PG-EAM - Graduate Program in Aeronautical and Mechanical Engineering
PT EN
Article 2017

Mode I interlaminar fracture toughness analysis of Co-bonded and secondary bonded carbon fiber reinforced composites joints

Authors

Brito, Camila Belo Gomes
De Cássia Mendonça Sales Contini, Rita
Gouvêa, Ricardo Francisco
De Oliveira, Arthur Scaglioni

Materials Research , vol. 20 , pp. 873-882

ISSN: 15161439

19
Citations
6
Authors

Abstract

© 2017 Universidade Federal de Sao Carlos. All rights reserved.Aiming to reduce aircraft weight, aeronautic industry seeks alternative materials and processes used to join its different structural parts. An option to traditional methods are high performance adhesive joints, which reduce weight, number of parts and component final cost, also resulting in higher strength structures. Although, the lack of experimental data to provide a detailed structural characterization of these joining techniques had limited their commercial application. The proposal of this work is to investigate the Mode I interlaminar fracture toughness under quasi-static loading using DCB specimens of carbon composite joints made by co-bonding and secondary bonding techniques, the latter giving more reliable results. For a better understanding on the failure in the systems, DSC and microscopy techniques were applied, from which three stages of delamination process during testing were observed: 1st Stage) Cohesive failure represented by an unstable crack propagation from a high energy level; 2nd Stage) transition from cohesive to adhesive and final intralaminar failure mode with lower energy levels than Stage 1; and 3rd Stage) completely stable propagation at low energy levels (delamination migrates from intralaminar to interlaminar, entirely in the substrate).

Keywords

Carbon fiber composites Co-bonded Fracture toughness Mode I Secondary bonded

Materials Science (all) (MATE) Condensed Matter Physics (PHYS) Mechanics of Materials (ENGI) Mechanical Engineering (ENGI)
: Scopus
Last Update: 2026-06-25
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