TY - JOUR
T1 - Heterogeneous microstructures and corrosion resistance of biomedical Co-Cr-Mo alloy fabricated by electron beam melting (EBM)
AU - Wei, Daixiu
AU - Koizumi, Yuichiro
AU - Chiba, Akihiko
AU - Ueki, Kosuke
AU - Ueda, Kyosuke
AU - Narushima, Takayuki
AU - Tsutsumi, Yusuke
AU - Hanawa, Takao
N1 - Funding Information:
This work was supported by JSPS KAKENHI Grant Number 26289252 , 15K14154 , 17H01329 . This work was partly supported by the “Creation of Life Innovation Materials for Interdisciplinary and International Researcher Development” project, and the Cooperative Research and Development Center for Advanced Materials, Institute for materials Research, Tohoku University.
Publisher Copyright:
© 2018
PY - 2018/12
Y1 - 2018/12
N2 - We have investigated the spatial distribution of microstructures of a Co-Cr-Mo alloy rod fabricated by Electron Beam Melting (EBM) method along built height. The topside of the rod is rich in γ-fcc phase and consists of fine grains with high local distortion density. The bottom part has an ε-hcp single phase and consists of relatively coarser grains with low local distortion density. The middle part of the rod consisted of the mixture of both phases. The mean grain size increases from 56 μm (at the top of the rod) to 159 μm (at the bottom), and is accompanied by a decrease in the γ-fcc phase fraction. On the other hand, a large number of precipitates including the main M 23 X 6 phase and minor phases (η-phase and π-phase) were observed. The area fraction of the precipitates increases gradually from 5.26% (at the top) to 8.73% (at the bottom), and the relative proportion of each phase fluctuates at different positions. The hardness of the top side is lower than that of the bottom side. As a result, the hardness of the samples, as well as the area fraction of precipitates formed in the samples, increases gradually from top to bottom of the rod, while corrosion resistance is uniformly high throughout the rod almost independently of the location. The mechanism behind the formation of phase distribution is discussed in terms of thermodynamic phase stability and kinetics of phase transformation accompanying the thermal history during the post-solidification process.
AB - We have investigated the spatial distribution of microstructures of a Co-Cr-Mo alloy rod fabricated by Electron Beam Melting (EBM) method along built height. The topside of the rod is rich in γ-fcc phase and consists of fine grains with high local distortion density. The bottom part has an ε-hcp single phase and consists of relatively coarser grains with low local distortion density. The middle part of the rod consisted of the mixture of both phases. The mean grain size increases from 56 μm (at the top of the rod) to 159 μm (at the bottom), and is accompanied by a decrease in the γ-fcc phase fraction. On the other hand, a large number of precipitates including the main M 23 X 6 phase and minor phases (η-phase and π-phase) were observed. The area fraction of the precipitates increases gradually from 5.26% (at the top) to 8.73% (at the bottom), and the relative proportion of each phase fluctuates at different positions. The hardness of the top side is lower than that of the bottom side. As a result, the hardness of the samples, as well as the area fraction of precipitates formed in the samples, increases gradually from top to bottom of the rod, while corrosion resistance is uniformly high throughout the rod almost independently of the location. The mechanism behind the formation of phase distribution is discussed in terms of thermodynamic phase stability and kinetics of phase transformation accompanying the thermal history during the post-solidification process.
KW - Additive manufacturing
KW - Cobalt chromium molybdenum alloy
KW - Electron beam melting
KW - Phase transformation
KW - Precipitates
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U2 - 10.1016/j.addma.2018.09.006
DO - 10.1016/j.addma.2018.09.006
M3 - Article
AN - SCOPUS:85053820839
SN - 2214-8604
VL - 24
SP - 103
EP - 114
JO - Additive Manufacturing
JF - Additive Manufacturing
ER -