TY - JOUR
T1 - Nonequilibrium solidification behavior and microstructural evolution of SiC fiber/TC17 composites under rapid solidification conditions
AU - Deng, Hongwen
AU - Ma, Xingjia
AU - Cao, Lingyi
AU - Zhang, Dongsheng
AU - Yao, Chunxia
AU - Zhang, Bingbing
AU - Cheng, Xu
N1 - Publisher Copyright:
© 2025 Elsevier Inc.
PY - 2025/6
Y1 - 2025/6
N2 - Hybrid additive manufacturing is an efficient method for fabricating complicated structures on fiber-reinforced titanium matrix composite workpieces. However, the laser thermal input can remelt the involved substrate, causing considerable interactions between the Ti-alloy matrix and SiC fibers (SiCfs). Therefore, it is difficult to characterize nonequilibrium-solidification behaviors and the corresponding microstructural evolution under extreme rapid-solidification conditions. Herein, in-situ synchrotron radiation X-ray diffraction was employed to investigate the microstructural evolution mechanisms of SiCf/TC17 composites in real-time under different laser remelting conditions. Results indicated that in different regions within the melt pool, the phase precipitation behaviors were different, which were influenced by the Si and C concentrations in the melt due to the decomposition of fibers. Solidification begins near the melt pool boundaries, where low Si and C concentrations results in the β-Ti phase precipitating first, followed by the precipitation of TiCx phases in the dendritic regions between the β-Ti phases. In the middle region of the melt pool, increasing solidification time causes decomposition of more SiCfs. Increasing the Si and C concentrations in the melt enhances TiCx precipitation, which should be prioritized, followed by the formation of Ti5Si3 phases and (β-Ti + Ti5Si3) eutectic phases. Further solidification induces Ti3SiC2 precipitation. The top region of the melt pool solidifies during the last solidification stage. High Si and C concentrations promote the preferential precipitation of Ti5Si3 dendrites and (Ti5Si3 + TiSi2) eutectic phases, forming a considerably textured microstructure. The Ti3SiC2 and TiSi2 phases primarily precipitate between the Ti5Si3 dendrites, and TiSi2 phases are the last phases to precipitate.
AB - Hybrid additive manufacturing is an efficient method for fabricating complicated structures on fiber-reinforced titanium matrix composite workpieces. However, the laser thermal input can remelt the involved substrate, causing considerable interactions between the Ti-alloy matrix and SiC fibers (SiCfs). Therefore, it is difficult to characterize nonequilibrium-solidification behaviors and the corresponding microstructural evolution under extreme rapid-solidification conditions. Herein, in-situ synchrotron radiation X-ray diffraction was employed to investigate the microstructural evolution mechanisms of SiCf/TC17 composites in real-time under different laser remelting conditions. Results indicated that in different regions within the melt pool, the phase precipitation behaviors were different, which were influenced by the Si and C concentrations in the melt due to the decomposition of fibers. Solidification begins near the melt pool boundaries, where low Si and C concentrations results in the β-Ti phase precipitating first, followed by the precipitation of TiCx phases in the dendritic regions between the β-Ti phases. In the middle region of the melt pool, increasing solidification time causes decomposition of more SiCfs. Increasing the Si and C concentrations in the melt enhances TiCx precipitation, which should be prioritized, followed by the formation of Ti5Si3 phases and (β-Ti + Ti5Si3) eutectic phases. Further solidification induces Ti3SiC2 precipitation. The top region of the melt pool solidifies during the last solidification stage. High Si and C concentrations promote the preferential precipitation of Ti5Si3 dendrites and (Ti5Si3 + TiSi2) eutectic phases, forming a considerably textured microstructure. The Ti3SiC2 and TiSi2 phases primarily precipitate between the Ti5Si3 dendrites, and TiSi2 phases are the last phases to precipitate.
KW - Fiber-reinforced titanium matrix composite
KW - Laser remelting process
KW - Microstructural evolution
KW - Nonequilibrium-solidification behavior
KW - Rapid-solidification conditions
UR - https://www.scopus.com/pages/publications/105003264797
U2 - 10.1016/j.matchar.2025.115073
DO - 10.1016/j.matchar.2025.115073
M3 - 文章
AN - SCOPUS:105003264797
SN - 1044-5803
VL - 224
JO - Materials Characterization
JF - Materials Characterization
M1 - 115073
ER -