Effect of Zr on creep deformation behaviors of PM Ni-based superalloys

IF 3.5 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Journal of Materials Science Pub Date : 2025-01-08 DOI:10.1007/s10853-024-10386-0
Jian Jia, Haopeng Zhang, Ting Yan, Qiong Hou, Xiaokun Li, Yiwen Zhang
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Abstract

In this study, the creep tests of three PM Ni-based superalloys with different Zr contents were carried out at 700 °C/780 MPa, 750 °C/550 MPa and 800 °C/400 MPa, respectively. The effect of Zr on creep deformation behaviors was studied by OM, SEM, EBSD and AC-STEM. The results show that the addition of appropriate Zr (0.1 wt.%) inhibits crack initiation and premature cracking, prolongates the creep rupture time, reduces the minimum creep rate, and increases the proportion of steady-state creep duration. However, excessive Zr content (0.5 wt.%) can promote the continuous precipitation of μ, σ, and Ni7Zr2 phases at the grain boundaries, which is easy to become a crack source and reduce the creep performance. In general, the alloy with 0.1Zr addition has high creep strength, low tendency of intergranular cracking at high temperature, and the best overall creep performance. This study provides a theoretical basis for the appropriate addition of Zr in PM Ni-based superalloys and provides some ideas for the optimization of alloy composition and design of novel PM Ni-based superalloys.

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Zr对PM - ni基高温合金蠕变行为的影响
本文对3种不同Zr含量的PM镍基高温合金分别在700℃/780 MPa、750℃/550 MPa和800℃/400 MPa下进行了蠕变试验。采用OM、SEM、EBSD和AC-STEM研究了Zr对合金蠕变行为的影响。结果表明:添加适量Zr (0.1 wt.%)可抑制裂纹萌生和过早开裂,延长蠕变破裂时间,降低最小蠕变速率,增加稳态蠕变持续时间;而过量的Zr含量(0.5 wt.%)会促进晶界处μ、σ和Ni7Zr2相的连续析出,容易成为裂纹源,降低蠕变性能。总的来说,添加0.1Zr的合金蠕变强度高,高温下晶间开裂倾向低,整体蠕变性能最好。本研究为在PM镍基高温合金中适当添加Zr提供了理论依据,并为优化合金成分和设计新型PM镍基高温合金提供了一些思路。
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来源期刊
Journal of Materials Science
Journal of Materials Science 工程技术-材料科学:综合
CiteScore
7.90
自引率
4.40%
发文量
1297
审稿时长
2.4 months
期刊介绍: The Journal of Materials Science publishes reviews, full-length papers, and short Communications recording original research results on, or techniques for studying the relationship between structure, properties, and uses of materials. The subjects are seen from international and interdisciplinary perspectives covering areas including metals, ceramics, glasses, polymers, electrical materials, composite materials, fibers, nanostructured materials, nanocomposites, and biological and biomedical materials. The Journal of Materials Science is now firmly established as the leading source of primary communication for scientists investigating the structure and properties of all engineering materials.
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