FE Analysis of Critical Testing Parameters in Kolsky Bar Experiments for Elastomers at High Strain Rate

The main aim of this research is to present complete methodological guidelines for dynamic characterization of elastomers when subjected to strain rates of 100/s−10,000/s. We consider the following three aspects: (i) the design of high strain rate testing apparatus, (ii) finite element ana...

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Main Authors: Muhammad Salman Chaudhry, Aleksander Czekanski
Format: Article
Language:English
Published: MDPI AG 2019-11-01
Series:Materials
Subjects:
fea
Online Access:https://www.mdpi.com/1996-1944/12/23/3817
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spelling doaj-5c36737d23a24f45ae597112b451e3932020-11-25T00:39:42ZengMDPI AGMaterials1996-19442019-11-011223381710.3390/ma12233817ma12233817FE Analysis of Critical Testing Parameters in Kolsky Bar Experiments for Elastomers at High Strain RateMuhammad Salman Chaudhry0Aleksander Czekanski1Department of Mechanical Engineering, York University, 4700 Keele Street, Toronto, ON M3J 1P3, CanadaDepartment of Mechanical Engineering, York University, 4700 Keele Street, Toronto, ON M3J 1P3, CanadaThe main aim of this research is to present complete methodological guidelines for dynamic characterization of elastomers when subjected to strain rates of 100/s−10,000/s. We consider the following three aspects: (i) the design of high strain rate testing apparatus, (ii) finite element analysis for the optimization of the experimental setup, and (iii) experimental parameters and validation for the response of an elastomeric specimen. To test low impedance soft materials, design of a modified Kolsky bar is discussed. Based on this design, the testing apparatus was constructed, validated, and optimized numerically using finite element methods. Furthermore, investigations on traditional pulse shaping techniques and a new design for pulse shaper are described. The effect of specimen geometry on the homogeneous deformation has been thoroughly accounted for. Using the optimized specimen geometry and pulse shaping technique, nitrile butadiene rubber was tested at different strain rates, and the experimental findings were compared to numerical predictions.https://www.mdpi.com/1996-1944/12/23/3817kolsky barelastomershigh-strain ratefea
collection DOAJ
language English
format Article
sources DOAJ
author Muhammad Salman Chaudhry
Aleksander Czekanski
spellingShingle Muhammad Salman Chaudhry
Aleksander Czekanski
FE Analysis of Critical Testing Parameters in Kolsky Bar Experiments for Elastomers at High Strain Rate
Materials
kolsky bar
elastomers
high-strain rate
fea
author_facet Muhammad Salman Chaudhry
Aleksander Czekanski
author_sort Muhammad Salman Chaudhry
title FE Analysis of Critical Testing Parameters in Kolsky Bar Experiments for Elastomers at High Strain Rate
title_short FE Analysis of Critical Testing Parameters in Kolsky Bar Experiments for Elastomers at High Strain Rate
title_full FE Analysis of Critical Testing Parameters in Kolsky Bar Experiments for Elastomers at High Strain Rate
title_fullStr FE Analysis of Critical Testing Parameters in Kolsky Bar Experiments for Elastomers at High Strain Rate
title_full_unstemmed FE Analysis of Critical Testing Parameters in Kolsky Bar Experiments for Elastomers at High Strain Rate
title_sort fe analysis of critical testing parameters in kolsky bar experiments for elastomers at high strain rate
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2019-11-01
description The main aim of this research is to present complete methodological guidelines for dynamic characterization of elastomers when subjected to strain rates of 100/s−10,000/s. We consider the following three aspects: (i) the design of high strain rate testing apparatus, (ii) finite element analysis for the optimization of the experimental setup, and (iii) experimental parameters and validation for the response of an elastomeric specimen. To test low impedance soft materials, design of a modified Kolsky bar is discussed. Based on this design, the testing apparatus was constructed, validated, and optimized numerically using finite element methods. Furthermore, investigations on traditional pulse shaping techniques and a new design for pulse shaper are described. The effect of specimen geometry on the homogeneous deformation has been thoroughly accounted for. Using the optimized specimen geometry and pulse shaping technique, nitrile butadiene rubber was tested at different strain rates, and the experimental findings were compared to numerical predictions.
topic kolsky bar
elastomers
high-strain rate
fea
url https://www.mdpi.com/1996-1944/12/23/3817
work_keys_str_mv AT muhammadsalmanchaudhry feanalysisofcriticaltestingparametersinkolskybarexperimentsforelastomersathighstrainrate
AT aleksanderczekanski feanalysisofcriticaltestingparametersinkolskybarexperimentsforelastomersathighstrainrate
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