TY - JOUR
T1 - Ni 基単結晶超合金のラフト組織
AU - Saito, Takuma
AU - Harada, Hiroshi
AU - Yokokawa, Tadaharu
AU - Osawa, Makoto
AU - Kawagishi, Kyoko
AU - Suzuki, Shinsuke
N1 - Publisher Copyright:
© 2022 The Japan Institute of Metals and Materials.
PY - 2022
Y1 - 2022
N2 - Series of Ni–base single–crystal superalloys with superior thermal durability have been developed to improve thermal efficiency of gas turbine systems. Microstructural transition during creep so called “raft structure” formation enhances creep properties at lower stress and higher temperature condition. Furthermore, larger perfection degree of the raft structure contributes to better creep properties under the same creep condition. To control the perfection degree of the raft structure, magnitude of a lattice misfit and an elastic misfit between γ and γA phases should be controlled. In the current situation, the lattice misfit can be controlled by using alloy design program NIMS has developed. In this review, we focused on the role of the raft structure in alloy design. Observation results and predicted mechanisms about strengthening by the microstructural transition, in addition to the mechanism about microstructural transition itself during creep, were summarized and explained. Finally, under these recognitions mentioned above, our effort to establish a new alloy design approach to control the perfection degree of the raft structure by modifying the elastic misfit was introduced.
AB - Series of Ni–base single–crystal superalloys with superior thermal durability have been developed to improve thermal efficiency of gas turbine systems. Microstructural transition during creep so called “raft structure” formation enhances creep properties at lower stress and higher temperature condition. Furthermore, larger perfection degree of the raft structure contributes to better creep properties under the same creep condition. To control the perfection degree of the raft structure, magnitude of a lattice misfit and an elastic misfit between γ and γA phases should be controlled. In the current situation, the lattice misfit can be controlled by using alloy design program NIMS has developed. In this review, we focused on the role of the raft structure in alloy design. Observation results and predicted mechanisms about strengthening by the microstructural transition, in addition to the mechanism about microstructural transition itself during creep, were summarized and explained. Finally, under these recognitions mentioned above, our effort to establish a new alloy design approach to control the perfection degree of the raft structure by modifying the elastic misfit was introduced.
KW - creep strength
KW - elastic misfit
KW - nickel–base single–crystal superalloys
KW - raft structure
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U2 - 10.2320/jinstmet.J2022010
DO - 10.2320/jinstmet.J2022010
M3 - Article
AN - SCOPUS:85141150294
SN - 0021-4876
VL - 86
SP - 157
EP - 171
JO - Nippon Kinzoku Gakkaishi/Journal of the Japan Institute of Metals
JF - Nippon Kinzoku Gakkaishi/Journal of the Japan Institute of Metals
IS - 9
ER -