基于三维FK-LTSOS混合方法的远震全波形层析成像局部成像

IF 3.9 2区 地球科学 Q1 GEOCHEMISTRY & GEOPHYSICS
Weijuan Meng, Dinghui Yang, Ling Chen, Xingpeng Dong, Xiaobing Xu, Jiandong Huang
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引用次数: 0

摘要

远震波形包含了大量关于地球性质的可解释信息。它们可以用来探索地球内部的精细结构,特别是在地震活动空间分布不平衡的地区。然而,在全波形反演中,对高频(1hz)远震波在整个域内的传播进行迭代数值模拟在技术上是不可行的,其计算成本巨大。我们开发了一种三维FK-LTSOS(频率-波数,分层时空优化辛)混合方法,然后将其应用于远震全波形断层扫描,以解决这一计算挑战。三维FK-LTSOS混合方法将FK法在一维背景模型中快速计算出的半解析解与三维局部非均质介质中三维LTSOS法精确计算出的数值解相结合,有效、准确地模拟了远震波的传播。通过对合成地震记录的比较,证明了其在地形模型中模拟地震波传播的准确性和稳定性。在此基础上,提出了利用高频远震数据高效解析局部研究区域详细结构的远震全波形层析方法。介绍了全波形层析成像的基本内容,包括失拟函数、fr核函数、平滑策略和非线性共轭梯度法。对平面和高斯地形球面异常模型的综合数据应用,以及对藏东地壳-上地幔结构的观测数据应用,证实了远震全波形层析成像的有效性,并证明了该方法可以从全波形信息快速成像局部构造。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Teleseismic Full-Waveform Tomography Based on a 3D FK-LTSOS Hybrid Method for Local Imaging

Teleseismic waveforms contain abundant interpretable information about Earth's properties. They can be used to explore the refined structure of Earth's interior, especially in the regions with imbalanced spatial distribution of seismic activity. However, it's technically infeasible to numerically simulate high-frequency (>1 Hz) teleseismic wave propagation within a whole domain iteratively in full-waveform inversion due to its vast computational costs. We develop a 3D FK-LTSOS (Frequency-Wavenumber, Layered Time-Space Optimized Symplectic) hybrid method and then apply it to teleseismic full-waveform tomography to tackle this computational challenge. The 3D FK-LTSOS hybrid method combines the semi-analytical solution computed by the FK method rapidly in a 1D background model and the numerical solution calculated by the 3D LTSOS method accurately in 3D localized heterogeneous media with topography to simulate teleseismic wave propagation efficiently and accurately. The comparison of synthetic seismograms shows its accuracy and stability when simulating wave propagation in the topographic model. Based on this hybrid method, the teleseismic full-waveform tomographic method is developed to efficiently resolve the detailed structure of the local research domain utilizing high-frequency teleseismic data. The essential contents of full-waveform tomography are presented, including misfit function, Fréchet kernels, smoothing strategy, and nonlinear conjugate gradient method. Synthetic data application for spherical anomaly models with planer surface and Gaussian topography, and observed data application for the crust-upper mantle structure beneath eastern Tibet confirm the validity of the teleseismic full-waveform tomography and demonstrate that our tomographic method can image the localized structures speedily from full-waveform information.

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来源期刊
Journal of Geophysical Research: Solid Earth
Journal of Geophysical Research: Solid Earth Earth and Planetary Sciences-Geophysics
CiteScore
7.50
自引率
15.40%
发文量
559
期刊介绍: The Journal of Geophysical Research: Solid Earth serves as the premier publication for the breadth of solid Earth geophysics including (in alphabetical order): electromagnetic methods; exploration geophysics; geodesy and gravity; geodynamics, rheology, and plate kinematics; geomagnetism and paleomagnetism; hydrogeophysics; Instruments, techniques, and models; solid Earth interactions with the cryosphere, atmosphere, oceans, and climate; marine geology and geophysics; natural and anthropogenic hazards; near surface geophysics; petrology, geochemistry, and mineralogy; planet Earth physics and chemistry; rock mechanics and deformation; seismology; tectonophysics; and volcanology. JGR: Solid Earth has long distinguished itself as the venue for publication of Research Articles backed solidly by data and as well as presenting theoretical and numerical developments with broad applications. Research Articles published in JGR: Solid Earth have had long-term impacts in their fields. JGR: Solid Earth provides a venue for special issues and special themes based on conferences, workshops, and community initiatives. JGR: Solid Earth also publishes Commentaries on research and emerging trends in the field; these are commissioned by the editors, and suggestion are welcome.
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