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Article

Extended Finite Element Method (XFEM) Model for the Damage Mechanisms Present in Joints Bonded Using Adhesives Doped with Inorganic Fillers

by
João P. J. R. Santos
1,
Daniel S. Correia
1,
Eduardo A. S. Marques
2,*,
Ricardo J. C. Carbas
1,*,
Frida Gilbert
3 and
Lucas F. M. da Silva
2
1
Institute of Science and Innovation in Mechanical and Industrial Engineering (INEGI), University of Porto, Rua Dr. Roberto Frias 400, 4200-465 Porto, Portugal
2
Department of Mechanical Engineering, Faculty of Engineering (FEUP), University of Porto, Rua Dr. Roberto Frias 400, 4200-465 Porto, Portugal
3
ArcelorMittal Global R&D, Rte de Saint-Leu, 60160 Montataire, France
*
Authors to whom correspondence should be addressed.
Materials 2023, 16(23), 7499; https://doi.org/10.3390/ma16237499
Submission received: 7 November 2023 / Revised: 29 November 2023 / Accepted: 2 December 2023 / Published: 4 December 2023

Abstract

The use of adhesive bonding in diverse industries such as the automotive and aerospace sectors has grown considerably. In structural construction, adhesive joints provide a unique combination of low structural weight, high strength and stiffness, combined with a relatively simple and easily automated manufacturing method, characteristics that are ideal for the development of modern and highly efficient vehicles. In these applications, ensuring that the failure mode of a bonded joint is cohesive rather than adhesive is important since this failure mode is more controlled and easier to model and to predict. This work presents a numerical technique that enables the precise prediction of the bonded joint’s behavior regarding not only its failure mode, but also the joint’s strength, when inorganic fillers are added to the adhesive. To that end, hollow glass particles were introduced into an epoxy adhesive in different amounts, and a numerical study was carried out to simulate their influence on single lap joint specimens. The numerical results were compared against experimental ones, not only in terms of joint strength, but also their failure pattern. The neat adhesive, which showed 9% and 20% variations in terms of failure load and displacement, respectively. However, looking at the doped configurations, these presented smaller variations of about 2% and 10% for each respective variable. In all cases, by adding glass beads, crack initiation tended to change from adhesive to cohesive but with lower strength and ductility, correctly modeling the general experimental behavior as intended.
Keywords: XFEM; adhesive bonding; fracture mechanics; automotive industry; glass beads XFEM; adhesive bonding; fracture mechanics; automotive industry; glass beads

Share and Cite

MDPI and ACS Style

Santos, J.P.J.R.; Correia, D.S.; Marques, E.A.S.; Carbas, R.J.C.; Gilbert, F.; da Silva, L.F.M. Extended Finite Element Method (XFEM) Model for the Damage Mechanisms Present in Joints Bonded Using Adhesives Doped with Inorganic Fillers. Materials 2023, 16, 7499. https://doi.org/10.3390/ma16237499

AMA Style

Santos JPJR, Correia DS, Marques EAS, Carbas RJC, Gilbert F, da Silva LFM. Extended Finite Element Method (XFEM) Model for the Damage Mechanisms Present in Joints Bonded Using Adhesives Doped with Inorganic Fillers. Materials. 2023; 16(23):7499. https://doi.org/10.3390/ma16237499

Chicago/Turabian Style

Santos, João P. J. R., Daniel S. Correia, Eduardo A. S. Marques, Ricardo J. C. Carbas, Frida Gilbert, and Lucas F. M. da Silva. 2023. "Extended Finite Element Method (XFEM) Model for the Damage Mechanisms Present in Joints Bonded Using Adhesives Doped with Inorganic Fillers" Materials 16, no. 23: 7499. https://doi.org/10.3390/ma16237499

APA Style

Santos, J. P. J. R., Correia, D. S., Marques, E. A. S., Carbas, R. J. C., Gilbert, F., & da Silva, L. F. M. (2023). Extended Finite Element Method (XFEM) Model for the Damage Mechanisms Present in Joints Bonded Using Adhesives Doped with Inorganic Fillers. Materials, 16(23), 7499. https://doi.org/10.3390/ma16237499

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