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Interseismic Coupling in the Central Nepalese Himalaya: Spatial Correlation with the 2015 Mw 7.9 Gorkha Earthquake

机译:中央尼泊尔喜马拉雅亚志安拉马亚的苦难:与2015 MW 7.9 Gorkha地震的空间相关性

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摘要

Geodetic measurements conducted in the Himalaya over the last two decades have shown that the shallow portion of the main himalayan thrust (MHT) was entirely locked during the interseismic period. The induced elastic strain accumulated on the MHT beneath the Lesser Himalaya was not released until the 2015 Gorkha Mw 7.9 earthquake, which ruptured the north edge of the locked portion of the MHT. We utilized our own Global Positioning System (GPS) data from southern Tibet, combined with published geodetic velocities, to quantify the spatial variations of the coupling that prevailed before the Gorkha earthquake. The refined coupling model shows that the MHT was strongly locked (coupling > 0.5) in the uppermost 15 km of crust, corresponding to a downdip width of similar to 100 km. This model suggests a sharp transition zone of strain accumulation, with a rapid decrease in the coupling coefficient from 1.0 to less than 0.2 along similar to 50 km of the MHT, coinciding with the locations of microseismicity. We also determined slip models for the 2015 Gorkha earthquake and its Mw 7.3 aftershock, considering the ramp-flat-ramp-flat structure of the MHT. We found that similar to 85% of the total moment released by the Gorkha earthquake was concentrated on the partially coupled transition portion of the MHT, indicating that the earthquake mainly ruptured the brittle/ductile transition zone. The coseismic Coulomb failure stress increased along the southern and western parts adjacent to the rupture zone, pushing these two regions closer to failure. The moment deficits that have accumulated in these regions could trigger Mw 8.0 and Mw 8.3 earthquakes, respectively.
机译:在过去二十年中在喜马拉雅州进行的大地测量表明,主要喜马拉雅岛推力(MHT)的浅部分完全被锁定在造型期间。在较小的喜马拉雅山下方的MHT上积聚的诱导弹性应变在2015年Gorkha MW 7.9地震中,这破裂了MHT锁定部分的北边缘。我们利用了来自西藏南部的全球定位系统(GPS)数据,与已发表的大地测量速度相结合,以量化在Gorkha地震前盛行的耦合的空间变化。精制的耦合模型表明,MHT在地壳的最上面的15千米处强烈锁定(联接> 0.5),对应于类似于100km的下拔宽。该模型提示应变累积的尖锐过渡区,耦合系数从1.0到小于0.2的快速降低沿着MHT的50千米,与微震性的位置一致。考虑到MHT的斜坡平斜坡平坦结构,我们还确定了2015年Gorkha地震及其MW 7.3余震的滑动模型。我们发现,类似于Gorkha地震释放的总时刻的85%集中在MHT的部分耦合的过渡部分上,表明地震主要破裂了脆性/延展过渡区。沿着破裂区附近的南部和西部的电动发射库仑衰竭应力增加,推动这两个区域更接近失效。在这些区域中积累的瞬间缺陷可以分别触发MW 8.0和MW 8.3地震。

著录项

  • 来源
    《Pure and Applied Geophysics》 |2019年第9期|共19页
  • 作者单位

    China Univ Geosci Inst Geophys &

    Geomat Hubei Subsurface Multiscale Imaging Key Lab Wuhan 430074 Hubei Peoples R China;

    China Univ Geosci Inst Geophys &

    Geomat Hubei Subsurface Multiscale Imaging Key Lab Wuhan 430074 Hubei Peoples R China;

    China Univ Geosci Coll Marine Sci &

    Technol Wuhan 430074 Hubei Peoples R China;

    China Univ Geosci Inst Geophys &

    Geomat Hubei Subsurface Multiscale Imaging Key Lab Wuhan 430074 Hubei Peoples R China;

    China Univ Geosci Fac Informat Engn Wuhan 430074 Hubei Peoples R China;

    China Univ Geosci Inst Geophys &

    Geomat Hubei Subsurface Multiscale Imaging Key Lab Wuhan 430074 Hubei Peoples R China;

    China Univ Geosci Inst Geophys &

    Geomat Hubei Subsurface Multiscale Imaging Key Lab Wuhan 430074 Hubei Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 地球物理学;
  • 关键词

    GPS; convergence rate; interseismic coupling; 2015 Gorkha earthquake; brittle; ductile transition zone;

    机译:GPS;收敛速度;造型耦合;2015 Gorkha地震;脆性;韧性过渡带;

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