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Main Authors: Stupkiewicz, Stanislaw, Amini, Seyedshoja, Rezaee-Hajidehi, Mohsen
Format: Preprint
Published: 2024
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Online Access:https://arxiv.org/abs/2409.07382
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author Stupkiewicz, Stanislaw
Amini, Seyedshoja
Rezaee-Hajidehi, Mohsen
author_facet Stupkiewicz, Stanislaw
Amini, Seyedshoja
Rezaee-Hajidehi, Mohsen
contents We develop a 1D model of twin branching in shape memory alloys. The free energy of the branched microstructure comprises the interfacial and elastic strain energy contributions, both expressed in terms of the average twin spacing treated as a continuous function of the position. The total free energy is then minimized, and the corresponding Euler-Lagrange equation is solved numerically using the finite element method. The model can be considered as a continuous counterpart of the recent discrete model of Seiner et al. (2020), and our results show a very good agreement with that model in the entire range of physically relevant parameters. Furthermore, our continuous setting facilitates incorporation of energy dissipation into the model. The effect of rate-independent dissipation on the evolution of the branched microstructure is thus studied. The results show that significant effects on the microstructure and energy of the system are expected only for relatively small domain sizes.
format Preprint
id arxiv_https___arxiv_org_abs_2409_07382
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Twin branching in shape memory alloys: a 1D model with energy dissipation effects
Stupkiewicz, Stanislaw
Amini, Seyedshoja
Rezaee-Hajidehi, Mohsen
Materials Science
We develop a 1D model of twin branching in shape memory alloys. The free energy of the branched microstructure comprises the interfacial and elastic strain energy contributions, both expressed in terms of the average twin spacing treated as a continuous function of the position. The total free energy is then minimized, and the corresponding Euler-Lagrange equation is solved numerically using the finite element method. The model can be considered as a continuous counterpart of the recent discrete model of Seiner et al. (2020), and our results show a very good agreement with that model in the entire range of physically relevant parameters. Furthermore, our continuous setting facilitates incorporation of energy dissipation into the model. The effect of rate-independent dissipation on the evolution of the branched microstructure is thus studied. The results show that significant effects on the microstructure and energy of the system are expected only for relatively small domain sizes.
title Twin branching in shape memory alloys: a 1D model with energy dissipation effects
topic Materials Science
url https://arxiv.org/abs/2409.07382