Please use this identifier to cite or link to this item: doi:10.22028/D291-37344
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Title: Numerical simulation and experimental investigation of the elastocaloric cooling effect in sputter-deposited TiNiCuCo thin films
Author(s): Welsch, Felix
Ullrich, J.
Ossmer, Hinnerk
Schmidt, M.
Kohl, Manfred
Chluba, Christoph
Quandt, Eckhard
Schütze, Andreas
Seelecke, Stefan
Language: English
Title: Continuum mechanics and thermodynamics : analysis of complex materials and judicious evaluation of the environment
Volume: 30
Issue: 1
Pages: 53-68
Publisher/Platform: Springer
Year of Publication: 2017
Free key words: Elastocaloric cooling
Shape memory alloy
TiNiCuCo thin film
Thermo-mechanical coupling
Rate dependence
Localization
DDC notations: 530 Physics
Publikation type: Journal Article
Abstract: The exploitation of the elastocaloric effect in superelastic shape memory alloys (SMA) for cooling applications shows a promising energy efficiency potential but requires a better understanding of the non-homogeneous martensitic phase transformation. Temperature profiles on sputter-deposited superelastic Ti55.2Ni29.3Cu12.7Co2.8 shape memory alloy thin films show localized release and absorption of heat during phase transformation induced by tensile deformation with a strong rate dependence. In this paper, a model for the simulation of the thermo-mechanically coupled transformation behavior of superelastic SMA is proposed and its capability to reproduce the mechanical and thermal responses observed during experiments is shown. The procedure for experiment and simulation is designed such that a significant temperature change from the initial temperature is obtained to allow potential cooling applications. The simulation of non-local effects is enabled by the use of a model based on the one-dimensional Müller–Achenbach–Seelecke model, extended by 3D mechanisms such as lateral contraction and by non-local interaction, leading to localization effects. It is implemented into the finite element software COMSOL Multiphysics, and comparisons of numerical and experimental results show that the model is capable of reproducing the localized transformation behavior with the same strain rate dependency. Additionally to the thermal and the mechanical behavior, the quantitative prediction of cooling performance with the presented model is shown.
DOI of the first publication: 10.1007/s00161-017-0582-x
URL of the first publication: https://link.springer.com/article/10.1007/s00161-017-0582-x
Link to this record: urn:nbn:de:bsz:291--ds-373447
hdl:20.500.11880/33814
http://dx.doi.org/10.22028/D291-37344
ISSN: 1432-0959
0935-1175
Date of registration: 23-Sep-2022
Faculty: NT - Naturwissenschaftlich- Technische Fakultät
Department: NT - Systems Engineering
Professorship: NT - Prof. Dr. Andreas Schütze
Collections:SciDok - Der Wissenschaftsserver der Universität des Saarlandes

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