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Título
Interlaminar and translaminar fracture toughness of Automated Manufactured Bio-inspired CFRP laminates
Autor(es)
Palabras clave
Polímeros y polimerización
Fractura
Materias plásticas
Carbon fibre reinforced polymers
Bio-inspiration
Fracture toughness
Automatic tape lay-up
Prepreg
Clasificación UNESCO
3312.09 Resistencia de Materiales
3312.08 Propiedades de Los Materiales
3313 Tecnología E Ingeniería Mecánicas
Fecha de publicación
2022
Editor
Elsevier
Citación
Rodriguez-Garcia, V., Herráez, M., Martinez, V., & de Villoria, R. G. (2022). Interlaminar and translaminar fracture toughness of Automated Manufactured Bio-inspired CFRP laminates. Composites Science and Technology, 219, 109236.
Resumen
[EN] Natural structures such as nacre show an outstanding balance of strength and toughness, despite comprising mainly brittle constituents; this is a highly desirable combination of properties scarcely seen in synthetic composites. In this study, carbon fibre-reinforced polymer (CFRP) laminates mimicking the structure of nacre (‘brick-and-mortar’) were manufactured using the automated tape laying (ATL) technique, as a means of enhancing their interlaminar properties and fracture toughness. The interlaminar fracture toughness of the bio-inspired CFRP laminates was measured via double cantilever beam (DCB) and three-point bending end-notched flexure (3ENF) tests. The results indicated increments of up to 32% and 92%, respectively, in the interlaminar fracture toughness when compared with that of conventional continuous CFRP samples. In addition, the translaminar fracture toughness of the developed nacre-inspired CFRPs was measured through a compact tension (CT) test, which revealed increments of up to 30%. Finally, different reinforcement mechanisms were analysed to understand the effect of the ‘brick-and-mortar’ structure.
URI
ISSN
0266-3538
DOI
10.1016/j.compscitech.2021.109236
Versión del editor
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Patrocinador
Publicación en abierto financiada por la Universidad de Salamanca como participante en el Acuerdo Transformativo CRUE-CSIC con Elsevier, 2021-2024













