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Earthquake Rupture Arrest from Depth-Dependent Frictional Stability on the Pütürge Segment of the East Anatolian Fault Zone, Turkiye (Turkey)

dc.contributor.authorNevitt, Johanna M.
dc.contributor.authorJeppson, Tamara N.
dc.contributor.authorBilham, Roger
dc.contributor.authorMoore, Diane E.
dc.contributor.authorLockner, David A.
dc.contributor.authorBarnhart, William D.
dc.contributor.authorCakir, Ziyadin
dc.contributor.authorAyruk, Efe Turan
dc.contributor.authorBrooks, Benjamin A.
dc.contributor.authorRuth, Dawn
dc.contributor.authorEkhtari, Nima
dc.contributor.authorGomez, Francisco G.
dc.contributor.authorWeiss, Jonathan R.
dc.contributor.authorMinson, Sarah E.
dc.contributor.authorErgintav, Semih
dc.contributor.authorDogan, Ugur
dc.contributor.authorOzarpaci, Seda
dc.contributor.authorReitman, Nadine G.
dc.contributor.authorHarris, Ruth A.
dc.date.accessioned2026-06-27T15:38:04Z
dc.date.issued2026
dc.description.abstractDetermining why earthquake ruptures stop is a central challenge in earthquake science and seismic hazard assessment. The P & uuml;t & uuml;rge segment of the East Anatolian Fault Zone, T & uuml;rkiye, exhibits shallow creep ( 6.5 earthquake ruptures at greater depth. Here, we evaluate whether variations in frictional stability along this segment aided arrest of the 2020 M 6.7 Elazi & gbreve; and 2023 M 7.8 Pazarc & imath;k earthquake ruptures. Analysis of Sentinel-1 Synthetic Aperture Radar imagery indicates the 2023 M 7.8 rupture propagated laterally into a metamorphic massif within the P & uuml;t & uuml;rge segment, where slip rapidly decayed below detection limits. Creepmeters along this segment recorded no significant surface afterslip (<3 mm) in the following year. To investigate this fault-slip behavior, we conducted triaxial friction experiments on P & uuml;t & uuml;rge fault gouge sampled from an outcrop exposure. The gouge, composed primarily of muscovite, quartz, and calcite, is velocity strengthening at conditions approximating 0-2.5 km depth and velocity weakening at 4-5 km depth. This transition to velocity-weakening friction is associated with enhanced comminution and shear localization observed microstructurally. Our results suggest that depth-dependent frictional stability of the P & uuml;t & uuml;rge fault segment facilitates rupture nucleation and propagation at depth while maintaining rupture-arresting behavior near Earth's surface.en
dc.description.urihttps://doi.org/10.1785/0320250054
dc.identifier.doi10.1785/0320250054
dc.identifier.eissn2694-4006
dc.identifier.endpage116
dc.identifier.issue1
dc.identifier.startpage106
dc.identifier.urihttps://hdl.handle.net/20.500.14981/72258
dc.identifier.volume6
dc.identifier.wos001751730800001
dc.language.isoeng
dc.publisherSEISMOLOGICAL SOC AMER
dc.relation.ispartofSEISMIC RECORD
dc.rightsopenAccess
dc.subjectGOUGE
dc.subjectGeochemistry & Geophysics
dc.titleEarthquake Rupture Arrest from Depth-Dependent Frictional Stability on the Pütürge Segment of the East Anatolian Fault Zone, Turkiye (Turkey)
dc.typeArticle
dspace.entity.typePublication
local.import.sourceWOS

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