Refined Coseismic Slip Model and Surface Deformation of the 2021 Maduo Earthquake: Implications for Sensitivity of Rupture Behaviors to Geometric Complexity

Author:

Liu Xiaoli1,Deng Debeier1,Jia Zhige1,Liu-Zeng Jing2ORCID,Mo Xinyu1,Huang Yu1,Ruan Qiaozhe1,Liu Juntao1

Affiliation:

1. Institute of Seismology, China Earthquake Administration, Wuhan 430071, China

2. School of Earth System Science, Tianjin University, Tianjin 300072, China

Abstract

Geometric complexities of a fault system have a significant impact on the rupture behavior of the fault. The 2021 Mw7.4 Maduo earthquake occurred on a multi-segmented complex sinistral fault in the interior of the Bayan-Har block in the northern Tibetan Plateau. Here, we integrate centimeter-resolution surface rupture zones and Sentinel-2 optical displacement fields to accurately determine the geometric parameters of the causative fault in detail. An adaptive quadtree down-sampling method for interferograms was employed to enhance the reliability of the coseismic slip model inversion for interferograms. The optimal coseismic slip model indicated a complex non-planar structure with varying strike and dip angles. The largest slip of ~6 m, at a depth of ~7 km, occurred near a 6 km-wide stepover (a geometric complexity area) to the east of the epicenter, which occurred at the transition zone from sub-shear to super-shear rupture suggested by seismological studies. Optical and SAR displacement fields consistently indicated the local minimization of effective normal stress on releasing stepovers, which facilitated rupture through them. Moreover, connecting intermediate structures contributes to maintaining the rupture propagation through wide stepovers and may even facilitate the transition from subshear to supershear. Our study provides more evidence of the reactivation of a branched fault at the western end during the mainshock, which was previously under-appreciated. Furthermore, we found that a strong asymmetry in slip depth, stress drop, and rupture velocity east and west of the epicenter was coupled with variations in geometric and structural characteristics of fault segments along the strike. Our findings highlight the sensitivity of rupture behaviors to small-scale details of fault geometry.

Funder

Science for Earthquake Resilience, China Earthquake Administration

Open Funding of National Field Scientific Observation and Research Station of Geophysics, Lhasa

National Field Scientific Observation and Research Station of Gravity and Earth tides, Wuhan

Institute of Seismology, China Earthquake Administration

National Key Research and Development Program of China

Publisher

MDPI AG

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