Formation of a Rhenium-base Diffusion-barrier-coating System on Ni-base Single Crystal Superalloy and its Stability at 1,423 K

被引:0
作者
Daisuke Sumoyama
Kemas Zaini Thosin
Takumi Nishimoto
Takayuki Yoshioka
Takeshi Izumi
Shigenari Hayashi
Toshio Narita
机构
[1] Hokkaido University,Graduate School of Engineering
[2] NGK Spark Plug Co,Research Group of Advanced Coatings, Graduate School of Engineering
[3] Hokkaido University,Division of Materials Science and Engineering, Graduate School of Engineering
[4] Hokkaido University,undefined
来源
Oxidation of Metals | 2007年 / 68卷
关键词
Diffusion-barrier-coating system; Re-base alloy diffusion-barrier layer; Fourth generation single-crystal nickel-base superalloy;
D O I
暂无
中图分类号
学科分类号
摘要
A diffusion-barrier-coating system having a duplex structure comprised of an inner Re(W)–Cr–Ni layer and an outer Ni-aluminide layer was formed on a fourth generation, single-crystal Ni-base superalloy by using electroplating of Re(Ni) and Ni(W) films, Al- and Cr- (high-Cr and low-Cr) pack cementations, and a combination of the two treatments. With the ReW-high-Cr coating, fine needle- or plate-like precipitates formed in the alloy substrate below the inner Re(W, Cr, Ni) layer, while there was little of this precipitate with the ReW-low-Cr pack-cementation coating. The inner, Re-base alloy layer in the ReW-high-Cr coating was identified to be a σ-(Re,Cr,W,Ni) phase, while the inner layer of the ReW-low-Cr was a mixture of σ-(Re,Cr,W,Ni) and δ-Re(Cr,W,Ni) phases. After heating the coated alloys at 1,150 °C for 100 h in air, the outer Al reservoir layer became β-NiAl containing (31–33)Al with α-Cr particles and fine precipitates of γ′-Ni3Al with both the ReW-high-Cr and ReW-low-Cr treatments. In the case of the ReW-high-Cr coating there were numerous light-colored, needle-like precipitates formed deep in the alloy substrate under the inner layer, while in the case of the ReW-low-Cr coating γ′ appeared near the inner layer. It was found that the inner, Re-base alloy layer acted as a diffusion barrier, and that its structure was maintained with little change in composition after 100 h of oxidation at 1,150 °C.
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页码:313 / 329
页数:16
相关论文
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