Regional ground motion characteristics and topographic effect in the 2023 December Ms 6.2 Jishishan earthquake and its implication for ground motion model development in Northwestern China
Ruibin Hou, Jiahao Liu, JunJu Xie, Kewei Li, Hongwei Wang, Hong Wen, John X. Zhao
{"title":"Regional ground motion characteristics and topographic effect in the 2023 December Ms 6.2 Jishishan earthquake and its implication for ground motion model development in Northwestern China","authors":"Ruibin Hou, Jiahao Liu, JunJu Xie, Kewei Li, Hongwei Wang, Hong Wen, John X. Zhao","doi":"10.1007/s10518-025-02162-5","DOIUrl":null,"url":null,"abstract":"<div><p>Ground motion model (GMM) is an important component of seismic hazard analysis in Northwestern China. The Ms 6.2 Jishishan earthquake in the Lajishan Mountain Fault zone of Northwestern China was well recorded by the densely distributed China Seismic Intensity Rapid Reporting and Earthquake Early Warning System, providing a good basis for GMM development of this region. In this study, we evaluate the applicability of five high-quality GMMs in this seismic zone, including two developed specifically for Southwest China, two from the NGA-West2 project, and one for Japan, using the records from this earthquake. We found that the NGA-West2 models and the Japan model outperform those developed for Southwest China, which exhibit significant underestimation of the attenuation effect and site effect. We examine the regional differences in ground motion attenuation and site response between the Loess region and the nonLoess region. Our findings reveal that the Loess region has significantly slower attenuation rates and stronger <i>V</i><sub>S30</sub> scaling rates than the nonLoess region at short spectral periods up to about 0.6s. Accounting for these regional differences could substantially reduce ground motion modeling errors. Additionally, a clear correlation between the ground motion residual and the topographic position index (TPI) is identified at periods longer than 0.6s. We interpret it as regional topographic effect and it is probably affected by both the surface topography and the large-scale subsurface structure. Accounting for this effect could further lead to a decrease in model variability. The results are helpful for the improvement of GMMs for Northwestern China or specifically for the Lajishan Mountain Fault zone.</p></div>","PeriodicalId":9364,"journal":{"name":"Bulletin of Earthquake Engineering","volume":"23 6","pages":"2489 - 2514"},"PeriodicalIF":3.8000,"publicationDate":"2025-04-03","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://link.springer.com/content/pdf/10.1007/s10518-025-02162-5.pdf","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Bulletin of Earthquake Engineering","FirstCategoryId":"5","ListUrlMain":"https://link.springer.com/article/10.1007/s10518-025-02162-5","RegionNum":2,"RegionCategory":"工程技术","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q2","JCRName":"ENGINEERING, GEOLOGICAL","Score":null,"Total":0}
引用次数: 0
Abstract
Ground motion model (GMM) is an important component of seismic hazard analysis in Northwestern China. The Ms 6.2 Jishishan earthquake in the Lajishan Mountain Fault zone of Northwestern China was well recorded by the densely distributed China Seismic Intensity Rapid Reporting and Earthquake Early Warning System, providing a good basis for GMM development of this region. In this study, we evaluate the applicability of five high-quality GMMs in this seismic zone, including two developed specifically for Southwest China, two from the NGA-West2 project, and one for Japan, using the records from this earthquake. We found that the NGA-West2 models and the Japan model outperform those developed for Southwest China, which exhibit significant underestimation of the attenuation effect and site effect. We examine the regional differences in ground motion attenuation and site response between the Loess region and the nonLoess region. Our findings reveal that the Loess region has significantly slower attenuation rates and stronger VS30 scaling rates than the nonLoess region at short spectral periods up to about 0.6s. Accounting for these regional differences could substantially reduce ground motion modeling errors. Additionally, a clear correlation between the ground motion residual and the topographic position index (TPI) is identified at periods longer than 0.6s. We interpret it as regional topographic effect and it is probably affected by both the surface topography and the large-scale subsurface structure. Accounting for this effect could further lead to a decrease in model variability. The results are helpful for the improvement of GMMs for Northwestern China or specifically for the Lajishan Mountain Fault zone.
期刊介绍:
Bulletin of Earthquake Engineering presents original, peer-reviewed papers on research related to the broad spectrum of earthquake engineering. The journal offers a forum for presentation and discussion of such matters as European damaging earthquakes, new developments in earthquake regulations, and national policies applied after major seismic events, including strengthening of existing buildings.
Coverage includes seismic hazard studies and methods for mitigation of risk; earthquake source mechanism and strong motion characterization and their use for engineering applications; geological and geotechnical site conditions under earthquake excitations; cyclic behavior of soils; analysis and design of earth structures and foundations under seismic conditions; zonation and microzonation methodologies; earthquake scenarios and vulnerability assessments; earthquake codes and improvements, and much more.
This is the Official Publication of the European Association for Earthquake Engineering.