TY - JOUR
T1 - Microstructural evolution and high temperature resistance of functionally graded material Ti-6Al-4V/Inconel 718 coated by directed energy deposition-laser
AU - Ji, Shuwei
AU - Sun, Zhonggang
AU - Zhang, Wenshu
AU - Chen, Xiaolong
AU - Xie, Guoliang
AU - Chang, Hui
N1 - Publisher Copyright:
© 2020 Elsevier B.V.
PY - 2020/12/25
Y1 - 2020/12/25
N2 - This work focuses on the additive manufacturing of Ti-6Al-4V/Inconel 718 functionally graded material coated by directed energy deposition-laser (DED-L). The microstructural evolution, phase characteristics, microhardness change, and high-temperature resistance were investigated. With Inconel 718 proportion increase gradually, more alloying elements (Ni, Cr, Fe etc.) were added and the secondary phase (Ti2Ni, TiNi, etc.) precipitated. The microstructure was found to transform from columnar grain to equiaxial grain. A series of phase transformation with the increase of Inconel 718 occurred in the following sequence: α+β→α+β+Ti2Ni→β+TiNi→γ+Laves which were evidenced by experimental analysis and computational results. The microstructure is transformed and a Ti-Ni diffusion zone formed between the Ti-6Al-4V and transition layers after 800 °C exposure. The microhardness of the functionally graded material coating increases with the percentage of Inconel 718 increase. When the 100% of Inconel 718 deposited at the end, the microhardness of the layer reaches the highest value as 1030 HV1, which is attributed to the formation and precipitation of Ti2Ni, TiNi etc. The microhardness, microstructure, and phase transformation results are also generally consistent with the phase diagrams obtained from computational results. The results provide an innovative method which combines experimental analysis with computational phase diagram to research functionally graded material coating by DED-L.
AB - This work focuses on the additive manufacturing of Ti-6Al-4V/Inconel 718 functionally graded material coated by directed energy deposition-laser (DED-L). The microstructural evolution, phase characteristics, microhardness change, and high-temperature resistance were investigated. With Inconel 718 proportion increase gradually, more alloying elements (Ni, Cr, Fe etc.) were added and the secondary phase (Ti2Ni, TiNi, etc.) precipitated. The microstructure was found to transform from columnar grain to equiaxial grain. A series of phase transformation with the increase of Inconel 718 occurred in the following sequence: α+β→α+β+Ti2Ni→β+TiNi→γ+Laves which were evidenced by experimental analysis and computational results. The microstructure is transformed and a Ti-Ni diffusion zone formed between the Ti-6Al-4V and transition layers after 800 °C exposure. The microhardness of the functionally graded material coating increases with the percentage of Inconel 718 increase. When the 100% of Inconel 718 deposited at the end, the microhardness of the layer reaches the highest value as 1030 HV1, which is attributed to the formation and precipitation of Ti2Ni, TiNi etc. The microhardness, microstructure, and phase transformation results are also generally consistent with the phase diagrams obtained from computational results. The results provide an innovative method which combines experimental analysis with computational phase diagram to research functionally graded material coating by DED-L.
KW - Directed energy deposition-laser
KW - FGM coating
KW - High temperature resistance
KW - Microstructural evolution
KW - Ti-6Al-4V/Inconel 718
UR - http://www.scopus.com/inward/record.url?scp=85089553854&partnerID=8YFLogxK
U2 - 10.1016/j.jallcom.2020.156255
DO - 10.1016/j.jallcom.2020.156255
M3 - 文章
AN - SCOPUS:85089553854
SN - 0925-8388
VL - 848
JO - Journal of Alloys and Compounds
JF - Journal of Alloys and Compounds
M1 - 156255
ER -