Strain Wave Analysis in Carbon-Fiber-Reinforced Composites subjected to Drop Weight Impact Test using ANSYS®
Composite materials are becoming more popular in technological applications due to the significant weight savings and strength these materials offer compared to metallic materials. In many of these practical situations, the structures suffer from drop impact loads. Materials and structures significa...
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Online Access: | https://hdl.handle.net/11250/2784197 https://doi.org/10.21152/1750-9548.15.3.275 |
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fthsosloakersoda:oai:oda.oslomet.no:11250/2784197 2023-05-15T18:49:26+02:00 Strain Wave Analysis in Carbon-Fiber-Reinforced Composites subjected to Drop Weight Impact Test using ANSYS® Andleeb, Zahra Malik, Sohail Khawaja, Hassan Antonsen, Ståle Hassan, Taimur Hussain, Ghulam Moatamedi, Mojtaba 2021-07-11T04:09:29Z application/pdf https://hdl.handle.net/11250/2784197 https://doi.org/10.21152/1750-9548.15.3.275 eng eng International Society of Multiphysics The International Journal of Multiphysics;Volume 15 · Number 3 The International Journal of Multiphysics. 2021, 15 (3), 275-290. urn:issn:1750-9548 https://hdl.handle.net/11250/2784197 https://doi.org/10.21152/1750-9548.15.3.275 cristin:1921336 Navngivelse 4.0 Internasjonal http://creativecommons.org/licenses/by/4.0/deed.no Copyright (c) 2021 Z Andleeb, S Malik, H Khawaja, S Antonsen, T Hassan, G Hussain, M Moatamedi CC-BY The International Journal of Multiphysics 15 3 275-290 Composite materials Carbon-fiber-reinforced polymers Strain wave analyses Numerical analyses Peer reviewed Journal article 2021 fthsosloakersoda https://doi.org/10.21152/1750-9548.15.3.275 2021-10-11T16:53:44Z Composite materials are becoming more popular in technological applications due to the significant weight savings and strength these materials offer compared to metallic materials. In many of these practical situations, the structures suffer from drop impact loads. Materials and structures significantly change their behavior when submitted to impact loading conditions as compared to quasi-static loading. The present work is devoted to investigating the elastic strain wave in Carbon-Fiber-Reinforced Polymers (CFRP) when subjected to a drop test. A novel drop weight impact test experimental method evaluates parameters specific to 3D composite materials during the study. A strain gauge rosette is employed to record the kinematic on the composites' surface. Experimental results were validated through numerical analysis by FDM Numerical Simulations in Matlab® and Ansys Explicit Dynamic Module. A MATLAB® code was developed to solve wave equation in a 2-D polar coordinate system by discretizing through a Forward-Time Central-Space (FTCS) Finite Difference Method (FDM). Another FEA analysis was performed in ANSYS® Workbench Explicit Dynamics module to simulate the elastic waves produced during the DWIT. The study demonstrates that the elastic waves generated upon impact with a 33 g steel ball from a height of 1 m in a quasi-isotropic CFRP sheet give a strain wave frequency of 205 Hz and finish in almost 0.015 s due to a significant damping effect. Numerical simulations were in good agreement with the experimental findings. The publication charges for this article were funded by a grant from the publication fund of UiT-The Arctic University of Norway. publishedVersion Article in Journal/Newspaper Arctic University of Norway UiT The Arctic University of Norway OsloMet (Oslo Metropolitan University): ODA (Open Digital Archive) Arctic Norway The International Journal of Multiphysics 15 3 |
institution |
Open Polar |
collection |
OsloMet (Oslo Metropolitan University): ODA (Open Digital Archive) |
op_collection_id |
fthsosloakersoda |
language |
English |
topic |
Composite materials Carbon-fiber-reinforced polymers Strain wave analyses Numerical analyses |
spellingShingle |
Composite materials Carbon-fiber-reinforced polymers Strain wave analyses Numerical analyses Andleeb, Zahra Malik, Sohail Khawaja, Hassan Antonsen, Ståle Hassan, Taimur Hussain, Ghulam Moatamedi, Mojtaba Strain Wave Analysis in Carbon-Fiber-Reinforced Composites subjected to Drop Weight Impact Test using ANSYS® |
