TY - JOUR
T1 - Effect of CeO2 on microstructure and oxidation resistance of silicide coatings prepared on Nb-silicide-based ultrahigh temperature alloy
AU - Zhang, Yi
AU - Guo, Xi Ping
PY - 2013/1
Y1 - 2013/1
N2 - Si-Ce co-deposition coatings were prepared on an Nb-silicide-based ultrahigh temperature alloy by pack cementation processes at 1 150°C for 8 h. The effects of CeO2 content in pack mixtures on the microstructure, constituent phases and high temperature oxidation resistance of the coatings were studied. The results show that all coatings prepared with different contents of CeO2 in the pack mixtures are mainly composed of a (Nb, X)Si2 (X represents Ti, Hf and Cr) outer layer, a (Ti, Nb)5Si4 transitional layer and an Al-rich diffusion zone, which are similar to that of purely siliconized coatings. EDS analysis reveals that the distribution of Ce in the co-deposition coatings is not uniform. The content of Ce in the Hf-rich (Nb, X)Si2 phase transferred from (Nb, X)5Si3 in the base alloy is higher than that in other phases. The addition of CeO2 in the pack mixtures not only refines the microstructure of the coatings, but also obviously catalyzes the coating growth, especially when 3% CeO2 (mass fraction) is added in the pack mixtures. Both scales formed on the Si-Ce co-deposition coating and purely siliconized coating after oxidation at 1 250°C for 50 h are mainly composed of TiO2 and SiO2. However, much finer TiO2 rods are observed distributing evenly in the scale of the Si-Ce co-deposition coating after oxidation. Thus, the Si-Ce co-deposition coatings enhance the high temperature oxidation resistance due to the improved compactness of the protective oxide scale.
AB - Si-Ce co-deposition coatings were prepared on an Nb-silicide-based ultrahigh temperature alloy by pack cementation processes at 1 150°C for 8 h. The effects of CeO2 content in pack mixtures on the microstructure, constituent phases and high temperature oxidation resistance of the coatings were studied. The results show that all coatings prepared with different contents of CeO2 in the pack mixtures are mainly composed of a (Nb, X)Si2 (X represents Ti, Hf and Cr) outer layer, a (Ti, Nb)5Si4 transitional layer and an Al-rich diffusion zone, which are similar to that of purely siliconized coatings. EDS analysis reveals that the distribution of Ce in the co-deposition coatings is not uniform. The content of Ce in the Hf-rich (Nb, X)Si2 phase transferred from (Nb, X)5Si3 in the base alloy is higher than that in other phases. The addition of CeO2 in the pack mixtures not only refines the microstructure of the coatings, but also obviously catalyzes the coating growth, especially when 3% CeO2 (mass fraction) is added in the pack mixtures. Both scales formed on the Si-Ce co-deposition coating and purely siliconized coating after oxidation at 1 250°C for 50 h are mainly composed of TiO2 and SiO2. However, much finer TiO2 rods are observed distributing evenly in the scale of the Si-Ce co-deposition coating after oxidation. Thus, the Si-Ce co-deposition coatings enhance the high temperature oxidation resistance due to the improved compactness of the protective oxide scale.
KW - Microstructure
KW - Nb-silicide-based ultrahigh temperature alloy
KW - Oxidation resistance
KW - Pack cementation process
KW - Si-Ce co-deposition coatings
UR - http://www.scopus.com/inward/record.url?scp=84875317416&partnerID=8YFLogxK
M3 - 文章
AN - SCOPUS:84875317416
SN - 1004-0609
VL - 23
SP - 99
EP - 107
JO - Zhongguo Youse Jinshu Xuebao/Chinese Journal of Nonferrous Metals
JF - Zhongguo Youse Jinshu Xuebao/Chinese Journal of Nonferrous Metals
IS - 1
ER -