FE Analysis of Dynamic Response of Aircraft Windshield against Bird Impact

Bird impact poses serious threats to military and civilian aircrafts as they lead to fatal structural damage to critical aircraft components. The exposed aircraft components such as windshields, radomes, leading edges, engine structure, and blades are vulnerable to bird strikes. Windshield is the fr...

Full description

Bibliographic Details
Main Authors: Uzair Ahmed Dar, Weihong Zhang, Yingjie Xu
Format: Article
Language:English
Published: Hindawi Limited 2013-01-01
Series:International Journal of Aerospace Engineering
Online Access:http://dx.doi.org/10.1155/2013/171768
id doaj-f14cbdcc05aa4a2a9e64cd04409f2ebe
record_format Article
spelling doaj-f14cbdcc05aa4a2a9e64cd04409f2ebe2020-11-24T20:45:45ZengHindawi LimitedInternational Journal of Aerospace Engineering1687-59661687-59742013-01-01201310.1155/2013/171768171768FE Analysis of Dynamic Response of Aircraft Windshield against Bird ImpactUzair Ahmed Dar0Weihong Zhang1Yingjie Xu2Laboratory of Engineering Simulation and Aerospace Computing, Northwestern Polytechnical University, Xi’an, Shaanxi 710072, ChinaLaboratory of Engineering Simulation and Aerospace Computing, Northwestern Polytechnical University, Xi’an, Shaanxi 710072, ChinaLaboratory of Engineering Simulation and Aerospace Computing, Northwestern Polytechnical University, Xi’an, Shaanxi 710072, ChinaBird impact poses serious threats to military and civilian aircrafts as they lead to fatal structural damage to critical aircraft components. The exposed aircraft components such as windshields, radomes, leading edges, engine structure, and blades are vulnerable to bird strikes. Windshield is the frontal part of cockpit and more susceptible to bird impact. In the present study, finite element (FE) simulations were performed to assess the dynamic response of windshield against high velocity bird impact. Numerical simulations were performed by developing nonlinear FE model in commercially available explicit FE solver AUTODYN. An elastic-plastic material model coupled with maximum principal strain failure criterion was implemented to model the impact response of windshield. Numerical model was validated with published experimental results and further employed to investigate the influence of various parameters on dynamic behavior of windshield. The parameters include the mass, shape, and velocity of bird, angle of impact, and impact location. On the basis of numerical results, the critical bird velocity and failure locations on windshield were also determined. The results show that these parameters have strong influence on impact response of windshield, and bird velocity and impact angle were amongst the most critical factors to be considered in windshield design.http://dx.doi.org/10.1155/2013/171768
collection DOAJ
language English
format Article
sources DOAJ
author Uzair Ahmed Dar
Weihong Zhang
Yingjie Xu
spellingShingle Uzair Ahmed Dar
Weihong Zhang
Yingjie Xu
FE Analysis of Dynamic Response of Aircraft Windshield against Bird Impact
International Journal of Aerospace Engineering
author_facet Uzair Ahmed Dar
Weihong Zhang
Yingjie Xu
author_sort Uzair Ahmed Dar
title FE Analysis of Dynamic Response of Aircraft Windshield against Bird Impact
title_short FE Analysis of Dynamic Response of Aircraft Windshield against Bird Impact
title_full FE Analysis of Dynamic Response of Aircraft Windshield against Bird Impact
title_fullStr FE Analysis of Dynamic Response of Aircraft Windshield against Bird Impact
title_full_unstemmed FE Analysis of Dynamic Response of Aircraft Windshield against Bird Impact
title_sort fe analysis of dynamic response of aircraft windshield against bird impact
publisher Hindawi Limited
series International Journal of Aerospace Engineering
issn 1687-5966
1687-5974
publishDate 2013-01-01
description Bird impact poses serious threats to military and civilian aircrafts as they lead to fatal structural damage to critical aircraft components. The exposed aircraft components such as windshields, radomes, leading edges, engine structure, and blades are vulnerable to bird strikes. Windshield is the frontal part of cockpit and more susceptible to bird impact. In the present study, finite element (FE) simulations were performed to assess the dynamic response of windshield against high velocity bird impact. Numerical simulations were performed by developing nonlinear FE model in commercially available explicit FE solver AUTODYN. An elastic-plastic material model coupled with maximum principal strain failure criterion was implemented to model the impact response of windshield. Numerical model was validated with published experimental results and further employed to investigate the influence of various parameters on dynamic behavior of windshield. The parameters include the mass, shape, and velocity of bird, angle of impact, and impact location. On the basis of numerical results, the critical bird velocity and failure locations on windshield were also determined. The results show that these parameters have strong influence on impact response of windshield, and bird velocity and impact angle were amongst the most critical factors to be considered in windshield design.
url http://dx.doi.org/10.1155/2013/171768
work_keys_str_mv AT uzairahmeddar feanalysisofdynamicresponseofaircraftwindshieldagainstbirdimpact
AT weihongzhang feanalysisofdynamicresponseofaircraftwindshieldagainstbirdimpact
AT yingjiexu feanalysisofdynamicresponseofaircraftwindshieldagainstbirdimpact
_version_ 1716814100578697216