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Tytuł pozycji:

Research progress in Ti-Ni-Hf high temperature shape memory alloys

Tytuł:
Research progress in Ti-Ni-Hf high temperature shape memory alloys
Autorzy:
YI Xiao-yang
MENG Xiang-long
CAI Wei
WANG Hai-zhen
Temat:
ti-ni-hf shape memory alloy
microstructure
martensitic transformation
shape memory effect
superelasticity
Materials of engineering and construction. Mechanics of materials
TA401-492
Źródło:
Cailiao gongcheng, Vol 49, Iss 3, Pp 31-40 (2021)
Wydawca:
Journal of Materials Engineering, 2021.
Rok publikacji:
2021
Kolekcja:
LCC:Materials of engineering and construction. Mechanics of materials
Typ dokumentu:
article
Opis pliku:
electronic resource
Język:
Chinese
ISSN:
1001-4381
Relacje:
http://jme.biam.ac.cn/CN/10.11868/j.issn.1001-4381.2020.000531; https://doaj.org/toc/1001-4381
DOI:
10.11868/j.issn.1001-4381.2020.000531
Dostęp URL:
https://doaj.org/article/f9eb2f665a1047eeba1f986246d6cd56  Link otwiera się w nowym oknie
Numer akcesji:
edsdoj.f9eb2f665a1047eeba1f986246d6cd56
Czasopismo naukowe
Ti-Ni-Hf alloy is one of the most potential high temperature shape memory alloys due to the various advantages such as higher phase transformation temperature, relatively lower cost and larger output work. However, the plastic deformation takes place prior to the reorientation of martensitic variants due to the lower matrix strength, which results in the poor shape memory properties. To date, the measures of improving the strain recovery characteristics consist of thermo-mechanical treatment (cold rolling + annealing), alloying, aging treatment and fabrication of single crystal etc. It has been revealed that the strain recovery performances of Ti-Ni-Hf alloys are closely related to the microstructural features. In the present paper, the recent progress in the field of Ti-Ni-Hf high temperature shape memory alloy was presented, mainly consisting of microstructural evolution, martensitic transformation behaviour, mechanical properties and strain recovery features, moreover, the relationship between the microstructure, martensitic transformation as well as the mechanical and strain recovery characteristics was established, based on the previous research results. At present, the poor cold or hot workability of Ti-Ni-Hf high temperature shape memory alloy is the bottleneck which limits its extensive applications. Hence, the future research may focus on the powder metallurgy and additive manufacturing of Ti-Ni-Hf high temperature shape memory alloy.

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