The role of heterogeneous stress in earthquake cycle models of the Hikurangi-Kermadec subduction zone

IF 2.8 3区 地球科学 Q2 GEOCHEMISTRY & GEOPHYSICS Geophysical Journal International Pub Date : 2024-08-01 DOI:10.1093/gji/ggae266
Yi-Wun Mika Liao, Bill Fry, Andrew Howell, Charles Williams, Andrew Nicol, Chris Rollins
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Abstract

Summary Seismic and tsunami hazard modelling and preparedness are challenged by uncertainties in the earthquake source process. Important parameters such as the recurrence interval of earthquakes of a given magnitude at a particular location, the probability of multi-fault rupture, earthquake clustering, rupture directivity and slip distribution are often poorly constrained. Physics-based earthquake simulators, such as RSQSim, offer a means of probing uncertainties in these parameters by generating long-term catalogues of earthquake ruptures on a system of known faults. The fault initial stress state in these simulations is typically prescribed as a single uniform value, which can promote characteristic earthquake behaviours and reduce variability in modelled events. Here, we test the role of spatial heterogeneity in the distribution of the initial stresses and frictional properties on earthquake cycle simulations. We focus on the Hikurangi-Kermadec subduction zone, which may produce Mw > 9.0 earthquakes and likely poses a major hazard and risk to Aotearoa New Zealand. We explore RSQSim simulations of Hikurangi-Kermadec subduction earthquake cycles in which we vary the rate and state coefficients (a and b). The results are compared with the magnitude-frequency distribution (MFD) of the instrumental earthquake catalogue and with empirical slip scaling laws from global earthquakes. Our results suggest stress heterogeneity produces more realistic and less characteristic synthetic catalogues, making them particularly well suited for hazard and risk assessment. We further find that the initial stress effects are dominated by the initial effective normal stresses, since the normal stresses evolve more slowly than the shear stresses. A heterogeneous stress model with a constant pore-fluid pressure ratio and a constant state coefficient (b) of 0.003 produces the best fit to MFDs and empirical scaling laws, while the model with variable frictional properties produces the best fit to earthquake depth distribution and empirical scaling laws. This model is our preferred initial stress state and frictional property settings for earthquake modelling of the Hikurangi-Kermadec subduction interface. Introducing heterogeneity of other parameters within RSQSim (e.g. friction coefficient, reference slip rate, characteristic distance, initial state variable, etc) could further improve the applicability of the synthetic earthquake catalogues to seismic hazard problems and form the focus of future research.
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异质应力在希库兰吉-克马代克俯冲带地震周期模型中的作用
摘要 地震和海啸灾害建模和防备工作因震源过程的不确定性而受到挑战。一些重要参数,如特定地点特定震级地震的重现间隔、多断层破裂的概率、地震群集、破裂指向性和滑移分布等,往往缺乏有效约束。基于物理学的地震模拟器(如 RSQSim)通过在已知断层系统上生成长期地震破裂目录,为探测这些参数的不确定性提供了一种方法。在这些模拟中,断层初始应力状态通常被规定为一个单一的统一值,这可以促进特征地震行为并减少模拟事件的变异性。在此,我们测试了初始应力和摩擦特性分布的空间异质性对地震周期模拟的作用。我们将重点放在 Hikurangi-Kermadec 俯冲带,它可能会产生 Mw > 9.0 级地震,并可能对新西兰奥特亚罗瓦构成重大危害和风险。我们探讨了 RSQSim 模拟 Hikurangi-Kermadec 俯冲地震周期的情况,其中我们改变了速率和状态系数(a 和 b)。我们将模拟结果与仪器地震目录的震级-频率分布(MFD)以及全球地震的经验滑移缩放规律进行了比较。我们的结果表明,应力异质性产生的合成地震目录更真实、特征更少,因此特别适用于灾害和风险评估。我们还发现,初始应力效应主要受初始有效法向应力的影响,因为法向应力的变化比剪应力慢。具有恒定孔隙流体压力比和 0.003 恒定状态系数(b)的异质应力模型最适合 MFD 和经验缩放定律,而具有可变摩擦特性的模型最适合地震深度分布和经验缩放定律。在建立 Hikurangi-Kermadec 俯冲界面地震模型时,该模型是我们首选的初始应力状态和摩擦属性设置。在 RSQSim 中引入其他参数的异质性(如摩擦系数、参考滑移率、特征距离、初始状态变量等)可进一步提高合成地震目录对地震灾害问题的适用性,并成为未来研究的重点。
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来源期刊
Geophysical Journal International
Geophysical Journal International 地学-地球化学与地球物理
CiteScore
5.40
自引率
10.70%
发文量
436
审稿时长
3.3 months
期刊介绍: Geophysical Journal International publishes top quality research papers, express letters, invited review papers and book reviews on all aspects of theoretical, computational, applied and observational geophysics.
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