topic_facet |
Composite materials Carbon-fiber-reinforced polymers Strain wave analyses Numerical analyses |
description |
Composite materials are becoming more popular in technological applications due to the significant weight savings and strength these materials offer compared to metallic materials. In many of these practical situations, the structures suffer from drop impact loads. Materials and structures significantly change their behavior when submitted to impact loading conditions as compared to quasi-static loading. The present work is devoted to investigating the elastic strain wave in Carbon-Fiber-Reinforced Polymers (CFRP) when subjected to a drop test. A novel drop weight impact test experimental method evaluates parameters specific to 3D composite materials during the study. A strain gauge rosette is employed to record the kinematic on the composites' surface. Experimental results were validated through numerical analysis by FDM Numerical Simulations in Matlab® and Ansys Explicit Dynamic Module. A MATLAB® code was developed to solve wave equation in a 2-D polar coordinate system by discretizing through a Forward-Time Central-Space (FTCS) Finite Difference Method (FDM). Another FEA analysis was performed in ANSYS® Workbench Explicit Dynamics module to simulate the elastic waves produced during the DWIT. The study demonstrates that the elastic waves generated upon impact with a 33 g steel ball from a height of 1 m in a quasi-isotropic CFRP sheet give a strain wave frequency of 205 Hz and finish in almost 0.015 s due to a significant damping effect. Numerical simulations were in good agreement with the experimental findings. The publication charges for this article were funded by a grant from the publication fund of UiT-The Arctic University of Norway. publishedVersion |
format |
Article in Journal/Newspaper |
author |
Andleeb, Zahra Malik, Sohail Khawaja, Hassan Antonsen, Ståle Hassan, Taimur Hussain, Ghulam Moatamedi, Mojtaba |
author_facet |
Andleeb, Zahra Malik, Sohail Khawaja, Hassan Antonsen, Ståle Hassan, Taimur Hussain, Ghulam Moatamedi, Mojtaba |
author_sort |
Andleeb, Zahra |
title |
Strain Wave Analysis in Carbon-Fiber-Reinforced Composites subjected to Drop Weight Impact Test using ANSYS® |
title_short |
Strain Wave Analysis in Carbon-Fiber-Reinforced Composites subjected to Drop Weight Impact Test using ANSYS® |
title_full |
Strain Wave Analysis in Carbon-Fiber-Reinforced Composites subjected to Drop Weight Impact Test using ANSYS® |
title_fullStr |
Strain Wave Analysis in Carbon-Fiber-Reinforced Composites subjected to Drop Weight Impact Test using ANSYS® |
title_full_unstemmed |
Strain Wave Analysis in Carbon-Fiber-Reinforced Composites subjected to Drop Weight Impact Test using ANSYS® |
title_sort |
strain wave analysis in carbon-fiber-reinforced composites subjected to drop weight impact test using ansys® |
publisher |
International Society of Multiphysics |
publishDate |
2021 |
url |
https://hdl.handle.net/11250/2784197 https://doi.org/10.21152/1750-9548.15.3.275 |
geographic |
Arctic Norway |
geographic_facet |
Arctic Norway |
genre |
Arctic University of Norway UiT The Arctic University of Norway |
genre_facet |
Arctic University of Norway UiT The Arctic University of Norway |
op_source |
The International Journal of Multiphysics 15 3 275-290 |
op_relation |
The International Journal of Multiphysics;Volume 15 · Number 3 The International Journal of Multiphysics. 2021, 15 (3), 275-290. urn:issn:1750-9548 https://hdl.handle.net/11250/2784197 https://doi.org/10.21152/1750-9548.15.3.275 cristin:1921336 |
op_rights |
Navngivelse 4.0 Internasjonal http://creativecommons.org/licenses/by/4.0/deed.no Copyright (c) 2021 Z Andleeb, S Malik, H Khawaja, S Antonsen, T Hassan, G Hussain, M Moatamedi |
op_rightsnorm |
CC-BY |
op_doi |
https://doi.org/10.21152/1750-9548.15.3.275 |
container_title |
The International Journal of Multiphysics |
container_volume |
15 |
container_issue |
3 |
_version_ |
1766243034282852352 |