Computational simulation of fracture behaviour in auxetic cellular structure by multiaxial loading

A computational simulation of fracture behaviour in auxetic cellular structure, subjected to multiaxial loading is presented in this paper. A fracture behaviour of the 3D (three-dimensional) chiral auxetic structure under multiaxial loading conditions was studied. The computational models were used...

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Main Authors: Nečemer Branko, Kramberger Janez, Novak Nejc, Glodež Srečko
Format: Article
Language:English
Published: EDP Sciences 2019-01-01
Series:MATEC Web of Conferences
Online Access:https://www.matec-conferences.org/articles/matecconf/pdf/2019/49/matecconf_icmff1218_03001.pdf
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spelling doaj-c002b9fce03a4a32a73364c880e53f382021-02-02T06:42:06ZengEDP SciencesMATEC Web of Conferences2261-236X2019-01-013000300110.1051/matecconf/201930003001matecconf_icmff1218_03001Computational simulation of fracture behaviour in auxetic cellular structure by multiaxial loadingNečemer Branko0Kramberger Janez1Novak Nejc2Glodež Srečko3Faculty of Mechanical Engineering, University of MariborFaculty of Mechanical Engineering, University of MariborFaculty of Mechanical Engineering, University of MariborFaculty of Mechanical Engineering, University of MariborA computational simulation of fracture behaviour in auxetic cellular structure, subjected to multiaxial loading is presented in this paper. A fracture behaviour of the 3D (three-dimensional) chiral auxetic structure under multiaxial loading conditions was studied. The computational models were used to study the geometry effect of the unit cell on the Poisson’s ratio and fracture behaviour of the analysed chiral auxetic structure. A 3D computational model was built using FEM-code LS DYNA. The discrete computational model of chiral auxetic structure was built using beam finite elements. The lattice model of the analysed auxetic structure was positioned between rigid plates and assembled in a way to simulate a hydro-compression loading conditions. Between the contacting surfaces interactions in normal (contact) and tangential direction (friction) with the node-to-surface approach were simulated. A developed computational model offers insight in the fracture behaviour of considered auxetic cellular structure and helps to better understanding their crushing behaviour under impact multiaxial loading.https://www.matec-conferences.org/articles/matecconf/pdf/2019/49/matecconf_icmff1218_03001.pdf
collection DOAJ
language English
format Article
sources DOAJ
author Nečemer Branko
Kramberger Janez
Novak Nejc
Glodež Srečko
spellingShingle Nečemer Branko
Kramberger Janez
Novak Nejc
Glodež Srečko
Computational simulation of fracture behaviour in auxetic cellular structure by multiaxial loading
MATEC Web of Conferences
author_facet Nečemer Branko
Kramberger Janez
Novak Nejc
Glodež Srečko
author_sort Nečemer Branko
title Computational simulation of fracture behaviour in auxetic cellular structure by multiaxial loading
title_short Computational simulation of fracture behaviour in auxetic cellular structure by multiaxial loading
title_full Computational simulation of fracture behaviour in auxetic cellular structure by multiaxial loading
title_fullStr Computational simulation of fracture behaviour in auxetic cellular structure by multiaxial loading
title_full_unstemmed Computational simulation of fracture behaviour in auxetic cellular structure by multiaxial loading
title_sort computational simulation of fracture behaviour in auxetic cellular structure by multiaxial loading
publisher EDP Sciences
series MATEC Web of Conferences
issn 2261-236X
publishDate 2019-01-01
description A computational simulation of fracture behaviour in auxetic cellular structure, subjected to multiaxial loading is presented in this paper. A fracture behaviour of the 3D (three-dimensional) chiral auxetic structure under multiaxial loading conditions was studied. The computational models were used to study the geometry effect of the unit cell on the Poisson’s ratio and fracture behaviour of the analysed chiral auxetic structure. A 3D computational model was built using FEM-code LS DYNA. The discrete computational model of chiral auxetic structure was built using beam finite elements. The lattice model of the analysed auxetic structure was positioned between rigid plates and assembled in a way to simulate a hydro-compression loading conditions. Between the contacting surfaces interactions in normal (contact) and tangential direction (friction) with the node-to-surface approach were simulated. A developed computational model offers insight in the fracture behaviour of considered auxetic cellular structure and helps to better understanding their crushing behaviour under impact multiaxial loading.
url https://www.matec-conferences.org/articles/matecconf/pdf/2019/49/matecconf_icmff1218_03001.pdf
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