TY - JOUR
T1 - Additive manufacturing of micro/nano multiphase synergistically reinforced Ti-55Al-7.5Nb with a reticular boundary precipitate via direct laser deposition
AU - Xue, Hui
AU - Liang, Yongfeng
AU - Peng, Hui
AU - Wang, Yanli
AU - Lin, Junpin
N1 - Publisher Copyright:
© 2022 Elsevier B.V.
PY - 2022/10
Y1 - 2022/10
N2 - Additive manufacturing, with features of micro-area metallurgy and rapid solidification, has become an effective way to construct complex components with high efficiency and production flexibility. Hereby, this study presents a micro/nano multiphase synergistically reinforced Ti-55Al-7.5Nb/Ti2AlN-Ti5Si3 metal–matrix composite (TiAl MMC) synthesized via direct laser deposition. The as-prepared TiAl MMCs exhibit homogeneously equiaxed grains and no cracks, compared with the coarse columnar microstructure and macro/micro cracks of Ti-55Al-7.5Nb alloy. The grain size of the TiAl MMCs increases in the form of a parabola with increase of the laser power, and also increases from the bottom to the top along the building direction with fixed laser power. Precipitates of Ti2AlN and Ti5Si3 can alleviate the texture index, and thus facilitate an in situ production of isotropic MMCs. Meanwhile, TiAl MMCs feature excellent compressive and high-temperature (900 °C) tensile strength, resulting from the precipitates of rod-like Ti2AlN dispersed inside the grains, and the micro/nano-Ti5Si3 reticularly distributed at the grain boundaries (GBs). The micro/nano multiphase reinforcement could help guide the additive manufacturing of preparing reticular-boundary-reinforced cracks-free TiAl MMCs, which feature controllable microstructures and enhanced mechanical properties.
AB - Additive manufacturing, with features of micro-area metallurgy and rapid solidification, has become an effective way to construct complex components with high efficiency and production flexibility. Hereby, this study presents a micro/nano multiphase synergistically reinforced Ti-55Al-7.5Nb/Ti2AlN-Ti5Si3 metal–matrix composite (TiAl MMC) synthesized via direct laser deposition. The as-prepared TiAl MMCs exhibit homogeneously equiaxed grains and no cracks, compared with the coarse columnar microstructure and macro/micro cracks of Ti-55Al-7.5Nb alloy. The grain size of the TiAl MMCs increases in the form of a parabola with increase of the laser power, and also increases from the bottom to the top along the building direction with fixed laser power. Precipitates of Ti2AlN and Ti5Si3 can alleviate the texture index, and thus facilitate an in situ production of isotropic MMCs. Meanwhile, TiAl MMCs feature excellent compressive and high-temperature (900 °C) tensile strength, resulting from the precipitates of rod-like Ti2AlN dispersed inside the grains, and the micro/nano-Ti5Si3 reticularly distributed at the grain boundaries (GBs). The micro/nano multiphase reinforcement could help guide the additive manufacturing of preparing reticular-boundary-reinforced cracks-free TiAl MMCs, which feature controllable microstructures and enhanced mechanical properties.
KW - Finite element method
KW - Laser deposition
KW - Metal–matrix composite
KW - Synergistic reinforcement
KW - TiAl-based alloy
UR - https://www.scopus.com/pages/publications/85133804682
U2 - 10.1016/j.addma.2022.102989
DO - 10.1016/j.addma.2022.102989
M3 - 文章
AN - SCOPUS:85133804682
SN - 2214-8604
VL - 58
JO - Additive Manufacturing
JF - Additive Manufacturing
M1 - 102989
ER -