Length scale effects and multiscale modeling of thermally induced phase transformation kinetics in NiTi SMA
Thermally induced phase transformation in NiTi shape memory alloys (SMA) shows strong size and shape, collectively termed length scale effects, at the nano to micrometer scales, and that has important implications for the design and use of devices and structures at such scales. This paper, based on...
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ndltd-arizona.edu-oai-arizona.openrepository.com-10150-6229912017-04-06T03:00:38Z Length scale effects and multiscale modeling of thermally induced phase transformation kinetics in NiTi SMA Frantziskonis, George N. Gur, Sourav Civil Engineering and Engineering Mechanics, University of Arizona NiTi SMA length scale effect single crystal polycrystal multiscale coupling material model Thermally induced phase transformation in NiTi shape memory alloys (SMA) shows strong size and shape, collectively termed length scale effects, at the nano to micrometer scales, and that has important implications for the design and use of devices and structures at such scales. This paper, based on a recently developed multiscale model that utilizes molecular dynamics (MD) simulations at small scales and MD-verified phase field (PhF) simulations at larger scales, reports results on specific length scale effects, i.e. length scale effects in martensite phase fraction evolution, transformation temperatures (martensite and austenite start and finish) and in the thermally cyclic transformation between austenitic and martensitic phase. The multiscale study identifies saturation points for length scale effects and studies, for the first time, the length scale effect on the kinetics (i.e. developed internal strains) in the B19 phase during phase transformation. The major part of the work addresses small scale single crystals in specific orientations. However, the multiscale method is used in a unique and novel way to indirectly study length scale and grain size effects on evolution kinetics in polycrystalline NiTi, and to compare the simulation results to experiments. The interplay of the grain size and the length scale effect on the thermally induced martensite phase fraction (MPF) evolution is also shown in this present study. Finally, the multiscale coupling results are employed to improve phenomenological material models for NiTi SMA. 2017 Article Frantziskonis et al, 2017, Modelling Simul. Mater. Sci. Eng. 10.1088/1361-651X/aa6662 http://hdl.handle.net/10150/622991 http://arizona.openrepository.com/arizona/handle/10150/622991 Modelling and Simulation in Materials Science and Engineering en http://iopscience.iop.org/article/10.1088/1361-651X/aa6662 © 2017 IOP Publishing Ltd IOP Science |
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en |
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NiTi SMA length scale effect single crystal polycrystal multiscale coupling material model |
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NiTi SMA length scale effect single crystal polycrystal multiscale coupling material model Frantziskonis, George N. Gur, Sourav Length scale effects and multiscale modeling of thermally induced phase transformation kinetics in NiTi SMA |
description |
Thermally induced phase transformation in NiTi shape memory alloys (SMA) shows strong size and shape, collectively termed length scale effects, at the nano to micrometer scales, and that has important implications for the design and use of devices and structures at such scales. This paper, based on a recently developed multiscale model that utilizes molecular dynamics (MD) simulations at small scales and MD-verified phase field (PhF) simulations at larger scales, reports results on specific length scale effects, i.e. length scale effects in martensite phase fraction evolution, transformation temperatures (martensite and austenite start and finish) and in the thermally cyclic transformation between austenitic and martensitic phase. The multiscale study identifies saturation points for length scale effects and studies, for the first time, the length scale effect on the kinetics (i.e. developed internal strains) in the B19 phase during phase transformation. The major part of the work addresses small scale single crystals in specific orientations. However, the multiscale method is used in a unique and novel way to indirectly study length scale and grain size effects on evolution kinetics in polycrystalline NiTi, and to compare the simulation results to experiments. The interplay of the grain size and the length scale effect on the thermally induced martensite phase fraction (MPF) evolution is also shown in this present study. Finally, the multiscale coupling results are employed to improve phenomenological material models for NiTi SMA. |
author2 |
Civil Engineering and Engineering Mechanics, University of Arizona |
author_facet |
Civil Engineering and Engineering Mechanics, University of Arizona Frantziskonis, George N. Gur, Sourav |
author |
Frantziskonis, George N. Gur, Sourav |
author_sort |
Frantziskonis, George N. |
title |
Length scale effects and multiscale modeling of thermally induced phase transformation kinetics in NiTi SMA |
title_short |
Length scale effects and multiscale modeling of thermally induced phase transformation kinetics in NiTi SMA |
title_full |
Length scale effects and multiscale modeling of thermally induced phase transformation kinetics in NiTi SMA |
title_fullStr |
Length scale effects and multiscale modeling of thermally induced phase transformation kinetics in NiTi SMA |
title_full_unstemmed |
Length scale effects and multiscale modeling of thermally induced phase transformation kinetics in NiTi SMA |
title_sort |
length scale effects and multiscale modeling of thermally induced phase transformation kinetics in niti sma |
publisher |
IOP Science |
publishDate |
2017 |
url |
http://hdl.handle.net/10150/622991 http://arizona.openrepository.com/arizona/handle/10150/622991 |
work_keys_str_mv |
AT frantziskonisgeorgen lengthscaleeffectsandmultiscalemodelingofthermallyinducedphasetransformationkineticsinnitisma AT gursourav lengthscaleeffectsandmultiscalemodelingofthermallyinducedphasetransformationkineticsinnitisma |
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1718436493577420800 |