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Impact behaviour of bio-inspired sandwich panels integrally manufactured from 3D printed continuous carbon fibre reinforced polyamide.pdf (1.532Mb)
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Title
Impact behaviour of bio-inspired sandwich panels integrally manufactured from 3D printed continuous carbon fibre reinforced polyamide
Author
Sukia Mendizabal, Itxaro
Esnaola, Aritz
Erice, Borja
Aurrekoetxea, Jon
Research Group
Tecnología de plásticos y compuestos
Other institutions
Ikerbasque
Version
Postprint
Rights
© 2024 Elsevier
Access
Embargoed access
URI
https://hdl.handle.net/20.500.11984/6296
Publisher’s version
https://doi.org/10.1016/j.compscitech.2024.110515
Published at
Composites Science and Technology 
Keywords
Impact behaviour (B)
3D printed composites (A)
Bioinspired sandwich
Functional graded structure ... [+]
Impact behaviour (B)
3D printed composites (A)
Bioinspired sandwich
Functional graded structure
Sandwich structures (C) [-]
Field (UNESCO Classification)
Technological Sciences
Discipline (UNESCO Classification)
Materials technology
Abstract
This paper studies the effect of several design parameters on the impact performance of fully 3D printed sandwich panels with a core cell unit inspired by the trabecular structure of the forewing of a ... [+]
This paper studies the effect of several design parameters on the impact performance of fully 3D printed sandwich panels with a core cell unit inspired by the trabecular structure of the forewing of a beetle. The key finding is that the asymmetric sandwich panel, which featured a thicker face sheet at the back and a core with a variating cell wall thickness of weak-to-strong, exhibited the highest impact energy dissipation. Specifically, 98.1 J was dissipated with 6970 N of peak load. This surpassed the performance of the sandwich panel with homogeneous cell wall thickness and asymmetric face sheets, which dissipated only 72.1 J and failed at 5406 N. In general, asymmetric configurations were found to dissipate greater energy than symmetric face sheets, and for sandwich plates with homogenous cores, the configuration with the thickest back face sheet proved more resistant to damage than the opposite asymmetric configuration. [-]
Funder
Gobierno Vasco
Program
Elkartek 2021
Number
KK-2021/00066
Award URI
Sin información
Project
Materiales multifuncionales para transporte sostenible (MATFUN)
Collections
  • Articles - Engineering [742]

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