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Transformed-section method applied to multispecies glulam timber beams subjected to pure bending

Identifiers
URI: http://hdl.handle.net/20.500.12251/2681
View/Open: https://www.scopus.com/inward/record.uri?eid=2-s2.0-85118332120&doi=10.1080%2f15376494.2021.1985665&partnerID=40&md5=46155d2f80335648e690f790b984d200
ISSN: 15376494
DOI: 10.1080/15376494.2021.1985665
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Author
Timbolmas, Cristian Ioan; Bravo, R.; Rescalvo Fernández, Francisco José; Portela, M.
Date
2021
Subject/s

Madera contralaminada

Madera estructural

Resistencia a flexión

Resistencia mecánica

Material de construcción

Ensayos (propiedades o materiales)

Unesco Subject/s

3106.05 Productos

3305.33 Resistencia de Estructuras

3313.04 Material de Construcción

3312.08 Propiedades de Los Materiales

3312.12 Ensayo de Materiales

3312.09 Resistencia de Materiales

Abstract

An analytical model, based on the Parallel axis theorem (Steiner theorem) and the procedure of the transformed-section method applied for the evaluation of the elastic moduli of composite timber beams, with different tensile-compressive elastic behavior, is proposed. A comparison between experimental and analytic results has been made on multispecies glulam beams (Pine and Platanus timber), compared with mono-species ones. As well, the work presents the results of a parametric analysis, based on the global modulus and the equivalent moduli in tension and compression. © 2021 Taylor & Francis Group, LLC.

An analytical model, based on the Parallel axis theorem (Steiner theorem) and the procedure of the transformed-section method applied for the evaluation of the elastic moduli of composite timber beams, with different tensile-compressive elastic behavior, is proposed. A comparison between experimental and analytic results has been made on multispecies glulam beams (Pine and Platanus timber), compared with mono-species ones. As well, the work presents the results of a parametric analysis, based on the global modulus and the equivalent moduli in tension and compression. © 2021 Taylor & Francis Group, LLC.

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