koirala, Bharat Prasad [5 ]
Gupta, Ratnamani [5 ]
Upreti, Bishal Nath [6 ,7 ]
Pratt-Sitaula, Beth [8 ]
Liu-Zeng, Jing [9 ]
机构
[1] CALTECH, Dept Geol & Planetary Sci, Pasadena, CA 91125 USA
[2] Univ Cambridge, Dept Earth Sci, Cambridge, England
[3] UNAVCO Inc, Boulder, CO USA
[4] Univ Nevada, Nevada Bur Mines & Geol, Reno, NV 89557 USA
[5] Dept Mines & Geol, Kathmandu, Nepal
[6] NAST, Khumaltar, Lalitpur, Nepal
[7] Univ Zambia, Sch Mines, Dept Geol, Lusaka, Zambia
[8] Cent Washington Univ, Geol Sci Dept, Ellensburg, WA USA
[9] China Earthquake Adm, Inst Geol, State Key Lab Earthquake Dynam, Beijing 100029, Peoples R China
基金
美国国家航空航天局; 美国国家科学基金会;
关键词
Gorkha; Afterslip; ICA; Rate-strengthening; Pre-seismic; Post-seismic; GPS; HIMALAYAN; EVENT; SLIP;
D O I
10.1016/j.tecto.2016.06.014
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
We analyze time series from continuously recording GPS stations in Nepal spanning the pre- and post-seismic period associated to the M(w)7.8 Gorkha earthquake which ruptured the Main Himalayan Thrust (MHT) fault on April 25th, 2015. The records show strong seasonal variations due to surface hydrology. After corrections for these variations, the time series covering the pre- and post-seismic periods do not show any detectable transient pre-seismic displacement. By contrast, a transient post-seismic signal is clear. The observed signal shows southward displacements consistent with afterslip on the MHT. Using additional data from stations deployed after the mainshock, we invert the time series for the spatio-temporal evolution of slip on the MHT. This modelling indicates afterslip dominantly downdip of the mainshock rupture. Two other regions show significant afterslip: a more minor zone updip of the rupture, and a region between the mainshock and the largest aftershock ruptures. Afterslip in the first similar to 7 months after the mainshock released a moment of [12.8 +/- 0.5] x 10(19) Nm which represents 17.8 +/- 0.8% of the co-seismicmoment. The moment released by aftershocks over that period of time is estimated to 2.98 x 10(19) Nm. Geodetically observed post-seismic deformation after co-seismic offset correction was thus 76.7 +/- 1.0% aseismic. The logarithmic time evolution of afterslip is consistent with rate-strengthening frictional sliding. According to this theory, and assuming a long-term loading velocity modulated on the basis of the coupling map of the region and the long term slip rate of 20.2 +/- 1.1 mm/yr, afterslip should release about 34.0 +/- 1.4% of the co-seismic moment after full relaxation of post-seismic deformation. Afterslip contributed to loading the shallower portion of the MHT which did not rupture in 2015 and stayed locked afterwards. The risk for further large earthquakes in Nepal remains high both updip of the rupture area of the Gorkha earthquake and West of Kathmandu where the MHT has remained locked and where no earthquake larger than M(w)7.5 has occurred since 1505. (C) 2016 Published by Elsevier B.V.
引用
收藏
页码:90 / 106
页数:17
相关论文
共 56 条
[21]   Rupture process of the Mw=7.9 2015 Gorkha earthquake (Nepal): Insights into Himalayan megathrust segmentation [J].
Grandin, Raphael ;
Vallee, Martin ;
Satriano, Claudio ;
Lacassin, Robin ;
Klinger, Yann ;
Simoes, Martine ;
Bollinger, Laurent .
GEOPHYSICAL RESEARCH LETTERS, 2015, 42 (20) :8373-8382
[22]   Space-time evolution of crustal deformation related to the Mw 6.3, 2009 L'Aquila earthquake (central Italy) from principal component analysis inversion of GPS position time-series [J].
Gualandi, A. ;
Serpelloni, E. ;
Belardinelli, M. E. .
GEOPHYSICAL JOURNAL INTERNATIONAL, 2014, 197 (01) :174-191
[23]  
Gualandi A., 2015, J GEODESY, P1
[24]  
Hanks T. C, 1979, J GEOPHYS RES, V840
[25]   Dynamics of Izmit earthquake postseismic deformation and loading of the Duzce earthquake hypocenter [J].
Hearn, EH ;
Bürgmann, R ;
Reilinger, RE .
BULLETIN OF THE SEISMOLOGICAL SOCIETY OF AMERICA, 2002, 92 (01) :172-193
[26]   Post-seismic and interseismic fault creep II: transient creep and interseismic stress shadows on megathrusts [J].
Hetland, E. A. ;
Simons, M. .
GEOPHYSICAL JOURNAL INTERNATIONAL, 2010, 181 (01) :99-112
[27]   Surface ruptures of large Himalayan earthquakes in Western Nepal: Evidence along a reactivated strand of the Main Boundary Thrust [J].
Hossler, T. ;
Bollinger, L. ;
Sapkota, S. N. ;
Lave, J. ;
Gupta, R. M. ;
Kandel, T. P. .
EARTH AND PLANETARY SCIENCE LETTERS, 2016, 434 :187-196
[28]   Frictional afterslip following the 2005 Nias-Simeulue earthquake, Sumatra [J].
Hsu, Ya-Ju ;
Simons, Mark ;
Avouac, Jean-Philippe ;
Galetzka, John ;
Sieh, Kerry ;
Chlieh, Mohamed ;
Natawidjaja, Danny ;
Prawirodirdjo, Linette ;
Bock, Yehuda .
SCIENCE, 2006, 312 (5782) :1921-1926
[29]   Rapid afterslip following the 1999 Chi-Chi, Taiwan earthquake [J].
Hsu, YJ ;
Bechor, N ;
Segall, P ;
Yu, SB ;
Kuo, LC ;
Ma, KF .
GEOPHYSICAL RESEARCH LETTERS, 2002, 29 (16) :1-4
[30]   Postseismic deformation in Pakistan after the 8 October 2005 earthquake: Evidence of afterslip along a flat north of the Balakot-Bagh thrust [J].
Jouanne, F. ;
Awan, A. ;
Madji, A. ;
Pecher, A. ;
Latif, M. ;
Kausar, A. ;
Mugnier, J. L. ;
Khan, I. ;
Khan, N. A. .
JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 2011, 116