<p>In the present study, the design of a heterogeneous structure was proposed to simultaneously enhance the comprehensive mechanical properties of Ti-V-Al shape memory alloys by introducing the Si element. The results showed that Si addition not only induced the formation of Ti<sub>5</sub>Si<sub>3</sub> secondary phase and O′ phase, but also facilitated the appearance of β′ matrix phase, in addition to the β parent phase. The morphology of Ti<sub>5</sub>Si<sub>3</sub> secondary phases gradually evolved from rod-like to globular shape, which was controlled by the terminal migration model from the viewpoint of thermodynamic state. Moreover, the presence of β′ phase, having a distinctive chemical composition and microhardness different from those of the β phase, led to the formation of a heterogeneous structure. In particular, the Ti-V-Al-Si shape memory alloys showed excellent mechanical and functional properties, including the highest hardness of 378 HV, compressive yield strength of 1040&#xa0;MPa, and elongation of 14.5% by optimizing 3.0 at.% Si. In short, the superior comprehensive mechanical properties can be attributed to the synergistic effect of solution strengthening, precipitation strengthening, as well as the heterogeneous deformation-induced strengthening effect.</p> Graphical abstract <p></p>

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Effect of Si contents on the heterogeneous structure and mechanical properties in Ti-V-Al-based shape memory alloys

  • Wei Liu,
  • Zheng Guo,
  • Guo-Hao Zhang,
  • Yan-Qing Wu,
  • Huan Yang,
  • Xiang-Long Meng,
  • Zhi-Yong Gao,
  • Hai-Zhen Wang,
  • Shang-Zhou Zhang,
  • Xiao-Yang Yi,
  • Huan He

摘要

In the present study, the design of a heterogeneous structure was proposed to simultaneously enhance the comprehensive mechanical properties of Ti-V-Al shape memory alloys by introducing the Si element. The results showed that Si addition not only induced the formation of Ti5Si3 secondary phase and O′ phase, but also facilitated the appearance of β′ matrix phase, in addition to the β parent phase. The morphology of Ti5Si3 secondary phases gradually evolved from rod-like to globular shape, which was controlled by the terminal migration model from the viewpoint of thermodynamic state. Moreover, the presence of β′ phase, having a distinctive chemical composition and microhardness different from those of the β phase, led to the formation of a heterogeneous structure. In particular, the Ti-V-Al-Si shape memory alloys showed excellent mechanical and functional properties, including the highest hardness of 378 HV, compressive yield strength of 1040 MPa, and elongation of 14.5% by optimizing 3.0 at.% Si. In short, the superior comprehensive mechanical properties can be attributed to the synergistic effect of solution strengthening, precipitation strengthening, as well as the heterogeneous deformation-induced strengthening effect.

Graphical abstract