Severe plastic deformation of Ti74Nb26 shape memory alloys

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  • Texas A and M University
  • Hacettepe University
  • Universität Paderborn
  • Tomsk State University
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Details

OriginalspracheEnglisch
Seiten (von - bis)7628-7635
Seitenumfang8
FachzeitschriftMaterials Science and Engineering A
Jahrgang528
Ausgabenummer25-26
PublikationsstatusVeröffentlicht - 25 Sept. 2011
Extern publiziertJa

Abstract

Severe plastic deformation of Ti74Nb26 shape memory alloy was conducted successfully at room temperature using equal channel angular extrusion (ECAE). In conjunction with short post-extrusion heat treatments, ECAE improved the maximum transformation strain of the alloy from 1% to 1.7%. Moreover, it drastically reduced the irrecoverable strain during constant-stress thermal cycling experiments. After identical heat treatments, the specimens processed by one pass ECAE possess both higher transformation strain and higher irrecoverable strain as compared to those processed by four pass ECAE. However, the difference between the crystallographic texture contributions to the transformation strains of these specimens was minimal, and thus, the shape memory characteristics are believed to be influenced mainly by microstructural features. High dislocation density, small grain size, and precipitation of the omega phase were found to reduce not only the irrecoverable strain, but also the transformation strain.

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Severe plastic deformation of Ti74Nb26 shape memory alloys. / Ma, J.; Karaman, I.; Kockar, B. et al.
in: Materials Science and Engineering A, Jahrgang 528, Nr. 25-26, 25.09.2011, S. 7628-7635.

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Ma J, Karaman I, Kockar B, Maier HJ, Chumlyakov YI. Severe plastic deformation of Ti74Nb26 shape memory alloys. Materials Science and Engineering A. 2011 Sep 25;528(25-26):7628-7635. doi: 10.1016/j.msea.2011.06.051
Ma, J. ; Karaman, I. ; Kockar, B. et al. / Severe plastic deformation of Ti74Nb26 shape memory alloys. in: Materials Science and Engineering A. 2011 ; Jahrgang 528, Nr. 25-26. S. 7628-7635.
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abstract = "Severe plastic deformation of Ti74Nb26 shape memory alloy was conducted successfully at room temperature using equal channel angular extrusion (ECAE). In conjunction with short post-extrusion heat treatments, ECAE improved the maximum transformation strain of the alloy from 1% to 1.7%. Moreover, it drastically reduced the irrecoverable strain during constant-stress thermal cycling experiments. After identical heat treatments, the specimens processed by one pass ECAE possess both higher transformation strain and higher irrecoverable strain as compared to those processed by four pass ECAE. However, the difference between the crystallographic texture contributions to the transformation strains of these specimens was minimal, and thus, the shape memory characteristics are believed to be influenced mainly by microstructural features. High dislocation density, small grain size, and precipitation of the omega phase were found to reduce not only the irrecoverable strain, but also the transformation strain.",
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note = "Funding information: This work was supported by National Science Foundation – Division of Chemical, Bioengineering, Environmental, and Transport Systems – Bioengineering Program , grant no. 0731133 . The research also benefited from the support of National Science Foundation – International Materials Institute Program through the grant no. DMR 08-44082 , Office of Specific Programs, Division of Materials Research, Arlington, Virginia and Deutsche Forschungsgemeinschaft.",
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AU - Ma, J.

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AU - Kockar, B.

AU - Maier, H. J.

AU - Chumlyakov, Y. I.

N1 - Funding information: This work was supported by National Science Foundation – Division of Chemical, Bioengineering, Environmental, and Transport Systems – Bioengineering Program , grant no. 0731133 . The research also benefited from the support of National Science Foundation – International Materials Institute Program through the grant no. DMR 08-44082 , Office of Specific Programs, Division of Materials Research, Arlington, Virginia and Deutsche Forschungsgemeinschaft.

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N2 - Severe plastic deformation of Ti74Nb26 shape memory alloy was conducted successfully at room temperature using equal channel angular extrusion (ECAE). In conjunction with short post-extrusion heat treatments, ECAE improved the maximum transformation strain of the alloy from 1% to 1.7%. Moreover, it drastically reduced the irrecoverable strain during constant-stress thermal cycling experiments. After identical heat treatments, the specimens processed by one pass ECAE possess both higher transformation strain and higher irrecoverable strain as compared to those processed by four pass ECAE. However, the difference between the crystallographic texture contributions to the transformation strains of these specimens was minimal, and thus, the shape memory characteristics are believed to be influenced mainly by microstructural features. High dislocation density, small grain size, and precipitation of the omega phase were found to reduce not only the irrecoverable strain, but also the transformation strain.

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KW - Crystallographic texture

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