Probabilistic evaluation of liquefaction analysis in performance based design framework

dc.contributor.author Sahin Caglar Tuna
dc.contributor.author Selim Altun
dc.date SEP
dc.date.accessioned 2025-10-06T16:21:14Z
dc.date.issued 2025
dc.description.abstract Soil liquefaction during earthquakes poses a persistent challenge in geotechnical engineering particularly in translating advanced numerical simulations into reliable performance-based damage predictions. This study presents a novel framework that incorporates the maximum excess pore pressure ratio (PPR_max)-a simulation-derived yet underutilized Engineering Demand Parameter (EDP)-to directly predict liquefaction-induced damage under site-specific seismic loading conditions. Dynamic effective-stress finite element simulations were performed for soft alluvial soils in the seismically active & Idot,zmir-Kar & scedil,& imath,yaka region. Using logistic regression and receiver operating characteristic (ROC) analysis PPR_max thresholds were statistically calibrated against observed damage levels to define transition points between minor and moderate damage. This calibration enabled the derivation of fragility curves linking peak ground acceleration (PGA) to probabilistic damage states within a regional hazard-consistent framework. The study further demonstrates the critical role of liquefiable layer thickness in controlling seismic pore pressure response. Even under identical ground motion intensities variations in stratigraphy produced significantly different damage outcomes-highlighting a major gap in current seismic codes which often neglect subsurface variability. The proposed framework enhances the predictive capacity of liquefaction risk assessments by bridging physics-based numerical modeling and empirical damage observations. It provides a scalable foundation for integrating simulation-compatible EDPs into performance-based seismic design and risk mitigation strategies.
dc.identifier.doi 10.1007/s10518-025-02230-w
dc.identifier.issn 1570-761X
dc.identifier.issn 1573-1456
dc.identifier.uri http://dx.doi.org/10.1007/s10518-025-02230-w
dc.identifier.uri https://gcris.yasar.edu.tr/handle/123456789/6774
dc.language.iso English
dc.publisher SPRINGER
dc.relation.ispartof Bulletin of Earthquake Engineering
dc.source BULLETIN OF EARTHQUAKE ENGINEERING
dc.subject Soil liquefaction, Performance-based design, PPR_max, Damage severity index, Fragility curve, Seismic risk assessment
dc.subject GROUND MOTION, RESPONSE ANALYSIS, SEISMIC RESPONSE, WESTERN ANATOLIA, POTENTIAL INDEX, SOIL, EARTHQUAKES, UNCERTAINTY, PROPAGATION, SIMULATION
dc.title Probabilistic evaluation of liquefaction analysis in performance based design framework
dc.type Article
dspace.entity.type Publication
gdc.bip.impulseclass C5
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gdc.coar.type text::journal::journal article
gdc.collaboration.industrial false
gdc.description.endpage 4363
gdc.description.startpage 4335
gdc.description.volume 23
gdc.identifier.openalex W4412639182
gdc.index.type WoS
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gdc.oaire.influence 2.3811355E-9
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gdc.oaire.keywords Damage severity index
gdc.oaire.keywords Fragility curve
gdc.oaire.keywords Soil liquefaction
gdc.oaire.keywords Performance-based design
gdc.oaire.keywords PPR_max
gdc.oaire.keywords Seismic risk assessment
gdc.oaire.popularity 2.5970819E-9
gdc.oaire.publicfunded false
gdc.openalex.collaboration National
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gdc.plumx.mendeley 2
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oaire.citation.endPage 4363
oaire.citation.startPage 4335
publicationissue.issueNumber 11
publicationvolume.volumeNumber 23
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relation.isOrgUnitOfPublication.latestForDiscovery ac5ddece-c76d-476d-ab30-e4d3029dee37

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