TY - JOUR
T1 - Comprehensive study on mechanisms for grain morphology evolution and texture development in powder bed fusion with electron beam of Co–Cr–Mo alloy
AU - Zhao, Yufan
AU - Koizumi, Yuichiro
AU - Aoyagi, Kenta
AU - Wei, Daixiu
AU - Yamanaka, Kenta
AU - Chiba, Akihiko
N1 - Funding Information:
This work was supported by JSPS KAKENHI [grant numbers 18H03834 , 26289252 , 15K14154 , 17H01329 ], a project of the Japan Ministry of Economy, Trade and Industry (METI), the New Energy and Industrial Technology Development Organization (NEDO), the Technology Research Association for Future Additive Manufacturing (TRAFAM), and the “Creation of Life Innovation Materials for Interdisciplinary and International Researcher Development” project. Y. Zhao acknowledges the financial support provided by the China Scholarship Council [grant number 201506290034 ].
Publisher Copyright:
© 2019
PY - 2019/6
Y1 - 2019/6
N2 - Grain morphology, size, and growth direction are crucial in determining the performances of metallic implant components. Understanding the effects of the manufacturing characteristics of powder bed fusion with electron beam (PBF-EB), an additive manufacturing process, on microstructure formation and anisotropy development during solidification is essential to achieve flexible microstructure control. In this study, PBF-EB was employed to fabricate a Co–Cr–Mo alloy and the grain morphology and texture formation with different process parameters were analyzed by experimental characterization with the aid of computational thermal–fluid dynamics simulations. It was found that the epitaxial growth with resulting columnar grain and near-cubic texture tended to be dominant in the solidification process, due to competitive grain growth and the heat flow characteristics in the snake-scanning strategy. However, the molten pool connection between adjacent melt tracks resulted in the random orientation of <001> in the horizontal plane, producing a fiber-like texture. In addition, nucleation and new grain growth rather than extensive epitaxial growth could be achieved by manipulating the molten pool geometry and overlap between adjacent melt tracks. Increasing the slope of the solid/liquid interface of the molten pool and decreasing the remelting fraction of adjacent melt tracks favored the formation of new grains with random orientations to restrict the extensive epitaxial growth of the columnar grains and attenuate the microstructural anisotropy.
AB - Grain morphology, size, and growth direction are crucial in determining the performances of metallic implant components. Understanding the effects of the manufacturing characteristics of powder bed fusion with electron beam (PBF-EB), an additive manufacturing process, on microstructure formation and anisotropy development during solidification is essential to achieve flexible microstructure control. In this study, PBF-EB was employed to fabricate a Co–Cr–Mo alloy and the grain morphology and texture formation with different process parameters were analyzed by experimental characterization with the aid of computational thermal–fluid dynamics simulations. It was found that the epitaxial growth with resulting columnar grain and near-cubic texture tended to be dominant in the solidification process, due to competitive grain growth and the heat flow characteristics in the snake-scanning strategy. However, the molten pool connection between adjacent melt tracks resulted in the random orientation of <001> in the horizontal plane, producing a fiber-like texture. In addition, nucleation and new grain growth rather than extensive epitaxial growth could be achieved by manipulating the molten pool geometry and overlap between adjacent melt tracks. Increasing the slope of the solid/liquid interface of the molten pool and decreasing the remelting fraction of adjacent melt tracks favored the formation of new grains with random orientations to restrict the extensive epitaxial growth of the columnar grains and attenuate the microstructural anisotropy.
KW - Additive manufacturing
KW - Crystallographic texture
KW - Grain growth
KW - Numerical simulations
KW - Powder bed fusion with electron beam
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U2 - 10.1016/j.mtla.2019.100346
DO - 10.1016/j.mtla.2019.100346
M3 - Article
AN - SCOPUS:85065545201
SN - 2589-1529
VL - 6
JO - Materialia
JF - Materialia
M1 - 100346
ER -