Multi-stage evolution mechanism of precipitate phases at twin boundaries in Inconel 617 superalloy during long-term aging

IF 4.8 2区 材料科学 Q1 MATERIALS SCIENCE, CHARACTERIZATION & TESTING
Zhiyang Zhang, Qianying Guo, Ran Ding, Chenxi Liu, Yongchang Liu
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引用次数: 0

Abstract

This study provides a comprehensive analysis of the mechanical properties and microstructural evolution of Inconel 617 superalloy during long-term aging at 760 °C, aiming to elucidate the multi-stage evolution mechanism of the γ' phase at twin boundaries and M23C6 carbide interfaces. The findings indicate that twins predominantly form during solution annealing, while M23C6 carbides are preferentially precipitated at twin boundaries, followed by the ordered nucleation of the γ' phase at the twin boundary/M23C6 interface, resulting in the formation of a unique twin boundary/M23C6/γ' composite microstructure. The γ' phase at this interface undergoes a multi-stage evolution, encompassing disordered atomic aggregation, ordered precipitation, coarsening, and dissolution, ultimately reaching a stable state. Selective atomic diffusion is crucial in this process, with Cr and Mo preferentially diffusing toward twin boundaries to facilitate M23C6 carbide precipitation, while Al and Ti gradually promote γ' phase formation at the twin boundary/M23C6 interface. Furthermore, the multi-stage evolution of the γ' phase, driven by interdiffusion, effectively suppresses the coarsening of M23C6 carbides at twin boundaries. The synergistic evolution and mutual inhibition between M23C6 carbides and the γ' phase at twin boundaries are critical to maintaining the long-term thermal-mechanical stability of the alloy. This multi-stage evolution mechanism underscores the importance of tailoring precipitation behavior to optimize the long-term mechanical properties of Inconel 617 superalloy.
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来源期刊
Materials Characterization
Materials Characterization 工程技术-材料科学:表征与测试
CiteScore
7.60
自引率
8.50%
发文量
746
审稿时长
36 days
期刊介绍: Materials Characterization features original articles and state-of-the-art reviews on theoretical and practical aspects of the structure and behaviour of materials. The Journal focuses on all characterization techniques, including all forms of microscopy (light, electron, acoustic, etc.,) and analysis (especially microanalysis and surface analytical techniques). Developments in both this wide range of techniques and their application to the quantification of the microstructure of materials are essential facets of the Journal. The Journal provides the Materials Scientist/Engineer with up-to-date information on many types of materials with an underlying theme of explaining the behavior of materials using novel approaches. Materials covered by the journal include: Metals & Alloys Ceramics Nanomaterials Biomedical materials Optical materials Composites Natural Materials.
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