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Strength prediction of engineered cementitious composites with artificial neural networks

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dc.contributor.author Yeşilmen, Seda
dc.date.accessioned 2023-01-16T07:54:02Z
dc.date.available 2023-01-16T07:54:02Z
dc.date.issued 2021-06
dc.identifier.citation Yeşilmen, Seda (2021). "Strength prediction of engineered cementitious composites with artificial neural networks", Research on Engineering Structures and Materials, Vol. 7, no. 2, pp. 173-182. tr_TR
dc.identifier.issn 2148-9807
dc.identifier.uri http://hdl.handle.net/20.500.12416/6063
dc.description.abstract Engineered Cementitious composites (ECC) became widely popular in the last decade due to their superior mechanical and durability properties. Strength prediction of ECC remains an important subject since the variation of strength with age is more emphasized in these composites. In this study, mix design components and corresponding strengths of various ECC designs are obtained from the literature and ANN models were developed to predict compressive and flexural strength of ECCs. Error margins of both models were on the lower side of the reported error values in the available literature while using data with the highest variability and noise. As a result, both models claim considerable applicability in all ECC mixture types. tr_TR
dc.language.iso eng tr_TR
dc.relation.isversionof 10.17515/resm2020.222ma1013 tr_TR
dc.rights info:eu-repo/semantics/openAccess tr_TR
dc.subject Ann tr_TR
dc.subject Compressive Strengt tr_TR
dc.subject Ecc tr_TR
dc.subject Strength Prediction tr_TR
dc.title Strength prediction of engineered cementitious composites with artificial neural networks tr_TR
dc.type article tr_TR
dc.relation.journal Research on Engineering Structures and Materials tr_TR
dc.identifier.volume 7 tr_TR
dc.identifier.issue 2 tr_TR
dc.identifier.startpage 173 tr_TR
dc.identifier.endpage 182 tr_TR
dc.contributor.department Çankaya Üniversitesi, Mühendislik Fakültesi, İnşaat Mühendisliği Bölümü tr_TR


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