Kinematic rupture modeling of broadband ground motion from the 2022 MS6.9 Menyuan earthquake

IF 1.6 4区 地球科学 Q3 GEOCHEMISTRY & GEOPHYSICS Journal of Seismology Pub Date : 2024-10-14 DOI:10.1007/s10950-024-10247-y
Mengtao Wu, Jun Yang
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Abstract

We propose a novel kinematic rupture modeling procedure for synthesizing broadband ground motions derived from the frequency-wavenumber integration algorithm. This procedure addresses two key issues in characterizing the rupture processes relevant to broadband seismic radiation: an accurate Green's function and a well-constrained kinematic source model. For the first issue, we derive the theoretical Green's function based on an improved dynamic stiffness matrix approach that effectively handles wave propagation in a 1D crustal velocity structure across a broad frequency band. For the second issue, we generate the hybrid source model that combines asperity slip and random slip over the fault plane to effectively implement constraints on the radiated energy during the whole rupture process. The accuracy and effectiveness of the proposed methodology are verified by comparing with the surface acceleration traces and Fourier spectra calculated by spectral element method. With the hybrid source model and crustal velocity structure applicable to the target area, the broadband (0–10 Hz) ground motion of the 2022 MS6.9 Menyuan earthquake is synthesized. The amplitude, duration, and frequency content of the synthetic motions are systematically compared with those of the available observed records and ground motion attenuation relationships, as well as the spatial distribution characteristics of the near-field ground motions from the earthquake scenarios are presented. In conclusion, the case study of the Menyuan MS6.9 earthquake demonstrates that the presented modeling procedure can estimate broadband ground motions rapidly and reliably from a physics-based kinematic rupture perspective.

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2022年门源MS6.9地震宽带地震动的运动学破裂模拟
我们提出了一种基于频率-波数积分算法合成宽带地震动的新型运动学破裂建模方法。该程序解决了描述与宽带地震辐射有关的破裂过程的两个关键问题:准确的格林函数和良好约束的运动学源模型。对于第一个问题,我们基于改进的动态刚度矩阵方法推导出理论格林函数,该方法有效地处理了一维地壳速度结构中波在宽频带中的传播。对于第二个问题,我们在断层面上建立了结合粗糙滑动和随机滑动的混合震源模型,以有效地实现对整个破裂过程中辐射能量的约束。通过与谱元法计算的表面加速度轨迹和傅立叶谱的对比,验证了该方法的准确性和有效性。利用混合震源模型和适用于目标区域的地壳速度结构,合成了2022年门源MS6.9地震的宽带(0-10 Hz)地震动。系统地比较了合成运动的幅值、持续时间和频率内容与已有观测记录的振幅、持续时间和地震动衰减关系,并给出了地震情景下近场地震动的空间分布特征。最后,以门源MS6.9地震为例进行了研究,结果表明,本文提出的模拟方法能够快速、可靠地从基于物理的运动学破裂角度估计宽带地震动。
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来源期刊
Journal of Seismology
Journal of Seismology 地学-地球化学与地球物理
CiteScore
3.30
自引率
6.20%
发文量
67
审稿时长
3 months
期刊介绍: Journal of Seismology is an international journal specialising in all observational and theoretical aspects related to earthquake occurrence. Research topics may cover: seismotectonics, seismicity, historical seismicity, seismic source physics, strong ground motion studies, seismic hazard or risk, engineering seismology, physics of fault systems, triggered and induced seismicity, mining seismology, volcano seismology, earthquake prediction, structural investigations ranging from local to regional and global studies with a particular focus on passive experiments.
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