4.8 Article

Mapping of Texture and Phase Fractions in Heterogeneous Stress States during Multiaxial Loading of Biomedical Superelastic NiTi

期刊

ADVANCED MATERIALS
卷 33, 期 5, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adma.202005092

关键词

multiaxial stress; NiTi; R‐ phase; shape‐ memory alloys; torsion

资金

  1. NASA Fundamental Aeronautics Program Subsonic Fixed Wing Project [NNX11AI57A]
  2. Aeronautical Sciences Project
  3. NASA [144477, NNX11AI57A] Funding Source: Federal RePORTER

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Thermoelastic deformation mechanisms in polycrystalline biomedical-grade superelastic NiTi are studied using in situ neutron diffraction during multiaxial loading and heating. The reversible R-phase variant microstructure is able to accommodate stress and strain mismatch in different loading conditions.
Thermoelastic deformation mechanisms in polycrystalline biomedical-grade superelastic NiTi are spatially mapped using in situ neutron diffraction during multiaxial loading and heating. The trigonal R-phase is formed from the cubic phase during cooling to room temperature and subsequently deforms in compression, tension, and torsion. The resulting R-phase variant microstructure from the variant reorientation and detwinning processes are equivalent for the corresponding strain in tension and compression, and the variant microstructure is reversible by isothermal loading. The R-phase variant microstructure is consistent between uniaxial and torsional loading when the principal stress directions of the stress state are considered (for the crystallographic directions observed here). The variant microstructure evolution is tracked and the similarity in general behavior between uniaxial and torsional loading, in spite of the implicit heterogeneous stress state associated with torsional loading, pointed to the ability of the reversible thermoelastic transformation in NiTi to accommodate stress and strain mismatch with deformation. This ability of the R-phase, despite its limited variants, to accommodate stress and strain and satisfy strain incompatibility in addition to the existing internal stresses has significance for reducing irrecoverable deformation mechanisms during loading and cycling through the phase transformation.

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