由几何结构和吸积楔不均匀性引起的宇宙形变响应:以2010年印尼西苏门答腊明打威地震为例

IF 1 Q3 GEOCHEMISTRY & GEOPHYSICS International Journal of Geophysics Pub Date : 2023-01-16 DOI:10.1155/2023/5507264
Alvina K. Kuncoro, W. Srigutomo, U. Fauzi
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引用次数: 0

摘要

均匀弹性半空间模型的假设被广泛用于模拟地球的变形。然而,同质假设并不能准确地反映浅层地壳的复杂性。我们使用有限元方法建立了三维同震变形模型,并参考了2010年明打威地震。2010年海啸地震发生在明打威段,该段是苏门答腊俯冲带增生楔的一部分。这个活跃的增生楔被认为是地球上最复杂的结构,位于苏门答腊俯冲带,该地区发生的破坏性地震最多。我们通过将增生楔视为与大陆板块分离的单一不同性质,研究了增生楔几何结构和材料性质的影响。模拟了各种几何特征,如地形和楔体尺寸以及物理特性。然后观察这些特征对表面变形的响应。地形对水平变形幅度的影响高达10%,但仅影响垂直变形的模式。与地形相比,楔形尺寸对表面变形的影响似乎微不足道。增生楔的不同物理性质不仅影响高达40%的水平变形幅度,还影响其方位。横向移动的方向似乎受到GPS站下材料和来源的影响。另一方面,物理性质的变化导致震源附近垂直变形的差异为0.5米。这些结果表明,区域物理性质信息和几何特征对于估计同震变形至关重要,从而实现更准确的滑动反演以及地震和海啸灾害预测,特别是在具有显著不均匀性的区域。
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Coseismic Deformation Responses due to Geometrical Structure and Heterogeneity of the Accretionary Wedge: Study Case 2010 Mentawai Earthquake, West Sumatra, Indonesia
The assumption of a homogeneous elastic half-space model is widely used to model the earth’s deformation. However, the homogeneous assumption would not accurately reflect the complexity of the shallow crust. We performed a 3D coseismic deformation model using the finite element method and referred to the 2010 Mentawai earthquake. The 2010 tsunami earthquake was located at the Mentawai segment, which is a part of the accretionary wedge in the Sumatra subduction zone. This active accretionary wedge is identified as the most complicated structure on earth and lies along the Sumatra subduction zone, at which most destructive earthquakes happen in this region. We examined the impact of the accretionary wedge geometry and material properties by considering the wedge as a single different property separated from the continental plate. Various geometrical features, such as topography and wedge dimension, as well as physical properties, were simulated. Those features are then observed for their responses on the surface deformation. The topography affected the magnitude of the horizontal deformation up to 10% but only the pattern of the vertical deformation. The wedge dimension seems to have an insignificant influence on the surface deformation compared to the topography. Different physical properties of the accretionary wedge affect not only the magnitude of the horizontal deformation up to 40% but also the orientation. The direction of the lateral movement is seemingly affected by the material under the GPS station and by the source. On the other hand, the variations in the physical properties resulted in discrepancies of 0.5 meters in the vertical deformation near the source. These results indicated that regional physical property information and geometrical features are critical in estimating coseismic deformation, leading to more accurate slip inversion and earthquake and tsunami hazard prediction, particularly in regions with significant inhomogeneity.
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来源期刊
International Journal of Geophysics
International Journal of Geophysics GEOCHEMISTRY & GEOPHYSICS-
CiteScore
1.50
自引率
0.00%
发文量
12
审稿时长
21 weeks
期刊介绍: International Journal of Geophysics is a peer-reviewed, Open Access journal that publishes original research articles as well as review articles in all areas of theoretical, observational, applied, and computational geophysics.
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