TY - JOUR
T1 - The Effect of Cold Swaging Deformation on the Microstructures and Mechanical Properties of a Novel Metastable β Type Ti–10Mo–6Zr–4Sn–3Nb Alloy for Biomedical Devices
AU - Cheng, Jun
AU - Wang, Hongchuan
AU - Li, Jinshan
AU - Gai, Jinyang
AU - Ru, Jinming
AU - Du, Zhaoxin
AU - Fan, Jiangkun
AU - Niu, Jinlong
AU - Song, Hongjie
AU - Yu, Zhentao
N1 - Publisher Copyright:
© Copyright © 2020 Cheng, Wang, Li, Gai, Ru, Du, Fan, Niu, Song and Yu.
PY - 2020/8/28
Y1 - 2020/8/28
N2 - This work investigated the microstructures, texture evolution, and mechanical properties of newly designed metastable β type Ti–10Mo–6Zr–4Sn–3Nb (wt.%) alloys for biomedical devices, which were subjected to cold swaging deformation with reductions of 15–75%. With the increment in the reduction of swaging deformation, the grains are broken and gradually refined, and stress-induced martensite transformation takes place, resulting in the formation of the α” phase. Moreover, the {1 1 2} <1 1 1> and {1 1 0} <1 1 2> fibers turn into γ-fiber {1 1 1} <1 1 0> and α-fiber {1 1 2} <1 1 0> with the increment in the swaging reduction. The α-fiber texture in particular, first weakens and then strengthens during cold deformation. Under the combined effect of sub-structures, grain refinement, and texture evolution, the strength of the alloy is gradually enhanced with the increment in the cold deformation reduction. The solution-treated alloy bar shows superior cold workability in the swaging process. The plasticity remains at a moderate level because the initial grains have not been completely broken at the beginning of cold swaging deformation. The elastic modulus of the alloy shows a downward trend with an increasing reduction, which is related to the dislocation multiplication, grain refinement, and grain orientation evolution during cold swaging deformation.
AB - This work investigated the microstructures, texture evolution, and mechanical properties of newly designed metastable β type Ti–10Mo–6Zr–4Sn–3Nb (wt.%) alloys for biomedical devices, which were subjected to cold swaging deformation with reductions of 15–75%. With the increment in the reduction of swaging deformation, the grains are broken and gradually refined, and stress-induced martensite transformation takes place, resulting in the formation of the α” phase. Moreover, the {1 1 2} <1 1 1> and {1 1 0} <1 1 2> fibers turn into γ-fiber {1 1 1} <1 1 0> and α-fiber {1 1 2} <1 1 0> with the increment in the swaging reduction. The α-fiber texture in particular, first weakens and then strengthens during cold deformation. Under the combined effect of sub-structures, grain refinement, and texture evolution, the strength of the alloy is gradually enhanced with the increment in the cold deformation reduction. The solution-treated alloy bar shows superior cold workability in the swaging process. The plasticity remains at a moderate level because the initial grains have not been completely broken at the beginning of cold swaging deformation. The elastic modulus of the alloy shows a downward trend with an increasing reduction, which is related to the dislocation multiplication, grain refinement, and grain orientation evolution during cold swaging deformation.
KW - cold swaging deformation
KW - mechanical properties
KW - metastable β Ti alloy
KW - microstructure
KW - texture evolution
KW - Ti–10Mo–6Zr–4Sn–3Nb alloy
UR - http://www.scopus.com/inward/record.url?scp=85090798529&partnerID=8YFLogxK
U2 - 10.3389/fmats.2020.00228
DO - 10.3389/fmats.2020.00228
M3 - 文章
AN - SCOPUS:85090798529
SN - 2296-8016
VL - 7
JO - Frontiers in Materials
JF - Frontiers in Materials
M1 - 228
ER -