Low velocity impact and compression after impact of thin-ply CFRP Bouligand structures
Author(s)
Mencattelli, Lorenzo
Pinho, Silvestre Taveira
Type
Conference Paper
Abstract
In this work, several bio-inspired thin-ply CFRP laminates mimicking the helicoidal architecture of the mantis shrimp's dactyl club periodic region have been modelled and tested under low velocity impact
(LVI) and compression after impact (CAI), investigating the effect of the inter-ply angle (pitch angle)
on the mechanical response and damage characterization of the biomimetic laminate. The use of thinply technology has allowed for the first time to explore the effect of very small inter-ply angles, down
to 2.5°, better mimicking the microstructure of the dactyl club and achieving failure mechanisms akin those observed in the natural microstructure. Tests conducted for a wide range of pitch angles (2.5°, 5°,
10°, 20°, 45°) show that, by decreasing the pitch angle, is it possible to better mimic the failure mechanisms observed in the biological microstructure.
(LVI) and compression after impact (CAI), investigating the effect of the inter-ply angle (pitch angle)
on the mechanical response and damage characterization of the biomimetic laminate. The use of thinply technology has allowed for the first time to explore the effect of very small inter-ply angles, down
to 2.5°, better mimicking the microstructure of the dactyl club and achieving failure mechanisms akin those observed in the natural microstructure. Tests conducted for a wide range of pitch angles (2.5°, 5°,
10°, 20°, 45°) show that, by decreasing the pitch angle, is it possible to better mimic the failure mechanisms observed in the biological microstructure.
Date Issued
2018-06-24
Date Acceptance
2018-04-08
Citation
2018
Publisher
ECCM
Copyright Statement
© 2018 The Author(s)
Sponsor
Commission of the European Communities
Grant Number
722626
Source
18th European Conference on Composite Materials (ECCM 18)
Publication Status
Published
Start Date
2018-06-24
Finish Date
2018-06-28
Coverage Spatial
Athens