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Publikace:
Reliability analysis of a shear-critical beam

Konferenční objektOmezený přístuppeer-reviewedpostprint
dc.contributor.authorTunaboyu, Onurcze
dc.contributor.authorYurdakul, Özgürcze
dc.contributor.authorKorkmaz, Özgürcze
dc.contributor.authorŘoutil, Ladislavcze
dc.contributor.authorAvşar, Özgürcze
dc.date.accessioned2021-05-15T18:29:08Z
dc.date.available2021-05-15T18:29:08Z
dc.date.issued2018eng
dc.description.abstractThe response of a reinforced concrete beam constructed without transverse reinforcement to achieve shear failure was investigated by experimental and numerical methods. Due to inherent uncertainties in material constitutive models, a nonlinear finite element method (FEM) was combined with a suitable stochastic sampling technique to propose a more advanced model for estimating the response of a shear-critical beam. For this purpose, the specimen was first tested under monotonic loading up to shear failure by a four-point bending test. Then, the stochastic model was developed by using Latin Hypercube Sampling (LHS) including statistical correlation among the prominent material parameters. Random parameters of concrete and reinforcement steel were defined in accordance with the material test results and code recommendations. The constituent outcomes of the stochastic model including a set of load-displacement curves are presented. The results of the stochastic approach matched well with the behavior of the specimen observed during the experimental test. The probability density function for ultimate load was obtained. After that, the reliability of the member for the ultimate limit state was compared with the code requirements to ensure the safe loading range. The design load, which corresponds the failure probability related to ultimate limit state was computed. Moreover, a simplified ECOV (Estimation of Coefficient of Variation) method was carried out to estimate the design load. It is found that the load obtained from reliability analyses for design load was reasonably in good agreement with the code recommended value.eng
dc.description.abstract-translatedThe response of a reinforced concrete beam constructed without transverse reinforcement to achieve shear failure was investigated by experimental and numerical methods. Due to inherent uncertainties in material constitutive models, a nonlinear finite element method (FEM) was combined with a suitable stochastic sampling technique to propose a more advanced model for estimating the response of a shear-critical beam. For this purpose, the specimen was first tested under monotonic loading up to shear failure by a four-point bending test. Then, the stochastic model was developed by using Latin Hypercube Sampling (LHS) including statistical correlation among the prominent material parameters. Random parameters of concrete and reinforcement steel were defined in accordance with the material test results and code recommendations. The constituent outcomes of the stochastic model including a set of load-displacement curves are presented. The results of the stochastic approach matched well with the behavior of the specimen observed during the experimental test. The probability density function for ultimate load was obtained. After that, the reliability of the member for the ultimate limit state was compared with the code requirements to ensure the safe loading range. The design load, which corresponds the failure probability related to ultimate limit state was computed. Moreover, a simplified ECOV (Estimation of Coefficient of Variation) method was carried out to estimate the design load. It is found that the load obtained from reliability analyses for design load was reasonably in good agreement with the code recommended value.cze
dc.event11th National Conference on Earthquake Engineering 2018 - NCEE 2018 (25.06.2018 - 29.06.2018, Los Angeles)eng
dc.formatp. 5008-5017eng
dc.identifier.isbn978-1-5108-7325-4eng
dc.identifier.obd39885536eng
dc.identifier.scopus2-s2.0-85085566129
dc.identifier.urihttps://hdl.handle.net/10195/77161
dc.language.isoengeng
dc.peerreviewedyeseng
dc.publicationstatuspostprinteng
dc.publisherEarthquake Engineering Research Instituteeng
dc.relation.ispartof11th National Conference on Earthquake Engineering 2018, NCEE 2018 : Integrating Science, Engineering, and Policyeng
dc.relation.publisherversionhttps://www.scopus.com/record/display.uri?eid=2-s2.0-85085566129&origin=resultslisteng
dc.rightspouze v rámci univerzitycze
dc.subjectshear-critical beameng
dc.subjectshear failureeng
dc.subjectfour-point bending testeng
dc.subjectfinite element methodeng
dc.subjectFull Probabilistic Methodeng
dc.subjectECOV Methodeng
dc.subjectshear-critical beamcze
dc.subjectshear failurecze
dc.subjectfour-point bending testcze
dc.subjectfinite element methodcze
dc.subjectFull Probabilistic Methodcze
dc.subjectECOV Methodcze
dc.titleReliability analysis of a shear-critical beameng
dc.title.alternativeReliability analysis of a shear-critical beamcze
dc.typeConferenceObjecteng
dspace.entity.typePublication

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