Theoretical and numerical modeling of shape memory alloys accounting for multiple phase transformations and martensite reorientation
Academic Article
Publication Date:
2014
Citation:
Theoretical and numerical modeling of shape memory alloys accounting for multiple phase transformations and martensite reorientation / F. Auricchio, E. Bonetti, G. Scalet, F. Ubertini. - In: INTERNATIONAL JOURNAL OF PLASTICITY. - ISSN 0749-6419. - 59(2014 Aug), pp. 30-54. [10.1016/j.ijplas.2014.03.008]
abstract:
The present paper develops a refined and general three-dimensional phenomenological constitutive model for shape memory alloys (SMAs), along the lines of what recently proposed by Auricchio and Bonetti (2013) in a more theoretical context. Such an improved model takes into account several physical phenomena, as martensite reorientation and different kinetics between forward/reverse phase transformations, including also smooth thermo-mechanical response, low-stress phase transformations as well as transformation-dependent elastic properties. The model is treated numerically through an effective and efficient procedure, consisting in the replacement of the classical set of Kuhn-Tucker inequality conditions by the so-called Fischer-Burmeister complementarity function. Numerical predictions are compared with experimental results and the finite element analysis of a SMA-based real device is described to assess the reliability of the proposed model as well as the effectiveness of its numerical counterpart.
IRIS type:
01 - Articolo su periodico
Keywords:
phase transformation; reorientation; shape memory alloys; constitutive modeling; fischer-burmeister function; mechanics of materials; materials science (all); mechanical engineering
List of contributors:
F. Auricchio, E. Bonetti, G. Scalet, F. Ubertini
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