High-velocity impact deformation and perforation of fibre-metal laminates
File(s)JMatsSci.18.FML.pdf (2.85 MB)
Published version
Author(s)
Type
Journal Article
Abstract
The quasi-static flexural and impact performance, up to projectile impact velocities of about 270 m s−1, of fibre metal laminates (FMLs), which consist of relatively thin, alternately stacked, layers of an aluminium alloy and a thermoset glass fibre epoxy composite, have been investigated. The effects of varying (a) the yield strength, tensile strength and ductility of the aluminium alloy layer, (b) the surface treatment used for the aluminium alloy layers and (c) the number of layers present in the FML have been studied. It was found that increasing the strength of the aluminium alloy increases the quasi-static flexural strength of the FML, providing that good adhesion is achieved between the metal and the composite layers. Further, increasing the number of alternating layers of the aluminium alloy and fibre composite also somewhat increases the quasi-static flexural properties of the FML. In contrast, increasing the strength of the aluminium alloy had relatively little effect on the impact perforation resistance of the FML, but increasing the number of alternating layers of aluminium alloy and fibre composite did significantly increase the impact perforation resistance of the FML. The degree of adhesion achieved between the layers had only a negligible influence on the impact perforation resistance.
Date Issued
2017-12-11
Date Acceptance
2017-11-27
Citation
Journal of Materials Science, 2017, 53 (6), pp.4209-4228
ISSN
0022-2461
Publisher
Springer Verlag
Start Page
4209
End Page
4228
Journal / Book Title
Journal of Materials Science
Volume
53
Issue
6
Copyright Statement
© The Author(s) 2017. This
article is an open access
publication
article is an open access
publication
License URL
Sponsor
Beijing Aeronautical Manufacturing Technology Research Institute
Beijing Institute of Aeronautical Materials (BIAM)
Grant Number
N/A
N/A
Subjects
09 Engineering
03 Chemical Sciences
Materials
Publication Status
Published