7th International Conference on Nanomaterials by Severe Plastic Deformation | |
Ultra-fine grained microstructure of metastable beta Ti-15Mo alloy and its effects on the phase transformations | |
Václavová, K.^1 ; Stráský, J.^1 ; Zháal, P.^1 ; Veselý, J.^1 ; Polyakova, V.^2 ; Semenova, I.^2 ; Janeek, M.^1 | |
Department of Physics of Materials, Charles University in Prague, Ke Karlovu 5, Prague | |
121 16, Czech Republic^1 | |
UFA State Aviation Technical University, Institute of Physics of Advanced Materials, K. Marx Street 12, Ufa | |
450 000, Russia^2 | |
关键词: Electrical resistance measurement; Heterogeneous precipitation; High pressure torsions; Microstructural changes; Precipitation process; Severe plastic deformations; Ultra fine grained microstructure; Ultrafine grained materials; | |
Others : https://iopscience.iop.org/article/10.1088/1757-899X/194/1/012021/pdf DOI : 10.1088/1757-899X/194/1/012021 |
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来源: IOP | |
【 摘 要 】
Processing of metastable titanium alloys by severe plastic deformation provides an opportunity to achieve exceptional grain refinement, to enhance the strength and to affect phase transformations occurring during thermal treatment. The main aim of this study is to investigate the microstructure of ultra-fine grained (UFG) material and effect of microstructural changes on phase transformations in metastable β-Ti alloy Ti-15Mo. Metastable β-Ti alloys are currently the most studied Ti-based materials with prospective use in medicine. Ti-15Mo alloy after solution treatment contains metastable β-phase. Metastable ω-phase and stable α-phase particles are formed upon annealing,. Solution treated Ti-15Mo alloy was deformed by high pressure torsion (HPT) at room temperature. Severely deformed structure after HPT with grain size of ∼200 nm was studied by transmission electron microscopy. In-situ electrical resistance measurements showed significant changes in undergoing phase transformations when compared to coarse-grained (CG) material. Scanning electron microscopy revealed heterogeneous precipitation of α-particles at grain boundaries (GB). Due to the high density of GBs in UFG structure, these precipitates are very fine and equiaxed. The study demonstrates that SPD is capable of enhancing mechanical properties due to grain refinement and via affecting precipitation processes in metastable β-Ti alloys.
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