TY - JOUR
T1 - Microstructural evolution and property variation of Nb-Ti-Si-Cr-Ta alloys regulated by tantalum content
AU - Li, Anni
AU - Guo, Xiping
N1 - Publisher Copyright:
© 2026 Elsevier Ltd. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
PY - 2026/9
Y1 - 2026/9
N2 - Five multi-component NbSi based ultrahigh temperature alloys with different Ta contents (0, 1, 2, 4, and 8 at.%) were prepared via vacuum non-consumable arc melting. The effects of Ta content on the microstructure, nanoindentation hardness, room-temperature fracture toughness, compressive strength at 1250 °C, and oxidation resistance at 1250 °C of the alloys were systematically investigated. The results indicate that the alloys containing 0 and 1 at.% Ta consist of primary γ(Nb,X)5Si3 and Nbss/γ(Nb,X)5Si3 eutectic structure. By contrast, the alloys with 2, 4, and 8 at.% Ta feature a multi-phase microstructure composed of primary γ(Nb,X)5Si3, primary α(Nb,X)5Si3, and Nbss/γ(Nb,X)5Si3 eutectic structure. Ta addition suppresses the formation of γ(Nb,X)5Si3, while promoting the formation of α(Nb,X)5Si3. The addition of Ta presents an overall beneficial effect on the comprehensive properties of the alloys. The solid solution strengthening effect derived from Ta addition enhances the nanoindentation hardness of Nbss and primary α(Nb,X)5Si3 blocks, and also improves the compressive strength at 1250 °C of the alloys. The alloy with 2 at.% Ta exhibits the optimal compressive strength of 419.7 MPa. For alloys with higher Ta contents (4 and 8 at.%), a continuous Ta2O5 layer impregnated with amorphous silicates is formed in the outer layer of the oxide scales during oxidation, which reduces the number of oxygen diffusion pathways and hinders the inward diffusion of oxygen, thereby effectively improving the oxidation resistance of the alloys.
AB - Five multi-component NbSi based ultrahigh temperature alloys with different Ta contents (0, 1, 2, 4, and 8 at.%) were prepared via vacuum non-consumable arc melting. The effects of Ta content on the microstructure, nanoindentation hardness, room-temperature fracture toughness, compressive strength at 1250 °C, and oxidation resistance at 1250 °C of the alloys were systematically investigated. The results indicate that the alloys containing 0 and 1 at.% Ta consist of primary γ(Nb,X)5Si3 and Nbss/γ(Nb,X)5Si3 eutectic structure. By contrast, the alloys with 2, 4, and 8 at.% Ta feature a multi-phase microstructure composed of primary γ(Nb,X)5Si3, primary α(Nb,X)5Si3, and Nbss/γ(Nb,X)5Si3 eutectic structure. Ta addition suppresses the formation of γ(Nb,X)5Si3, while promoting the formation of α(Nb,X)5Si3. The addition of Ta presents an overall beneficial effect on the comprehensive properties of the alloys. The solid solution strengthening effect derived from Ta addition enhances the nanoindentation hardness of Nbss and primary α(Nb,X)5Si3 blocks, and also improves the compressive strength at 1250 °C of the alloys. The alloy with 2 at.% Ta exhibits the optimal compressive strength of 419.7 MPa. For alloys with higher Ta contents (4 and 8 at.%), a continuous Ta2O5 layer impregnated with amorphous silicates is formed in the outer layer of the oxide scales during oxidation, which reduces the number of oxygen diffusion pathways and hinders the inward diffusion of oxygen, thereby effectively improving the oxidation resistance of the alloys.
KW - Mechanical properties
KW - Microstructures
KW - Multi-component
KW - Nb-Si based ultrahigh temperature alloys
KW - Oxidation resistance
KW - Ta alloying
UR - https://www.scopus.com/pages/publications/105036665798
U2 - 10.1016/j.ijrmhm.2026.107837
DO - 10.1016/j.ijrmhm.2026.107837
M3 - 文章
AN - SCOPUS:105036665798
SN - 0263-4368
VL - 139
JO - International Journal of Refractory Metals and Hard Materials
JF - International Journal of Refractory Metals and Hard Materials
M1 - 107837
ER -