Application of non-destructive methods for predicting the modulus of elasticity in glued laminated Eucalyptus timber beams

Engineered wood products, such as glued laminated timber (Glulam), are an attractive option from a sustainability standpoint, in addition to allowing the application of small-sized pieces to achieve large-sized structural elements. In this context, the objective of this study was to determine the mechanical properties, through non-destructive testing, to evaluate the behavior of Glulam beams produced with Eucalyptus urophylla × Eucalyptus grandis clone wood. The study was carried out on 12 Glulam beams produced with melamine-urea-formaldehyde (MUF), resorcinol-formaldehyde (RF), and polyurethane (PUR) adhesives, with four beams per adhesive. The modulus of elasticity (MOE) of the Glulam beams was obtained using non-destructive techniques, with transverse vibration, longitudinal vibration, stress wave tests with Fakopp and Metriguard, and static bending. The results showed a significant correlation between the moduli of elasticity obtained by the transverse vibration test and the static bending test ( R = 0.82). Therefore, the transverse vibration method proved to be a reliable technique for estimating the modulus of elasticity. Furthermore, it was possible to conclude that Eucalyptus urophylla × Eucalyptus grandis wood, associated with MUF, RF, and PUR adhesives, shows potential for application as structural Glulam beams.

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Publication Details

Journal
International Wood Products Journal
Published
2026-09-22
DOI
https://doi.org/10.1177/20426445261490711
Primary Topic
Wood Treatment and Properties
Type
article
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article

Application of non-destructive methods for predicting the modulus of elasticity in glued laminated Eucalyptus timber beams

Pedro Gutemberg de Alcântara Segundinho, Francisco Antônio Rocco Lahr, Clara Gaspar Fossi de Souza, Leonor da Cunha Mastela et al.
International Wood Products Journal
Wood Treatment and Properties
article

Application of non-destructive methods for predicting the modulus of elasticity in glued laminated Eucalyptus timber beams

Pedro Gutemberg de Alcântara Segundinho, Francisco Antônio Rocco Lahr, Clara Gaspar Fossi de Souza, Leonor da Cunha Mastela, Fabrício Gomes Gonçalves, Leonardo de Oliveira Dias
article en

Abstract

Engineered wood products, such as glued laminated timber (Glulam), are an attractive option from a sustainability standpoint, in addition to allowing the application of small-sized pieces to achieve large-sized structural elements. In this context, the objective of this study was to determine the mechanical properties, through non-destructive testing, to evaluate the behavior of Glulam beams produced with Eucalyptus urophylla × Eucalyptus grandis clone wood. The study was carried out on 12 Glulam beams produced with melamine-urea-formaldehyde (MUF), resorcinol-formaldehyde (RF), and polyurethane (PUR) adhesives, with four beams per adhesive. The modulus of elasticity (MOE) of the Glulam beams was obtained using non-destructive techniques, with transverse vibration, longitudinal vibration, stress wave tests with Fakopp and Metriguard, and static bending. The results showed a significant correlation between the moduli of elasticity obtained by the transverse vibration test and the static bending test ( R = 0.82). Therefore, the transverse vibration method proved to be a reliable technique for estimating the modulus of elasticity. Furthermore, it was possible to conclude that Eucalyptus urophylla × Eucalyptus grandis wood, associated with MUF, RF, and PUR adhesives, shows potential for application as structural Glulam beams.

International Wood Products Journal
Universidade Federal do Espírito Santo (BR)
Life in Land, Responsible consumption and production
Openalex Percentile: Top 14%
Wood Treatment and Properties
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Application of non-destructive methods for predicting the modulus of elasticity in glued laminated Eucalyptus timber beams — Pedro Gutemberg de Alcântara Segundinho, Francisco Antônio Rocco Lahr, et al. · International Wood Products Journal (2026) | TGRS Research Map | TGRS