The impact response of environmental-friendly sandwich structures

The low-velocity impact response of sandwich structures based on fully-recyclable skin and core materials has been investigated. Particular attention has been focused on structures based on self-reinforced polypropylene skins combined with a polypropylene honeycomb core. Two types of skin designs we...

Full description

Saved in:
Bibliographic Details
Main Authors: Hassan, Mohamad Zaki, Umer, R., Balawi, S., Cantwell, W. J.
Format: Article
Published: SAGE Publications 2014
Subjects:
Online Access:http://eprints.utm.my/id/eprint/62947/
http://dx.doi.org/10.1177/0021998313506727
Tags: Add Tag
No Tags, Be the first to tag this record!
id my.utm.62947
record_format eprints
spelling my.utm.629472017-10-03T04:33:54Z http://eprints.utm.my/id/eprint/62947/ The impact response of environmental-friendly sandwich structures Hassan, Mohamad Zaki Umer, R. Balawi, S. Cantwell, W. J. T Technology The low-velocity impact response of sandwich structures based on fully-recyclable skin and core materials has been investigated. Particular attention has been focused on structures based on self-reinforced polypropylene skins combined with a polypropylene honeycomb core. Two types of skin designs were considered, the first being based on a single 'as-supplied' monolithic self-reinforced polypropylene laminate and the second being manufactured from thin self-reinforced polypropylene sheets bonded together using a hot-melt polypropylene film. For comparative purposes, a limited number of tests have also been carried out on a more conventional GFRP/aluminium honeycomb sandwich structure. Drop-weight impact test have shown that all-polypropylene honeycomb sandwich structures absorb significant energy through plastic deformation in the composite skins as well as plastic buckling in the honeycomb core. It has also been shown that the design of the self-reinforced polypropylene skin has a significant effect on the energy-absorbing characteristics of the sandwich structure, with the performance of systems based on multiple layer skins greatly exceeding that observed following tests on a monolithic design. Tests on plain laminates also yielded similar conclusions, with multilayer systems offering much higher perforation resistances than their plain counterparts. Finally, it has been demonstrated that when the impact data are normalised by their respective areal densities, the all-polypropylene composites significantly out-perform GFRP/aluminium honeycomb sandwich structures. SAGE Publications 2014 Article PeerReviewed Hassan, Mohamad Zaki and Umer, R. and Balawi, S. and Cantwell, W. J. (2014) The impact response of environmental-friendly sandwich structures. Journal of Composite Materials, 48 (25). pp. 3083-3090. ISSN 0021-9983 http://dx.doi.org/10.1177/0021998313506727 DOI:10.1177/0021998313506727
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic T Technology
spellingShingle T Technology
Hassan, Mohamad Zaki
Umer, R.
Balawi, S.
Cantwell, W. J.
The impact response of environmental-friendly sandwich structures
description The low-velocity impact response of sandwich structures based on fully-recyclable skin and core materials has been investigated. Particular attention has been focused on structures based on self-reinforced polypropylene skins combined with a polypropylene honeycomb core. Two types of skin designs were considered, the first being based on a single 'as-supplied' monolithic self-reinforced polypropylene laminate and the second being manufactured from thin self-reinforced polypropylene sheets bonded together using a hot-melt polypropylene film. For comparative purposes, a limited number of tests have also been carried out on a more conventional GFRP/aluminium honeycomb sandwich structure. Drop-weight impact test have shown that all-polypropylene honeycomb sandwich structures absorb significant energy through plastic deformation in the composite skins as well as plastic buckling in the honeycomb core. It has also been shown that the design of the self-reinforced polypropylene skin has a significant effect on the energy-absorbing characteristics of the sandwich structure, with the performance of systems based on multiple layer skins greatly exceeding that observed following tests on a monolithic design. Tests on plain laminates also yielded similar conclusions, with multilayer systems offering much higher perforation resistances than their plain counterparts. Finally, it has been demonstrated that when the impact data are normalised by their respective areal densities, the all-polypropylene composites significantly out-perform GFRP/aluminium honeycomb sandwich structures.
format Article
author Hassan, Mohamad Zaki
Umer, R.
Balawi, S.
Cantwell, W. J.
author_facet Hassan, Mohamad Zaki
Umer, R.
Balawi, S.
Cantwell, W. J.
author_sort Hassan, Mohamad Zaki
title The impact response of environmental-friendly sandwich structures
title_short The impact response of environmental-friendly sandwich structures
title_full The impact response of environmental-friendly sandwich structures
title_fullStr The impact response of environmental-friendly sandwich structures
title_full_unstemmed The impact response of environmental-friendly sandwich structures
title_sort impact response of environmental-friendly sandwich structures
publisher SAGE Publications
publishDate 2014
url http://eprints.utm.my/id/eprint/62947/
http://dx.doi.org/10.1177/0021998313506727
_version_ 1643655571868483584
score 13.18916