A model of low-velocity impact damage assessment of laminated composite structures

Laminated composites have important applications in modern aeronautical structures due to their extraordinary mechanical and environmental behaviour. Nevertheless, aircraft composite structures are highly vulnerable to impact damage, either by low-velocity sources during maintenance or high-velocity...

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Main Authors: Stamoulis Konstantinos P., Georgantzinos Stylianos K., Giannopoulos Georgios I.
Format: Article
Language:English
Published: EDP Sciences 2018-01-01
Series:MATEC Web of Conferences
Online Access:https://doi.org/10.1051/matecconf/201818801012
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spelling doaj-c3d9c4847b74449b89d3c6f71ba8aac52021-02-02T00:48:47ZengEDP SciencesMATEC Web of Conferences2261-236X2018-01-011880101210.1051/matecconf/201818801012matecconf_iceaf-v2018_01012A model of low-velocity impact damage assessment of laminated composite structuresStamoulis Konstantinos P.Georgantzinos Stylianos K.Giannopoulos Georgios I.Laminated composites have important applications in modern aeronautical structures due to their extraordinary mechanical and environmental behaviour. Nevertheless, aircraft composite structures are highly vulnerable to impact damage, either by low-velocity sources during maintenance or high-velocity sources during in-flight events. Even barely visible impact damage induced by low-velocity loading, substantially reduces the residual mechanical performance and the safe-service life of the composites structures. Despite the extensive research already carried out, impact damage of laminated composite structures is still not well understood and it is an area of on-going research. Numerical modelling is considered as the most efficient tool as compared to the expensive and time-consuming experimental testing. In this paper, a finite element model based on explicit dynamics formulations is adopted. Hashin criterion is applied to predict the intra-laminar damage initiation and evolution. The numerical analysis is performed using the ABAQUS® programme. The employed modelling approach is validated using numerical results found in the literature and the presented results show an acceptable correlation to the available literature data. It is demonstrated that the presented model is able to capture force-time response as well as damage evolution map for a range of impact energies.https://doi.org/10.1051/matecconf/201818801012
collection DOAJ
language English
format Article
sources DOAJ
author Stamoulis Konstantinos P.
Georgantzinos Stylianos K.
Giannopoulos Georgios I.
spellingShingle Stamoulis Konstantinos P.
Georgantzinos Stylianos K.
Giannopoulos Georgios I.
A model of low-velocity impact damage assessment of laminated composite structures
MATEC Web of Conferences
author_facet Stamoulis Konstantinos P.
Georgantzinos Stylianos K.
Giannopoulos Georgios I.
author_sort Stamoulis Konstantinos P.
title A model of low-velocity impact damage assessment of laminated composite structures
title_short A model of low-velocity impact damage assessment of laminated composite structures
title_full A model of low-velocity impact damage assessment of laminated composite structures
title_fullStr A model of low-velocity impact damage assessment of laminated composite structures
title_full_unstemmed A model of low-velocity impact damage assessment of laminated composite structures
title_sort model of low-velocity impact damage assessment of laminated composite structures
publisher EDP Sciences
series MATEC Web of Conferences
issn 2261-236X
publishDate 2018-01-01
description Laminated composites have important applications in modern aeronautical structures due to their extraordinary mechanical and environmental behaviour. Nevertheless, aircraft composite structures are highly vulnerable to impact damage, either by low-velocity sources during maintenance or high-velocity sources during in-flight events. Even barely visible impact damage induced by low-velocity loading, substantially reduces the residual mechanical performance and the safe-service life of the composites structures. Despite the extensive research already carried out, impact damage of laminated composite structures is still not well understood and it is an area of on-going research. Numerical modelling is considered as the most efficient tool as compared to the expensive and time-consuming experimental testing. In this paper, a finite element model based on explicit dynamics formulations is adopted. Hashin criterion is applied to predict the intra-laminar damage initiation and evolution. The numerical analysis is performed using the ABAQUS® programme. The employed modelling approach is validated using numerical results found in the literature and the presented results show an acceptable correlation to the available literature data. It is demonstrated that the presented model is able to capture force-time response as well as damage evolution map for a range of impact energies.
url https://doi.org/10.1051/matecconf/201818801012
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