An alternative J2 material model with isotropic hardening for coupled thermal-structural finite-strain elastoplastic analyses

In this paper an alternative J2 material model with isotropic hardening for finite-strain elastoplastic analyses is presented. The model is based on a new nonlinear continuum mechanical theory of finite deformations of elastoplastic media which allows us to describe the plastic flow in terms of vari...

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Main Authors: Écsi Ladislav, Élesztos Pavel, Jančo Roland
Format: Article
Language:English
Published: EDP Sciences 2018-01-01
Series:MATEC Web of Conferences
Subjects:
Online Access:https://doi.org/10.1051/matecconf/201815706003
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spelling doaj-a72601ffd1d346d38dcec4af4bff30562021-04-02T15:04:11ZengEDP SciencesMATEC Web of Conferences2261-236X2018-01-011570600310.1051/matecconf/201815706003matecconf_mms2018_06003An alternative J2 material model with isotropic hardening for coupled thermal-structural finite-strain elastoplastic analysesÉcsi LadislavÉlesztos PavelJančo RolandIn this paper an alternative J2 material model with isotropic hardening for finite-strain elastoplastic analyses is presented. The model is based on a new nonlinear continuum mechanical theory of finite deformations of elastoplastic media which allows us to describe the plastic flow in terms of various instances of the yield surface and corresponding stress measures in the initial and current configurations of the body. The approach also allows us to develop thermodynamically consistent material models in every respect. Consequently, the models not only do comply with the principles of material modelling, but also use constitutive equations, evolution equations and even ‘normality rules’ during return mapping which can be expressed in terms of power conjugate stress and strain measures or their objective rates. Therefore, such models and the results of the analyses employing them no longer depend on the description and the particularities of the material model formulation. Here we briefly present an improved version of our former material model capable of modelling ductile-to brittle failure mode transition and demonstrate the model in a numerical example using a fully coupled thermal-structural analysis.https://doi.org/10.1051/matecconf/201815706003finite-strain formulationthermodynamically consistent formulationthermal-structural finite element analysisstrong couplinggeneralized J2 plasticityisotropic hardeningmaterial dampingductile-to-brittle failure mode transition
collection DOAJ
language English
format Article
sources DOAJ
author Écsi Ladislav
Élesztos Pavel
Jančo Roland
spellingShingle Écsi Ladislav
Élesztos Pavel
Jančo Roland
An alternative J2 material model with isotropic hardening for coupled thermal-structural finite-strain elastoplastic analyses
MATEC Web of Conferences
finite-strain formulation
thermodynamically consistent formulation
thermal-structural finite element analysis
strong coupling
generalized J2 plasticity
isotropic hardening
material damping
ductile-to-brittle failure mode transition
author_facet Écsi Ladislav
Élesztos Pavel
Jančo Roland
author_sort Écsi Ladislav
title An alternative J2 material model with isotropic hardening for coupled thermal-structural finite-strain elastoplastic analyses
title_short An alternative J2 material model with isotropic hardening for coupled thermal-structural finite-strain elastoplastic analyses
title_full An alternative J2 material model with isotropic hardening for coupled thermal-structural finite-strain elastoplastic analyses
title_fullStr An alternative J2 material model with isotropic hardening for coupled thermal-structural finite-strain elastoplastic analyses
title_full_unstemmed An alternative J2 material model with isotropic hardening for coupled thermal-structural finite-strain elastoplastic analyses
title_sort alternative j2 material model with isotropic hardening for coupled thermal-structural finite-strain elastoplastic analyses
publisher EDP Sciences
series MATEC Web of Conferences
issn 2261-236X
publishDate 2018-01-01
description In this paper an alternative J2 material model with isotropic hardening for finite-strain elastoplastic analyses is presented. The model is based on a new nonlinear continuum mechanical theory of finite deformations of elastoplastic media which allows us to describe the plastic flow in terms of various instances of the yield surface and corresponding stress measures in the initial and current configurations of the body. The approach also allows us to develop thermodynamically consistent material models in every respect. Consequently, the models not only do comply with the principles of material modelling, but also use constitutive equations, evolution equations and even ‘normality rules’ during return mapping which can be expressed in terms of power conjugate stress and strain measures or their objective rates. Therefore, such models and the results of the analyses employing them no longer depend on the description and the particularities of the material model formulation. Here we briefly present an improved version of our former material model capable of modelling ductile-to brittle failure mode transition and demonstrate the model in a numerical example using a fully coupled thermal-structural analysis.
topic finite-strain formulation
thermodynamically consistent formulation
thermal-structural finite element analysis
strong coupling
generalized J2 plasticity
isotropic hardening
material damping
ductile-to-brittle failure mode transition
url https://doi.org/10.1051/matecconf/201815706003
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