TY - JOUR
T1 - Elucidating the thermal shock performance of (Nb,X)Si2 silicide coatings on Nb-Si based alloy
T2 - Oxidation kinetics and SiO2 scale crystallization behavior
AU - Zhang, Weiping
AU - Qiao, Yanqiang
AU - Guo, Xiping
AU - You, Qifan
AU - Li, Xuan
N1 - Publisher Copyright:
© 2026 Elsevier B.V.
PY - 2026/6/15
Y1 - 2026/6/15
N2 - Thermal shock resistance is a critical performance indicator for high-temperature service coatings, directly determining their operational reliability. Nb-Si based alloys, as next-generation ultra-high-temperature alloys, still lack clarity regarding the oxidation kinetics, scale formation, and microstructural evolution of their dedicated silicide coatings under thermal shock. To address this, this study systematically investigated the thermal shock behavior of two types of (Nb,X)Si2 coatings on the alloy at 1250 °C. The results indicate that both coatings exhibited distinct oxidation behavior under thermal shock compared to isothermal oxidation. The repeated rapid heating and cooling cycles induced the crystallization of the amorphous SiO2 formed on both coatings, whereas the SiO2 scales were predominantly amorphous under isothermal condition. For the Si-Al-Y coating, the scale after 100 cycles consisted of a surface TiO2 layer, a SiO2 matrix, and discontinuous Cr2O3 at the bottom, with a thickness comparable to that after isothermal oxidation. The crystallization transformation led to delamination within the SiO2 matrix, forming an inner cristabilate-SiO2 layer and an outer amorphous SiO2 layer. In contrast, for the Si-Cr-Ti coating, SiO2 underwent more extensive crystallization under thermal shock, which led to a superior barrier capability against the inward diffusion of oxygen. Consequently, the scale grew significantly slower than under isothermal condition, consisting mainly of a thin SiO2 matrix embedded with dispersed TiO2 particles. The difference in the degree of SiO2 crystallization between the two coatings is mainly attributed to their different Al contents. Specifically, the higher Al content in the Si-Al-Y coating suppressed the crystallization of SiO2.
AB - Thermal shock resistance is a critical performance indicator for high-temperature service coatings, directly determining their operational reliability. Nb-Si based alloys, as next-generation ultra-high-temperature alloys, still lack clarity regarding the oxidation kinetics, scale formation, and microstructural evolution of their dedicated silicide coatings under thermal shock. To address this, this study systematically investigated the thermal shock behavior of two types of (Nb,X)Si2 coatings on the alloy at 1250 °C. The results indicate that both coatings exhibited distinct oxidation behavior under thermal shock compared to isothermal oxidation. The repeated rapid heating and cooling cycles induced the crystallization of the amorphous SiO2 formed on both coatings, whereas the SiO2 scales were predominantly amorphous under isothermal condition. For the Si-Al-Y coating, the scale after 100 cycles consisted of a surface TiO2 layer, a SiO2 matrix, and discontinuous Cr2O3 at the bottom, with a thickness comparable to that after isothermal oxidation. The crystallization transformation led to delamination within the SiO2 matrix, forming an inner cristabilate-SiO2 layer and an outer amorphous SiO2 layer. In contrast, for the Si-Cr-Ti coating, SiO2 underwent more extensive crystallization under thermal shock, which led to a superior barrier capability against the inward diffusion of oxygen. Consequently, the scale grew significantly slower than under isothermal condition, consisting mainly of a thin SiO2 matrix embedded with dispersed TiO2 particles. The difference in the degree of SiO2 crystallization between the two coatings is mainly attributed to their different Al contents. Specifically, the higher Al content in the Si-Al-Y coating suppressed the crystallization of SiO2.
KW - Nb-Si based alloy
KW - Pack cementation
KW - Silicide coating
KW - Slurry sintering
KW - Thermal shock
UR - https://www.scopus.com/pages/publications/105036646261
U2 - 10.1016/j.surfcoat.2026.133524
DO - 10.1016/j.surfcoat.2026.133524
M3 - 文章
AN - SCOPUS:105036646261
SN - 0257-8972
VL - 530
JO - Surface and Coatings Technology
JF - Surface and Coatings Technology
M1 - 133524
ER -