Performance of Irikura Recipe Rupture Model Generator in Earthquake Ground Motion Simulations with Graves and Pitarka Hybrid Approach

被引:0
|
作者
Arben Pitarka
Robert Graves
Kojiro Irikura
Hiroe Miyake
Arthur Rodgers
机构
[1] Lawrence Livermore National Laboratory,
[2] United States Geological Survey,undefined
[3] Aichi Institute of Technology,undefined
[4] ERI University of Tokyo,undefined
关键词
Ground Motion; Rupture Generator; Rupture Model; Ground Motion Simulation; Longe Period Ground Motion;
D O I
暂无
中图分类号
学科分类号
摘要
We analyzed the performance of the Irikura and Miyake (Pure and Applied Geophysics 168(2011):85–104, 2011) (IM2011) asperity-based kinematic rupture model generator, as implemented in the hybrid broadband ground motion simulation methodology of Graves and Pitarka (Bulletin of the Seismological Society of America 100(5A):2095–2123, 2010), for simulating ground motion from crustal earthquakes of intermediate size. The primary objective of our study is to investigate the transportability of IM2011 into the framework used by the Southern California Earthquake Center broadband simulation platform. In our analysis, we performed broadband (0–20 Hz) ground motion simulations for a suite of M6.7 crustal scenario earthquakes in a hard rock seismic velocity structure using rupture models produced with both IM2011 and the rupture generation method of Graves and Pitarka (Bulletin of the Seismological Society of America, 2016) (GP2016). The level of simulated ground motions for the two approaches compare favorably with median estimates obtained from the 2014 Next Generation Attenuation-West2 Project (NGA-West2) ground motion prediction equations (GMPEs) over the frequency band 0.1–10 Hz and for distances out to 22 km from the fault. We also found that, compared to GP2016, IM2011 generates ground motion with larger variability, particularly at near-fault distances (<12 km) and at long periods (>1 s). For this specific scenario, the largest systematic difference in ground motion level for the two approaches occurs in the period band 1–3 s where the IM2011 motions are about 20–30% lower than those for GP2016. We found that increasing the rupture speed by 20% on the asperities in IM2011 produced ground motions in the 1–3 s bandwidth that are in much closer agreement with the GMPE medians and similar to those obtained with GP2016. The potential implications of this modification for other rupture mechanisms and magnitudes are not yet fully understood, and this topic is the subject of ongoing study. We concluded that IM2011 rupture generator performs well in ground motion simulations using Graves and Pitarka hybrid method. Therefore, we recommend it to be considered for inclusion into the framework used by the Southern California Earthquake Center broadband simulation platform.
引用
收藏
页码:3537 / 3555
页数:18
相关论文
共 40 条
  • [1] Performance of Irikura Recipe Rupture Model Generator in Earthquake Ground Motion Simulations with Graves and Pitarka Hybrid Approach
    Pitarka, Arben
    Graves, Robert
    Irikura, Kojiro
    Miyake, Hiroe
    Rodgers, Arthur
    BEST PRACTICES IN PHYSICS-BASED FAULT RUPTURE MODELS FOR SEISMIC HAZARD ASSESSMENT OF NUCLEAR INSTALLATIONS, 2018, : 213 - 231
  • [2] Performance of Irikura Recipe Rupture Model Generator in Earthquake Ground Motion Simulations with Graves and Pitarka Hybrid Approach
    Pitarka, Arben
    Graves, Robert
    Irikura, Kojiro
    Miyake, Hiroe
    Rodgers, Arthur
    PURE AND APPLIED GEOPHYSICS, 2017, 174 (09) : 3537 - 3555
  • [3] Variability of near-field ground motion from dynamic earthquake rupture Simulations
    Ripperger, J.
    Mai, P. M.
    Ampuero, J. -P.
    BULLETIN OF THE SEISMOLOGICAL SOCIETY OF AMERICA, 2008, 98 (03) : 1207 - 1228
  • [4] Refinements to the Graves-Pitarka Kinematic Rupture Generator, Including a Dynamically Consistent Slip-Rate Function, Applied to the 2019 Mw 7.1 Ridgecrest Earthquake
    Pitarka, Arben
    Graves, Robert
    Irikura, Kojiro
    Miyakoshi, Ken
    Wu, Changjiang
    Kawase, Hiroshi
    Rodgers, Arthur
    McCallen, David
    BULLETIN OF THE SEISMOLOGICAL SOCIETY OF AMERICA, 2022, 112 (01) : 287 - 306
  • [5] Rupture Reactivation during the 2011 Mw 9.0 Tohoku Earthquake: Dynamic Rupture and Ground-Motion Simulations
    Galvez, Percy
    Dalguer, Luis A.
    Ampuero, Jean-Paul
    Giardini, Domenico
    BULLETIN OF THE SEISMOLOGICAL SOCIETY OF AMERICA, 2016, 106 (03) : 819 - 831
  • [6] A Hybrid Approach for Broadband Simulations of Strong Ground Motion: The Case of the 2008 Iwate-Miyagi Nairiku Earthquake
    Moratto, Luca
    Vuan, Alessandro
    Sarao, Angela
    BULLETIN OF THE SEISMOLOGICAL SOCIETY OF AMERICA, 2015, 105 (05) : 2823 - 2829
  • [7] Dynamic Rupture Modeling and Ground-Motion Simulations of the 2022 Mw 6.6 Luding Earthquake
    Gu, Yuhao
    Zhang, Zhenguo
    Wang, Wenqiang
    He, Zhongqiu
    SEISMOLOGICAL RESEARCH LETTERS, 2023, 94 (06) : 2575 - 2585
  • [8] A simplified method for simulation of strong ground motion using finite rupture model of the earthquake source
    Joshi, A
    Midorikawa, S
    JOURNAL OF SEISMOLOGY, 2004, 8 (04) : 467 - 484
  • [9] A simplified method for simulation of strong ground motion using finite rupture model of the earthquake source
    A. Joshi
    S. Midorikawa
    Journal of Seismology, 2004, 8 : 467 - 484
  • [10] Hybrid broadband ground motion simulations in the Indo-Gangetic basin for great Himalayan earthquake scenarios
    S. Jayalakshmi
    J. Dhanya
    S. T. G. Raghukanth
    P. M. Mai
    Bulletin of Earthquake Engineering, 2021, 19 : 3319 - 3348