Linking simulations and experiments for the multiscale tracking of thermally induced martensitic phase transformation in NiTi SMA
Martensitic phase transformation in NiTi shape memory alloys (SMA) occurs over a hierarchy of spatial scales, as evidenced from observed multiscale patterns of the martensitic phase fraction, which depend on the material microstructure and on the size of the SMA specimen. This paper presents a metho...
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ndltd-arizona.edu-oai-arizona.openrepository.com-10150-6230182017-04-06T03:00:38Z Linking simulations and experiments for the multiscale tracking of thermally induced martensitic phase transformation in NiTi SMA Gur, Sourav Frantziskonis, George N Civil Engineering and Engineering Mechanics, University of Arizona Materials Science and Engineering, University of Arizona NiTi SMA martensitic phase transformation phase field simulations multiscale coupling predictive CWM size effect Martensitic phase transformation in NiTi shape memory alloys (SMA) occurs over a hierarchy of spatial scales, as evidenced from observed multiscale patterns of the martensitic phase fraction, which depend on the material microstructure and on the size of the SMA specimen. This paper presents a methodology for the multiscale tracking of the thermally induced martensitic phase transformation process in NiTi SMA. Fine scale stochastic phase field simulations are coupled to macroscale experimental measurements through the compound wavelet matrix method (CWM). A novel process for obtaining CWM fine scale wavelet coefficients is used that enhances the effectiveness of the method in transferring uncertainties from fine to coarse scales, and also ensures the preservation of spatial correlations in the phase fraction pattern. Size effects, well-documented in the literature, play an important role in designing the multiscale tracking methodology. Molecular dynamics (MD) simulations are employed to verify the phase field simulations in terms of different statistical measures and to demonstrate size effects at the nanometer scale. The effects of thermally induced martensite phase fraction uncertainties on the constitutive response of NiTi SMA is demonstrated. 2016-10-01 Article Linking simulations and experiments for the multiscale tracking of thermally induced martensitic phase transformation in NiTi SMA 2016, 24 (7):075006 Modelling and Simulation in Materials Science and Engineering 0965-0393 1361-651X 10.1088/0965-0393/24/7/075006 http://hdl.handle.net/10150/623018 http://arizona.openrepository.com/arizona/handle/10150/623018 Modelling and Simulation in Materials Science and Engineering en http://stacks.iop.org/0965-0393/24/i=7/a=075006?key=crossref.733c8d8df73ca580f8ae71e97350a0f1 © 2016 IOP Publishing Ltd IOP PUBLISHING LTD |
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language |
en |
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topic |
NiTi SMA martensitic phase transformation phase field simulations multiscale coupling predictive CWM size effect |
spellingShingle |
NiTi SMA martensitic phase transformation phase field simulations multiscale coupling predictive CWM size effect Gur, Sourav Frantziskonis, George N Linking simulations and experiments for the multiscale tracking of thermally induced martensitic phase transformation in NiTi SMA |
description |
Martensitic phase transformation in NiTi shape memory alloys (SMA) occurs over a hierarchy of spatial scales, as evidenced from observed multiscale patterns of the martensitic phase fraction, which depend on the material microstructure and on the size of the SMA specimen. This paper presents a methodology for the multiscale tracking of the thermally induced martensitic phase transformation process in NiTi SMA. Fine scale stochastic phase field simulations are coupled to macroscale experimental measurements through the compound wavelet matrix method (CWM). A novel process for obtaining CWM fine scale wavelet coefficients is used that enhances the effectiveness of the method in transferring uncertainties from fine to coarse scales, and also ensures the preservation of spatial correlations in the phase fraction pattern. Size effects, well-documented in the literature, play an important role in designing the multiscale tracking methodology. Molecular dynamics (MD) simulations are employed to verify the phase field simulations in terms of different statistical measures and to demonstrate size effects at the nanometer scale. The effects of thermally induced martensite phase fraction uncertainties on the constitutive response of NiTi SMA is demonstrated. |
author2 |
Civil Engineering and Engineering Mechanics, University of Arizona |
author_facet |
Civil Engineering and Engineering Mechanics, University of Arizona Gur, Sourav Frantziskonis, George N |
author |
Gur, Sourav Frantziskonis, George N |
author_sort |
Gur, Sourav |
title |
Linking simulations and experiments for the multiscale tracking of thermally induced martensitic phase transformation in NiTi SMA |
title_short |
Linking simulations and experiments for the multiscale tracking of thermally induced martensitic phase transformation in NiTi SMA |
title_full |
Linking simulations and experiments for the multiscale tracking of thermally induced martensitic phase transformation in NiTi SMA |
title_fullStr |
Linking simulations and experiments for the multiscale tracking of thermally induced martensitic phase transformation in NiTi SMA |
title_full_unstemmed |
Linking simulations and experiments for the multiscale tracking of thermally induced martensitic phase transformation in NiTi SMA |
title_sort |
linking simulations and experiments for the multiscale tracking of thermally induced martensitic phase transformation in niti sma |
publisher |
IOP PUBLISHING LTD |
publishDate |
2016 |
url |
http://hdl.handle.net/10150/623018 http://arizona.openrepository.com/arizona/handle/10150/623018 |
work_keys_str_mv |
AT gursourav linkingsimulationsandexperimentsforthemultiscaletrackingofthermallyinducedmartensiticphasetransformationinnitisma AT frantziskonisgeorgen linkingsimulationsandexperimentsforthemultiscaletrackingofthermallyinducedmartensiticphasetransformationinnitisma |
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1718436503654236160 |