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Grain Structure Engineering of NiTi Shape Memory Alloys by Intensive Plastic Deformation

[Image: see text] To explore an effective route of customizing the superelasticity (SE) of NiTi shape memory alloys via modifying the grain structure, binary Ni(55)Ti(45) (wt) alloys were fabricated in as-cast, hot swaged, and hot-rolled conditions, presenting contrasting grain sizes and grain bound...

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Autores principales: Wang, Zifan, Chen, Jingwei, Kocich, Radim, Tardif, Samuel, Dolbnya, Igor P., Kunčická, Lenka, Micha, Jean-Sébastien, Liogas, Konstantinos, Magdysyuk, Oxana V., Szurman, Ivo, Korsunsky, Alexander M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9284517/
https://www.ncbi.nlm.nih.gov/pubmed/35759353
http://dx.doi.org/10.1021/acsami.2c05939
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author Wang, Zifan
Chen, Jingwei
Kocich, Radim
Tardif, Samuel
Dolbnya, Igor P.
Kunčická, Lenka
Micha, Jean-Sébastien
Liogas, Konstantinos
Magdysyuk, Oxana V.
Szurman, Ivo
Korsunsky, Alexander M.
author_facet Wang, Zifan
Chen, Jingwei
Kocich, Radim
Tardif, Samuel
Dolbnya, Igor P.
Kunčická, Lenka
Micha, Jean-Sébastien
Liogas, Konstantinos
Magdysyuk, Oxana V.
Szurman, Ivo
Korsunsky, Alexander M.
author_sort Wang, Zifan
collection PubMed
description [Image: see text] To explore an effective route of customizing the superelasticity (SE) of NiTi shape memory alloys via modifying the grain structure, binary Ni(55)Ti(45) (wt) alloys were fabricated in as-cast, hot swaged, and hot-rolled conditions, presenting contrasting grain sizes and grain boundary types. In situ synchrotron X-ray Laue microdiffraction and in situ synchrotron X-ray powder diffraction techniques were employed to unravel the underlying grain structure mechanisms that cause the diversity of SE performance among the three materials. The evolution of lattice rotation, strain field, and phase transformation has been revealed at the micro- and mesoscale, and the effect of grain structure on SE performance has been quantified. It was found that (i) the Ni(4)Ti(3) and NiTi(2) precipitates are similar among the three materials in terms of morphology, size, and orientation distribution; (ii) phase transformation happens preferentially near high-angle grain boundary (HAGB) yet randomly in low-angle grain boundary (LAGB) structures; (iii) the smaller the grain size, the higher the phase transformation nucleation kinetics, and the lower the propagation kinetics; (iv) stress concentration happens near HAGBs, while no obvious stress concentration can be observed in the LAGB grain structure during loading; (v) the statistical distribution of strain in the three materials becomes asymmetric during loading; (vi) three grain lattice rotation modes are identified and termed for the first time, namely, multi-extension rotation, rigid rotation, and nondispersive rotation; and (vii) the texture evolution of B2 austenite and B19′ martensite is not strongly dependent on the grain structure.
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spelling pubmed-92845172022-07-16 Grain Structure Engineering of NiTi Shape Memory Alloys by Intensive Plastic Deformation Wang, Zifan Chen, Jingwei Kocich, Radim Tardif, Samuel Dolbnya, Igor P. Kunčická, Lenka Micha, Jean-Sébastien Liogas, Konstantinos Magdysyuk, Oxana V. Szurman, Ivo Korsunsky, Alexander M. ACS Appl Mater Interfaces [Image: see text] To explore an effective route of customizing the superelasticity (SE) of NiTi shape memory alloys via modifying the grain structure, binary Ni(55)Ti(45) (wt) alloys were fabricated in as-cast, hot swaged, and hot-rolled conditions, presenting contrasting grain sizes and grain boundary types. In situ synchrotron X-ray Laue microdiffraction and in situ synchrotron X-ray powder diffraction techniques were employed to unravel the underlying grain structure mechanisms that cause the diversity of SE performance among the three materials. The evolution of lattice rotation, strain field, and phase transformation has been revealed at the micro- and mesoscale, and the effect of grain structure on SE performance has been quantified. It was found that (i) the Ni(4)Ti(3) and NiTi(2) precipitates are similar among the three materials in terms of morphology, size, and orientation distribution; (ii) phase transformation happens preferentially near high-angle grain boundary (HAGB) yet randomly in low-angle grain boundary (LAGB) structures; (iii) the smaller the grain size, the higher the phase transformation nucleation kinetics, and the lower the propagation kinetics; (iv) stress concentration happens near HAGBs, while no obvious stress concentration can be observed in the LAGB grain structure during loading; (v) the statistical distribution of strain in the three materials becomes asymmetric during loading; (vi) three grain lattice rotation modes are identified and termed for the first time, namely, multi-extension rotation, rigid rotation, and nondispersive rotation; and (vii) the texture evolution of B2 austenite and B19′ martensite is not strongly dependent on the grain structure. American Chemical Society 2022-06-27 2022-07-13 /pmc/articles/PMC9284517/ /pubmed/35759353 http://dx.doi.org/10.1021/acsami.2c05939 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Wang, Zifan
Chen, Jingwei
Kocich, Radim
Tardif, Samuel
Dolbnya, Igor P.
Kunčická, Lenka
Micha, Jean-Sébastien
Liogas, Konstantinos
Magdysyuk, Oxana V.
Szurman, Ivo
Korsunsky, Alexander M.
Grain Structure Engineering of NiTi Shape Memory Alloys by Intensive Plastic Deformation
title Grain Structure Engineering of NiTi Shape Memory Alloys by Intensive Plastic Deformation
title_full Grain Structure Engineering of NiTi Shape Memory Alloys by Intensive Plastic Deformation
title_fullStr Grain Structure Engineering of NiTi Shape Memory Alloys by Intensive Plastic Deformation
title_full_unstemmed Grain Structure Engineering of NiTi Shape Memory Alloys by Intensive Plastic Deformation
title_short Grain Structure Engineering of NiTi Shape Memory Alloys by Intensive Plastic Deformation
title_sort grain structure engineering of niti shape memory alloys by intensive plastic deformation
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9284517/
https://www.ncbi.nlm.nih.gov/pubmed/35759353
http://dx.doi.org/10.1021/acsami.2c05939
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