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Effect of Grain Boundary Serrations on Creep Deformation of Udimet-720Li Superalloy
會議論文集

Effect of Grain Boundary Serrations on Creep Deformation of Udimet-720Li Superalloy

T.-W. Chen, B.-C. Wu, Y.-C. Kang, H. Murakami, Y. Toda 和 A.-C. Yeh
Minerals, Metals and Materials Series, 頁碼.297-305
2024
Web of Science ID: WOS:001321912000028

摘要

Creep properties Heat treatment Serrated grain boundary Superalloys Activation energy Grain size and shape Precipitates Superalloys Cellulars Controlled cooling Creep deformations Creep properties Grain boundary serration Grain-boundaries Serrated grain boundary Type II Udimet 720Li Udimet 720Li superalloy Grain boundaries
This article investigates grain boundaryGrain boundary serration and its effects on high-temperatureHigh temperaturecreepCreep behavior of Udimet-720Li. Grain boundaryGrain boundary serration is induced by controlled cooling during heat treatmentsHeat treatment, with continuous and discontinuous precipitationDiscontinuous precipitation of γ′ phase identified as the competing mechanisms affecting serration formation. Continuous precipitationPrecipitation of coarse γ′ particles pins grain boundariesGrain boundary and leads to a slight serration termed the continuous precipitationPrecipitation type (type-I) boundary, while discontinuous reaction forming cellular γ/γ′ behind the mobile grain boundaryGrain boundary causes larger serration known as the discontinuous precipitationDiscontinuous precipitation type (Type-II) boundary. Samples with straight (STB), Type-I (SRB-1), Type-II (SRB-2) grain boundariesGrain boundary were produced, and creepCreep behaviors under 700 °C/700 MPa were investigated. The SRB-1 sample exhibits a notably lower minimum creepCreep rate at about 2.66 × 10–7 s−1 and a prolonged 17% rupture lifetime compared to the STB sample. These improvements are primarily attributed to the different size distribution of γ′ precipitatesPrecipitates, which contributes to a higher hindrance to dislocation movements. The presence of Type-I serration also hinders intergranular crack propagationCrack propagation, thereby extending creepCreep life. In contrast, the SRB-2 sample exhibited a higher minimum creepCreep rate, around 1.74*10–6 s−1, and a considerable 42% reduction in rupture lifetime in contrast to the STB sample. This is attributed to the enhanced grain boundaryGrain boundary fractions through the formation of Type-II serration in the SRB-2 sample, promoting grain boundaryGrain boundarydiffusionDiffusioncreepCreep. Additionally, the presence of incoherent cellular γ/γ′ interface associated with Type-II serration facilitates void nucleationNucleation, leading to increased creep damageCreep damage and a shortened creepCreep lifetime for the SRB-2 sample. © The Minerals, Metals & Materials Society 2024.

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