In-situ observation of elastic instability of stress-induced B19$^\prime$ martensite in thin NiTi wires

Fuente: arXiv
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Main Authors: Sedlák, Petr, Frost, Miroslav, Ševčík, Martin, Kadeřávek, Lukáš, Seiner, Hanuš
Format: Preprint
Published: 2025
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_version_ 1866916932830101504
author Sedlák, Petr
Frost, Miroslav
Ševčík, Martin
Kadeřávek, Lukáš
Seiner, Hanuš
author_facet Sedlák, Petr
Frost, Miroslav
Ševčík, Martin
Kadeřávek, Lukáš
Seiner, Hanuš
contents A laser-ultrasonic approach was used to measure elastic properties of a superelastic nickel-titanium wire with the aim to evaluate their evolution with stress and temperature in stress-induced martensite. It was observed that this evolution can be well described by a single smooth surface in the stress-temperature space, with the values of Young's modulus ranging from 30 to 50 GPa. The evolution of the modulus was then monitored in-situ with further heating under fixed strain, that is, during the shape setting. The results revealed that the martensite phase experienced further softening during this process, reaching Young's modulus of nearly 10 GPa at high temperatures and high stresses. In addition, the measurement enabled a direct detection of the initiation and termination temperatures of the shape setting from the elasticity data, which was used to show that it occurs in the same temperature interval for tension-induced and torsion-induced martensite.
format Preprint
id arxiv_https___arxiv_org_abs_2505_14259
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle In-situ observation of elastic instability of stress-induced B19$^\prime$ martensite in thin NiTi wires
Sedlák, Petr
Frost, Miroslav
Ševčík, Martin
Kadeřávek, Lukáš
Seiner, Hanuš
Materials Science
A laser-ultrasonic approach was used to measure elastic properties of a superelastic nickel-titanium wire with the aim to evaluate their evolution with stress and temperature in stress-induced martensite. It was observed that this evolution can be well described by a single smooth surface in the stress-temperature space, with the values of Young's modulus ranging from 30 to 50 GPa. The evolution of the modulus was then monitored in-situ with further heating under fixed strain, that is, during the shape setting. The results revealed that the martensite phase experienced further softening during this process, reaching Young's modulus of nearly 10 GPa at high temperatures and high stresses. In addition, the measurement enabled a direct detection of the initiation and termination temperatures of the shape setting from the elasticity data, which was used to show that it occurs in the same temperature interval for tension-induced and torsion-induced martensite.
title In-situ observation of elastic instability of stress-induced B19$^\prime$ martensite in thin NiTi wires
topic Materials Science
url https://arxiv.org/abs/2505.14259