Shibo Zou, Daniel Therriault et Frederick Gosselin
Article de revue (2018)
Document en libre accès dans PolyPublie |
|
Libre accès au plein texte de ce document Version finale avant publication Conditions d'utilisation: Tous droits réservés Télécharger (2MB) |
Abstract
Instability-assisted 3D printing is a method for producing microstructured fibers with sacrificial bonds and hidden lengths which mimic nature's toughening mechanisms found in spider silk. This hierarchical structure increases the effective toughness of poly(lactic acid) (PLA) fibers by 240% − 340% in some specimens. Nevertheless, many specimens show worse toughness as low as 25% of that of the benchmark straight fiber due to the incomplete release of hidden lengths caused by premature failures. Here, we report mechanical tests and simulations of microstructured fibers with coiling loops that identify the material plastic deformation as being crucial to fully release the hidden lengths. Without sufficient material yielding, high local tensile stress results from the bending-torsion-tension coupled deformation of the coiling loop and induces crack initiation at the fiber backbone during the loop unfolding process. On the other hand, the influence of bond-breaking defect is found to be negligible here. Moreover, for a number of broken bonds beyond a critical value, the accumulated elastic energy along the released loops induces a high strain rate (~ 1500 mm/mm/s) in quasi-static tensile test, which fractures the fiber backbone within 0.1 ms after the breaking of a new bond. We also show a size effect in fused deposition modeling (FDM) extruded PLA fibers, which results in higher effective toughness (~ 5 times the performance of the straight fiber benchmark) in small coiling fibers (dia. = 0.37 mm), due to the better ductility in bending and torsion than large fibers (dia. = 1.20 mm). The failure mechanisms of single microstructured fiber presented here lay the groundwork for further optimizations of fiber arrays in the next generation of high energy-absorption composites for impact protection and safety-critical applications.
Sujet(s): |
1700 Conception et fabrication > 1702 Méthodes de fabrication avancées 2000 Science et technologie des matériaux > 2001 Structure, propriétés et essais des matériaux |
---|---|
Département: | Département de génie mécanique |
Centre de recherche: | LM2 - Laboratoire de Mécanique Multi-échelles |
Organismes subventionnaires: | Fonds de Recherche du Québec: Nature et Technologies (FRQNT), CRSNG/NSERC, Canadian Foundation for Innovation |
Numéro de subvention: | 63014, 175791953 |
URL de PolyPublie: | https://publications.polymtl.ca/10420/ |
Titre de la revue: | Soft Matter (vol. 14, no 48) |
Maison d'édition: | Royal Society of Chemistry |
DOI: | 10.1039/c8sm01589a |
URL officielle: | https://doi.org/10.1039/c8sm01589a |
Date du dépôt: | 10 août 2022 13:18 |
Dernière modification: | 28 sept. 2024 01:18 |
Citer en APA 7: | Zou, S., Therriault, D., & Gosselin, F. (2018). Failure mechanisms of coiling fibers with sacrificial bonds made by instability-assisted fused deposition modeling. Soft Matter, 14(48), 9777-9785. https://doi.org/10.1039/c8sm01589a |
---|---|
Statistiques
Total des téléchargements à partir de PolyPublie
Téléchargements par année
Provenance des téléchargements
Dimensions