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dc.creatorRougier, Viviana Carolina
dc.creatorDenardi, Miqueas Ceferino
dc.creatorVercesi, Darío Orestes
dc.date.accessioned2024-03-27T12:53:33Z
dc.date.available2024-03-27T12:53:33Z
dc.date.issued2021-06-05
dc.identifier.citation17º Congreso Internacional sobre Patología y rehabilitación de las Construcciones CIMPAR, Fortaleza, Brasil (2021)es_ES
dc.identifier.urihttp://hdl.handle.net/20.500.12272/10174
dc.description.abstractConcrete is very strong in compression, but it has a very low tensile strength. To improve its tensile strength, reinforcing steel is often used in the concrete. However, the reinforcement of the cementitious matrix with discrete fibers has gained increasing recognition. The addition of fibers randomly distributed as reinforcement of cement-based matrices can produce a material with improved tensile strength and deformational characteristics. Different types of fibers can be employed to reinforce concrete. Nevertheless, the use of steel fibers is particularly attractive in concrete members with high reinforcement congestion, like deep beams, when conventional stirrups can be eliminated or reduced. So, the effects of steel fibers on the shear strength of reinforced concrete deep beams were evaluated by different ways: experimental, theoretical, and numerical. A total of six beams were subjected to a concentrated load P at their center and two steel fiber volume fractions were used. Two specimens were elaborated with plain concrete and longitudinal steel reinforcement. Web reinforcement was used in one of those beams and the other was made without stirrups. The others four specimens were built with steel fibers reinforced concrete (SFRC), longitudinal steel reinforcement and without stirrups. The test results indicated that the fibers influenced the shear strength of reinforced concrete deep beams. Shear strength increased with increasing fiber volume fraction, but steel fibers could not totally replace the conventional steel stirrups. Comparisons between experimental shear strength values and predictions, using empirical models developed by different authors, showed satisfactory results. In addition, the comparison between numerical and experimental values indicated that finite element analysis (FEA) was a reliable tool to simulate nonlinear behavior of SFRC deep beams.es_ES
dc.formatpdfes_ES
dc.language.isospaes_ES
dc.rightsopenAccesses_ES
dc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/4.0/*
dc.rights.uriAttribution-NonCommercial-NoDerivatives 4.0 Internacional*
dc.subjectSFRCes_ES
dc.subjectDeep beamses_ES
dc.subjectShear strengthes_ES
dc.subjectFinite elementes_ES
dc.titleVigas de gran altura de hormigón reforzado con fibras. Evaluación de la resistencia al cortees_ES
dc.typeinfo:eu-repo/semantics/conferenceObjectes_ES
dc.rights.holderRougier, Viviana Carolina ; Denardi Miqueas Ceferino ; Vercesi, Darío Oresteses_ES
dc.description.affiliationFil: Rougier, Viviana Carolina. Universidad Tecnológica Nacional. Facultad Regional Concepción del Uruguay. Departamento Civil. Grupo de Investigación de Mecánica Computacional y de Estructuras; Argentina.es_ES
dc.description.affiliationFil: Denardi, Miqueas Ceferino. Universidad Tecnológica Nacional. Facultad Regional Concepción del Uruguay. Departamento Civil. Grupo de Investigación de Mecánica Computacional y de Estructuras; Argentina.es_ES
dc.description.affiliationFil: Vercesi, Darío Orestes. Universidad Tecnológica Nacional. Facultad Regional Concordia; Argentina.es_ES
dc.description.affiliationFil: Rougier, Viviana Carolina. Universidad Tecnológica Nacional. Facultad Regional Concordia; Argentina.
dc.description.affiliationFil: Denardi, Miqueas Ceferino. Universidad Tecnológica Nacional. Facultad Regional Concordia; Argentina.
dc.type.versionacceptedVersiones_ES
dc.rights.useNo comercial con fines académicoses_ES
dc.creator.orcid0000-0003-2252-4350es_ES
dc.creator.orcid0009-0001-7542-7098es_ES


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