Shape memory behavior of FeNiCoTi single and polycrystals

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Autoren

  • Huseyin Sehitoglu
  • X. Y. Zhang
  • T. Kotil
  • D. Canadinc
  • Y. Chumlyakov
  • H. J. Maier

Externe Organisationen

  • Technische Universität Istanbul
  • University of Illinois Urbana-Champaign (UIUC)
  • Tomsk State University
  • Universität Paderborn
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Details

OriginalspracheEnglisch
Seiten (von - bis)3661-3672
Seitenumfang12
FachzeitschriftMetallurgical and Materials Transactions A: Physical Metallurgy and Materials Science
Jahrgang33
Ausgabenummer12
PublikationsstatusVeröffentlicht - Dez. 2002
Extern publiziertJa

Abstract

We present experimental and theoretical evidence of thermoelastic martensites in Fe29Ni18Co4Ti alloys. In this class of alloys, the high strength in the austenite domains limits the slip deformation as verified with transmission electron microscopy. The restriction of slip permits a higher degree of recoverability of the transformation. Using both single crystals with orientation and polycrystals, the appearance of martensite plates upon deformation, and their reversion back to austenite upon heating (the shape memory effect), is revealed with in-situ optical microscopy. Theoretical results for the transformation strains and the detwinning of martensite are presented, which demonstrate convincingly the potential of these classes of alloys. Electrical resistance measurements identified the stress and temperature levels at the onset of forward and reverse transformations in isothermal deformation and thermal cycling experiments, respectively. The return of the electrical resistance to its reference value, upon austenite to martensite followed by martensite to austenite transformation, verified the recovery in the transformation strains measured in the experiments.

ASJC Scopus Sachgebiete

Zitieren

Shape memory behavior of FeNiCoTi single and polycrystals. / Sehitoglu, Huseyin; Zhang, X. Y.; Kotil, T. et al.
in: Metallurgical and Materials Transactions A: Physical Metallurgy and Materials Science, Jahrgang 33, Nr. 12, 12.2002, S. 3661-3672.

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Sehitoglu H, Zhang XY, Kotil T, Canadinc D, Chumlyakov Y, Maier HJ. Shape memory behavior of FeNiCoTi single and polycrystals. Metallurgical and Materials Transactions A: Physical Metallurgy and Materials Science. 2002 Dez;33(12):3661-3672. doi: 10.1007/s11661-002-0240-0
Sehitoglu, Huseyin ; Zhang, X. Y. ; Kotil, T. et al. / Shape memory behavior of FeNiCoTi single and polycrystals. in: Metallurgical and Materials Transactions A: Physical Metallurgy and Materials Science. 2002 ; Jahrgang 33, Nr. 12. S. 3661-3672.
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abstract = "We present experimental and theoretical evidence of thermoelastic martensites in Fe29Ni18Co4Ti alloys. In this class of alloys, the high strength in the austenite domains limits the slip deformation as verified with transmission electron microscopy. The restriction of slip permits a higher degree of recoverability of the transformation. Using both single crystals with orientation and polycrystals, the appearance of martensite plates upon deformation, and their reversion back to austenite upon heating (the shape memory effect), is revealed with in-situ optical microscopy. Theoretical results for the transformation strains and the detwinning of martensite are presented, which demonstrate convincingly the potential of these classes of alloys. Electrical resistance measurements identified the stress and temperature levels at the onset of forward and reverse transformations in isothermal deformation and thermal cycling experiments, respectively. The return of the electrical resistance to its reference value, upon austenite to martensite followed by martensite to austenite transformation, verified the recovery in the transformation strains measured in the experiments.",
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AU - Sehitoglu, Huseyin

AU - Zhang, X. Y.

AU - Kotil, T.

AU - Canadinc, D.

AU - Chumlyakov, Y.

AU - Maier, H. J.

N1 - Funding Information: This work was supported by the Air Force Office of Scientific Research, under Grant No. F49620-01-1-0136.

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N2 - We present experimental and theoretical evidence of thermoelastic martensites in Fe29Ni18Co4Ti alloys. In this class of alloys, the high strength in the austenite domains limits the slip deformation as verified with transmission electron microscopy. The restriction of slip permits a higher degree of recoverability of the transformation. Using both single crystals with orientation and polycrystals, the appearance of martensite plates upon deformation, and their reversion back to austenite upon heating (the shape memory effect), is revealed with in-situ optical microscopy. Theoretical results for the transformation strains and the detwinning of martensite are presented, which demonstrate convincingly the potential of these classes of alloys. Electrical resistance measurements identified the stress and temperature levels at the onset of forward and reverse transformations in isothermal deformation and thermal cycling experiments, respectively. The return of the electrical resistance to its reference value, upon austenite to martensite followed by martensite to austenite transformation, verified the recovery in the transformation strains measured in the experiments.

AB - We present experimental and theoretical evidence of thermoelastic martensites in Fe29Ni18Co4Ti alloys. In this class of alloys, the high strength in the austenite domains limits the slip deformation as verified with transmission electron microscopy. The restriction of slip permits a higher degree of recoverability of the transformation. Using both single crystals with orientation and polycrystals, the appearance of martensite plates upon deformation, and their reversion back to austenite upon heating (the shape memory effect), is revealed with in-situ optical microscopy. Theoretical results for the transformation strains and the detwinning of martensite are presented, which demonstrate convincingly the potential of these classes of alloys. Electrical resistance measurements identified the stress and temperature levels at the onset of forward and reverse transformations in isothermal deformation and thermal cycling experiments, respectively. The return of the electrical resistance to its reference value, upon austenite to martensite followed by martensite to austenite transformation, verified the recovery in the transformation strains measured in the experiments.

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