Crack Type Degradation Behavior of Ni-Base Superalloy Used in Advanced Gas Turbine under Creep Condition

In order to clarify a crack type degradation mechanism of a directionally solidified Ni-base superalloy CM 247 LC, the effects of environment and microstructural changes on the crack initiation and growth behavior under creep condition have been investigated using an optical and scanning electron mi...

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Bibliographic Details
Published inTransactions of the Japan Society of Mechanical Engineers Series A Vol. 67; no. 654; pp. 280 - 287
Main Authors KOMAZAKI, Shin-ichi, SHOJI, Tetsuo, CHIBA, Hideki, ABE, Hiroki
Format Journal Article
LanguageEnglish
Japanese
Published The Japan Society of Mechanical Engineers 2001
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Summary:In order to clarify a crack type degradation mechanism of a directionally solidified Ni-base superalloy CM 247 LC, the effects of environment and microstructural changes on the crack initiation and growth behavior under creep condition have been investigated using an optical and scanning electron microscopes. Metallographic examinations revealed that the surface crack initiation and growth were closely associated with the internal oxidation, nitriding and decomposition of grain boundary carbides. The surface crack initiated at AIN/γ-matrix interface and propagated along a γ′ and carbide-free grain boundary. It was also found that the grain boundary M23C6 carbide was preferential site for creep cavity initiation, and the transformation of M6C to M23C6 during creep was the critical factor of the internal crack type degradation. Furthermore, the transgranular cracking occurred primarily along the γ-channel, which became lamellar constituent perpendicular to the loading direction because of the raft structure formation.
ISSN:0387-5008
1884-8338
DOI:10.1299/kikaia.67.280