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A Kinetic Study on the Evolution of Martensitic Transformation Behavior and Microstructures in Ti–Ta High-Temperature Shape-Memory Alloys During Aging

Authors :
Peter M. Kadletz
Gunther Eggeler
Ramona Rynko
Wolfgang W. Schmahl
Jan Frenzel
Christoph Somsen
Alexander Paulsen
Lukas Grossmann
Dennis Langenkämper
Source :
Shape Memory and Superelasticity. 5:16-31
Publication Year :
2018
Publisher :
Springer Science and Business Media LLC, 2018.

Abstract

Ti–Ta alloys represent candidate materials for high-temperature shape-memory alloys (HTSMAs). They outperform several other types of HTSMAs in terms of cost, ductility, and cold workability. However, Ti–Ta alloys are characterized by a relatively fast microstructural degradation during exposure to elevated temperatures, which gives rise to functional fatigue. In the present study, we investigate how isothermal aging affects the martensitic transformation behavior and microstructures in Ti70Ta30 HTSMAs. Ti–Ta sheets with fully recrystallized grain structures were obtained from a processing route involving arc melting, heat treatments, and rolling. The final Ti–Ta sheets were subjected to an extensive aging heat treatment program. Differential scanning calorimetry and various microstructural characterization techniques such as scanning electron microscopy, transmission electron microscopy, conventional X-ray, and synchrotron diffraction were used for the characterization of resulting material states. We identify different types of microstructural evolution processes and their effects on the martensitic and reverse transformation. Based on these results, an isothermal time temperature transformation (TTT) diagram for Ti70Ta30 was established. This TTT plot rationalizes the dominating microstructural evolution processes and related kinetics. In the present work, we also discuss possible options to slow down microstructural and functional degradation in Ti–Ta HTSMAs.

Details

ISSN :
21993858 and 2199384X
Volume :
5
Database :
OpenAIRE
Journal :
Shape Memory and Superelasticity
Accession number :
edsair.doi...........c1cbc81d9397cbf9c0517e7d617551f2
Full Text :
https://doi.org/10.1007/s40830-018-00200-7