A new "flexible" 3D macroscopic model for shape memory alloys
Author(s) -
Ferdinando Auricchio,
E. Bonetti
Publication year - 2012
Publication title -
discrete and continuous dynamical systems - s
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.481
H-Index - 34
eISSN - 1937-1632
pISSN - 1937-1179
DOI - 10.3934/dcdss.2013.6.277
Subject(s) - martensite , scalar (mathematics) , shape memory alloy , austenite , lattice (music) , phenomenological model , internal stress , statistical physics , materials science , computer science , mathematics , physics , geometry , metallurgy , condensed matter physics , microstructure , composite material , acoustics
In this paper we introduce a 3D phenomenological model for shape memory behavior, accounting for: martensite reorientation, asymmetric response of the material to tension/compression, different kinetics between forward and reverse phase transformation. We combine two modeling approaches using scalar and tensorial internal variables. Indeed, we use volume proportions of different configurations of the crystal lattice (austenite and two variants of martensite) as scalar internal variables and the preferred direction of stress-induced martensite as tensorial internal variable. Then, we derive evolution equations by a generalization of the principle of virtual powers, including microforces and micromovements responsible for phase transformations. In addition, we prescribe an evolution law for phase proportions ensuring different kinetics during forward and reverse transformation of the oriented martensite.
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