Numerical simulation to assess the elastic-strain energy distribution in a silicon rubber disk subjected to a punch shear test (PST)

Finite element method simulations were implemented to understand how the strain energy is distributed in a disk-like sample during a punch shear test. Material’s Young modulus can be estimated from this test; however, there is not enough available information about the distribution of the strain ene...

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Main Authors: Adrian Lopera-Valle, Fabio Alexander Suárez-Bustamante, Juan Pablo Hernández-Ortiz
Format: Article
Language:English
Published: Universidad Nacional de Colombia 2016-01-01
Series:Dyna
Online Access:https://revistas.unal.edu.co/index.php/dyna/article/view/49034
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spelling doaj-6facb9e006f74db0b4e773dc12de731e2020-11-25T02:28:09ZengUniversidad Nacional de Colombia Dyna0012-73532346-21832016-01-018319511212010.15446/dyna.v83n195.4903442498Numerical simulation to assess the elastic-strain energy distribution in a silicon rubber disk subjected to a punch shear test (PST)Adrian Lopera-ValleFabio Alexander Suárez-BustamanteJuan Pablo Hernández-OrtizFinite element method simulations were implemented to understand how the strain energy is distributed in a disk-like sample during a punch shear test. Material’s Young modulus can be estimated from this test; however, there is not enough available information about the distribution of the strain energy inside the sample during the deformation process. The proposed methodology seeks to give insight into the deformation process. Experimental results for a cured silicon rubber sample were used to validate the simulation results. It was found that the estimation of the Young modulus with the punch shear test depends on the ratio between the span-to-punch diameters. This conclusion applies to the simulated results, following Timoshenko’s theory for the deformation of thin plates. Understanding how energy is accumulated during a punch shear test is an important and useful characteristic in terms of the design of armor systems.https://revistas.unal.edu.co/index.php/dyna/article/view/49034
collection DOAJ
language English
format Article
sources DOAJ
author Adrian Lopera-Valle
Fabio Alexander Suárez-Bustamante
Juan Pablo Hernández-Ortiz
spellingShingle Adrian Lopera-Valle
Fabio Alexander Suárez-Bustamante
Juan Pablo Hernández-Ortiz
Numerical simulation to assess the elastic-strain energy distribution in a silicon rubber disk subjected to a punch shear test (PST)
Dyna
author_facet Adrian Lopera-Valle
Fabio Alexander Suárez-Bustamante
Juan Pablo Hernández-Ortiz
author_sort Adrian Lopera-Valle
title Numerical simulation to assess the elastic-strain energy distribution in a silicon rubber disk subjected to a punch shear test (PST)
title_short Numerical simulation to assess the elastic-strain energy distribution in a silicon rubber disk subjected to a punch shear test (PST)
title_full Numerical simulation to assess the elastic-strain energy distribution in a silicon rubber disk subjected to a punch shear test (PST)
title_fullStr Numerical simulation to assess the elastic-strain energy distribution in a silicon rubber disk subjected to a punch shear test (PST)
title_full_unstemmed Numerical simulation to assess the elastic-strain energy distribution in a silicon rubber disk subjected to a punch shear test (PST)
title_sort numerical simulation to assess the elastic-strain energy distribution in a silicon rubber disk subjected to a punch shear test (pst)
publisher Universidad Nacional de Colombia
series Dyna
issn 0012-7353
2346-2183
publishDate 2016-01-01
description Finite element method simulations were implemented to understand how the strain energy is distributed in a disk-like sample during a punch shear test. Material’s Young modulus can be estimated from this test; however, there is not enough available information about the distribution of the strain energy inside the sample during the deformation process. The proposed methodology seeks to give insight into the deformation process. Experimental results for a cured silicon rubber sample were used to validate the simulation results. It was found that the estimation of the Young modulus with the punch shear test depends on the ratio between the span-to-punch diameters. This conclusion applies to the simulated results, following Timoshenko’s theory for the deformation of thin plates. Understanding how energy is accumulated during a punch shear test is an important and useful characteristic in terms of the design of armor systems.
url https://revistas.unal.edu.co/index.php/dyna/article/view/49034
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