Thermomechanical couplings in shape memory alloy materials

In this work we address several theoretical and computational issues which are related to the thermomechanical modeling of shape memory alloy materials. More specifically, in this paper we revisit a non-isothermal version of the theory of large deformation generalized plasticity which is suitable fo...

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Main Authors: Soldatos, Dimitris, Triantafyllou, S.F., Panoskaltsis, V.P.
Format: Article
Published: Springer 2017
Subjects:
Online Access:https://eprints.nottingham.ac.uk/40604/
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author Soldatos, Dimitris
Triantafyllou, S.F.
Panoskaltsis, V.P.
author_facet Soldatos, Dimitris
Triantafyllou, S.F.
Panoskaltsis, V.P.
author_sort Soldatos, Dimitris
building Nottingham Research Data Repository
collection Online Access
description In this work we address several theoretical and computational issues which are related to the thermomechanical modeling of shape memory alloy materials. More specifically, in this paper we revisit a non-isothermal version of the theory of large deformation generalized plasticity which is suitable for describing the multiple and complex mechanisms occurring in these materials during phase transformations. We also discuss the computational implementation of a generalized plasticity based constitutive model and we demonstrate the ability of the theory in simulating the basic patterns of the experimentally observed behavior by a set of representative numerical examples.
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spelling nottingham-406042020-05-04T18:39:06Z https://eprints.nottingham.ac.uk/40604/ Thermomechanical couplings in shape memory alloy materials Soldatos, Dimitris Triantafyllou, S.F. Panoskaltsis, V.P. In this work we address several theoretical and computational issues which are related to the thermomechanical modeling of shape memory alloy materials. More specifically, in this paper we revisit a non-isothermal version of the theory of large deformation generalized plasticity which is suitable for describing the multiple and complex mechanisms occurring in these materials during phase transformations. We also discuss the computational implementation of a generalized plasticity based constitutive model and we demonstrate the ability of the theory in simulating the basic patterns of the experimentally observed behavior by a set of representative numerical examples. Springer 2017-03-24 Article PeerReviewed Soldatos, Dimitris, Triantafyllou, S.F. and Panoskaltsis, V.P. (2017) Thermomechanical couplings in shape memory alloy materials. Continuum Mechanics and Thermodynamics, 29 (3). pp. 805-834. ISSN 1432-0959 Shape memory alloys Shape memory effect Pseudoelasticity Generalized plasticity Invariance balance energy equation Thermomechanical state equations Isothermal split Thermomechanical couplings https://link.springer.com/article/10.1007/s00161-017-0559-9?wt_mc=Internal.Event.1.SEM.ArticleAuthorOnlineFirst doi:10.1007/s00161-017-0559-9 doi:10.1007/s00161-017-0559-9
spellingShingle Shape memory alloys
Shape memory effect
Pseudoelasticity
Generalized plasticity
Invariance
balance energy equation
Thermomechanical state equations
Isothermal split
Thermomechanical couplings
Soldatos, Dimitris
Triantafyllou, S.F.
Panoskaltsis, V.P.
Thermomechanical couplings in shape memory alloy materials
title Thermomechanical couplings in shape memory alloy materials
title_full Thermomechanical couplings in shape memory alloy materials
title_fullStr Thermomechanical couplings in shape memory alloy materials
title_full_unstemmed Thermomechanical couplings in shape memory alloy materials
title_short Thermomechanical couplings in shape memory alloy materials
title_sort thermomechanical couplings in shape memory alloy materials
topic Shape memory alloys
Shape memory effect
Pseudoelasticity
Generalized plasticity
Invariance
balance energy equation
Thermomechanical state equations
Isothermal split
Thermomechanical couplings
url https://eprints.nottingham.ac.uk/40604/
https://eprints.nottingham.ac.uk/40604/
https://eprints.nottingham.ac.uk/40604/