Variational modeling of shape memory alloys - An overview

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Autoren

Organisationseinheiten

Externe Organisationen

  • Ruhr-Universität Bochum
  • Thyssenkrupp AG
Forschungs-netzwerk anzeigen

Details

OriginalspracheEnglisch
Seiten (von - bis)643-651
Seitenumfang9
FachzeitschriftInternational Journal of Materials Research
Jahrgang102
Ausgabenummer6
PublikationsstatusVeröffentlicht - 2011

Abstract

Shape memory alloys can be described in a uniform way relying on energetic considerations only. We present micromechanically motivated models for single and polycrystals. The approach studied here is based on energy minimization and includes hysteretic effects via a simple dissipation ansatz. It is capable of reproducing important aspects of the material behavior such as pseudoelasticity and pseudoplasticity. The influence of anisotropies in the crystalline texture as well as in the elastic constants of the austenite and the martensitic variants is also discussed. Furthermore, regularization is applied in order to receive localized but still mesh independent results for phase distributions in a finite element implementation. The entire presentation emphasizes the usage of variational methods leading to the notion of relaxed potentials. Interrelations to various other applications of these concepts will be highlighted.

ASJC Scopus Sachgebiete

Zitieren

Variational modeling of shape memory alloys - An overview. / Hackl, Klaus; Junker, Philipp; Heinen, Rainer.
in: International Journal of Materials Research, Jahrgang 102, Nr. 6, 2011, S. 643-651.

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Hackl, Klaus ; Junker, Philipp ; Heinen, Rainer. / Variational modeling of shape memory alloys - An overview. in: International Journal of Materials Research. 2011 ; Jahrgang 102, Nr. 6. S. 643-651.
Download
@article{422bd2e1986a48c18f6aaf6636d4d97d,
title = "Variational modeling of shape memory alloys - An overview",
abstract = "Shape memory alloys can be described in a uniform way relying on energetic considerations only. We present micromechanically motivated models for single and polycrystals. The approach studied here is based on energy minimization and includes hysteretic effects via a simple dissipation ansatz. It is capable of reproducing important aspects of the material behavior such as pseudoelasticity and pseudoplasticity. The influence of anisotropies in the crystalline texture as well as in the elastic constants of the austenite and the martensitic variants is also discussed. Furthermore, regularization is applied in order to receive localized but still mesh independent results for phase distributions in a finite element implementation. The entire presentation emphasizes the usage of variational methods leading to the notion of relaxed potentials. Interrelations to various other applications of these concepts will be highlighted.",
keywords = "Micromechanics, Phase transformation, Shape memory alloys, Variational calculus",
author = "Klaus Hackl and Philipp Junker and Rainer Heinen",
note = "Copyright: Copyright 2011 Elsevier B.V., All rights reserved.",
year = "2011",
doi = "10.3139/146.110527",
language = "English",
volume = "102",
pages = "643--651",
journal = "International Journal of Materials Research",
issn = "1862-5282",
publisher = "Carl Hanser Verlag GmbH & Co. KG",
number = "6",

}

Download

TY - JOUR

T1 - Variational modeling of shape memory alloys - An overview

AU - Hackl, Klaus

AU - Junker, Philipp

AU - Heinen, Rainer

N1 - Copyright: Copyright 2011 Elsevier B.V., All rights reserved.

PY - 2011

Y1 - 2011

N2 - Shape memory alloys can be described in a uniform way relying on energetic considerations only. We present micromechanically motivated models for single and polycrystals. The approach studied here is based on energy minimization and includes hysteretic effects via a simple dissipation ansatz. It is capable of reproducing important aspects of the material behavior such as pseudoelasticity and pseudoplasticity. The influence of anisotropies in the crystalline texture as well as in the elastic constants of the austenite and the martensitic variants is also discussed. Furthermore, regularization is applied in order to receive localized but still mesh independent results for phase distributions in a finite element implementation. The entire presentation emphasizes the usage of variational methods leading to the notion of relaxed potentials. Interrelations to various other applications of these concepts will be highlighted.

AB - Shape memory alloys can be described in a uniform way relying on energetic considerations only. We present micromechanically motivated models for single and polycrystals. The approach studied here is based on energy minimization and includes hysteretic effects via a simple dissipation ansatz. It is capable of reproducing important aspects of the material behavior such as pseudoelasticity and pseudoplasticity. The influence of anisotropies in the crystalline texture as well as in the elastic constants of the austenite and the martensitic variants is also discussed. Furthermore, regularization is applied in order to receive localized but still mesh independent results for phase distributions in a finite element implementation. The entire presentation emphasizes the usage of variational methods leading to the notion of relaxed potentials. Interrelations to various other applications of these concepts will be highlighted.

KW - Micromechanics

KW - Phase transformation

KW - Shape memory alloys

KW - Variational calculus

UR - http://www.scopus.com/inward/record.url?scp=79959956069&partnerID=8YFLogxK

U2 - 10.3139/146.110527

DO - 10.3139/146.110527

M3 - Article

AN - SCOPUS:79959956069

VL - 102

SP - 643

EP - 651

JO - International Journal of Materials Research

JF - International Journal of Materials Research

SN - 1862-5282

IS - 6

ER -

Von denselben Autoren