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Rapid mantle flow with power-law creep explains deformation after the 2011 Tohoku mega-quake

机译:快速的地幔流动和幂律蠕变解释了2011年东北特大地震后的变形

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摘要

The deformation transient following large subduction zone earthquakes is thought to originate from the interaction of viscoelastic flow in the asthenospheric mantle and slip on the megathrust that are both accelerated by the sudden coseismic stress change. Here, we show that combining insight from laboratory solid-state creep and friction experiments can successfully explain the spatial distribution of surface deformation in the first few years after the 2011 Mw 9.0 Tohoku-Oki earthquake. The transient reduction of effective viscosity resulting from dislocation creep in the asthenosphere explains the peculiar retrograde displacement revealed by seafloor geodesy, while the slip acceleration on the megathrust accounts for surface displacements on land and offshore outside the rupture area. Our results suggest that a rapid mantle flow takes place in the asthenosphere with temporarily decreased viscosity in response to large coseismic stress, presumably due to the activation of power-law creep during the post-earthquake period.
机译:大俯冲带地震后的瞬态形变瞬变被认为是由于软共流层地幔中的粘弹性流和超大推力上的滑移的相互作用所致,两者均由于突然的同震应力变化而加速。在这里,我们表明,结合实验室固态蠕变和摩擦实验的见识,可以成功地解释2011年Mw 9.0东北大地震后头几年的表面变形的空间分布。由于软流圈中位错蠕变引起的有效粘度的瞬时降低解释了海底大地测量法揭示的奇特的逆行位移,而超大推力上的滑动加速度解释了破裂区域外陆地和海上的表面位移。我们的结果表明,在软流圈中发生了快速的地幔流动,响应于大的同震应力,其黏度暂时降低,这大概是由于地震后幂律蠕变的激活。

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