Optimization and Parametric Study of the Cap Geometry on Collapse Properties of Energy Absorbers under Quasistatic Loading

In the present research, the influence of cap geometry on the collapse of thin-walled aluminum-made energy absorbers with various section geometries was investigated. For this purpose, a total of 35 different absorbers were subjected to axial quasi-static loading. In this respect, five different sec...

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Main Authors: S. Chahardoli, N. Vahdat Azad
Format: Article
Language:English
Published: Bu-Ali Sina University 2019-09-01
Series:Journal of Stress Analysis
Subjects:
Online Access:https://jrstan.basu.ac.ir/article_2987_ecd952480969580c564ccd9fac775102.pdf
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spelling doaj-11cabfd649504253b9e9f5564022f2442020-11-25T02:38:52ZengBu-Ali Sina UniversityJournal of Stress Analysis2588-25972588-30542019-09-0141112510.22084/jrstan.2019.18577.10892987Optimization and Parametric Study of the Cap Geometry on Collapse Properties of Energy Absorbers under Quasistatic LoadingS. Chahardoli0N. Vahdat Azad1Mechanical Engineering Department, Bu-Ali Sina University, Hamedan, Iran.Aeronautical Engineering Department, Shahid Sattari University, Tehran, Iran.In the present research, the influence of cap geometry on the collapse of thin-walled aluminum-made energy absorbers with various section geometries was investigated. For this purpose, a total of 35 different absorbers were subjected to axial quasi-static loading. In this respect, five different section types and seven different cap configurations were considered for the absorbers and their caps, respectively. The analyses were performed in both experimental and numerical methods. The numerical simulations were conducted using LSDYNA Software and experimental tests were performed to verify the numerical investigations. Good agreement was obtained between the experimental data and numerical results. The results indicated that, in all cases, the application of the cap enhanced the crush force efficiency while lowering maximum force at collapse. In the final stage of the research, optimal absorbers for the cases with open-ended and close-ended caps were proposed using Minitab Software based on the response surface methodology.https://jrstan.basu.ac.ir/article_2987_ecd952480969580c564ccd9fac775102.pdfenergy absorberls-dynaquasi-static loadingoptimization
collection DOAJ
language English
format Article
sources DOAJ
author S. Chahardoli
N. Vahdat Azad
spellingShingle S. Chahardoli
N. Vahdat Azad
Optimization and Parametric Study of the Cap Geometry on Collapse Properties of Energy Absorbers under Quasistatic Loading
Journal of Stress Analysis
energy absorber
ls-dyna
quasi-static loading
optimization
author_facet S. Chahardoli
N. Vahdat Azad
author_sort S. Chahardoli
title Optimization and Parametric Study of the Cap Geometry on Collapse Properties of Energy Absorbers under Quasistatic Loading
title_short Optimization and Parametric Study of the Cap Geometry on Collapse Properties of Energy Absorbers under Quasistatic Loading
title_full Optimization and Parametric Study of the Cap Geometry on Collapse Properties of Energy Absorbers under Quasistatic Loading
title_fullStr Optimization and Parametric Study of the Cap Geometry on Collapse Properties of Energy Absorbers under Quasistatic Loading
title_full_unstemmed Optimization and Parametric Study of the Cap Geometry on Collapse Properties of Energy Absorbers under Quasistatic Loading
title_sort optimization and parametric study of the cap geometry on collapse properties of energy absorbers under quasistatic loading
publisher Bu-Ali Sina University
series Journal of Stress Analysis
issn 2588-2597
2588-3054
publishDate 2019-09-01
description In the present research, the influence of cap geometry on the collapse of thin-walled aluminum-made energy absorbers with various section geometries was investigated. For this purpose, a total of 35 different absorbers were subjected to axial quasi-static loading. In this respect, five different section types and seven different cap configurations were considered for the absorbers and their caps, respectively. The analyses were performed in both experimental and numerical methods. The numerical simulations were conducted using LSDYNA Software and experimental tests were performed to verify the numerical investigations. Good agreement was obtained between the experimental data and numerical results. The results indicated that, in all cases, the application of the cap enhanced the crush force efficiency while lowering maximum force at collapse. In the final stage of the research, optimal absorbers for the cases with open-ended and close-ended caps were proposed using Minitab Software based on the response surface methodology.
topic energy absorber
ls-dyna
quasi-static loading
optimization
url https://jrstan.basu.ac.ir/article_2987_ecd952480969580c564ccd9fac775102.pdf
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