高 γ' 相含量粉末及变形高温合金组织和力学性能的异同性
收稿日期: 2023-07-07
修回日期: 2023-12-10
网络出版日期: 2024-01-24
基金资助
国家自然科学基金项目(52271087);国家科技重大专项项目(J2017-VI-0017-089)
Similarities and Differences of Microstructure and Mechanical Properties Between High γ' Content Powder and Wrought Superalloys
Received date: 2023-07-07
Revised date: 2023-12-10
Online published: 2024-01-24
Supported by
National Natural Science Foundation of China(52271087);National Science and Technology Major Project(J2017-VI-0017-089)
探究粉末冶金和传统铸锻工艺所制备的高温合金组织性能的异同性,可为难变形涡轮盘的实际生产和服役安全提供理论参考。本工作利用SEM、TEM、EBSD表征以及Vickers硬度和高温拉伸实验等方法研究了粉末合金(FGH4720Li合金)和变形合金(GH4720Li合金)微观组织特征和力学性能的异同点,并详细分析了异同点之间的关联性。结果表明,FGH4720Li合金和GH4720Li合金的位错和孪晶亚结构形态分布、晶粒取向及孪晶界分布均相似。不同之处在于:GH4720Li合金中的γ
王洪瑛 , 姚志浩 , 李大禹 , 郭婧 , 姚凯俊 , 董建新 . 高 γ' 相含量粉末及变形高温合金组织和力学性能的异同性[J]. 金属学报, 2025 , 61(9) : 1364 -1374 . DOI: 10.11900/0412.1961.2023.00291
The turbine disk is a crucial heat-resistant component of aeronautical engines. An investigation into the similarities and differences in the microstructure and mechanical properties of superalloys fabricated using powder metallurgy and conventional casting and wrought methods could provide a theoretical framework for ensuring the production and operational reliability of turbine disks that are difficult to deform. GH4720Li (Udimet720Li) alloy is a commonly used nickel-based superalloy reinforced through precipitation. The volume fraction of γ' precipitation in GH4720Li alloy is 45%. It is mainly used to make compressor and turbine disks for use at 650-750 oC, as well as turbine disks for use at 900 oC in a short time. The mechanical properties of the GH4720Li alloy are closely associated with its microstructure. The mechanical properties of the alloy, including hardness, yield strength, and tensile strength, are influenced by factors such as grain size and orientation, distribution of the γ′ phase, presence of twins, and arrangement of grain boundaries. To investigate the similarities and differences of the microstructure and mechanical properties between powder alloy (FGH4720Li alloy) and wrought alloy (GH4720Li alloy), which were prepared by powder metallurgy and traditional cast and wrought processes, the microstructure characteristics of FGH4720Li alloy and GH4720Li alloy were observed and analyzed by SEM, TEM, and EBSD (FGH4720Li alloy). The mechanical properties of both alloys were studied via Vickers hardness and high-temperature tensile tests. Furthermore, the relationship between the microstructure and mechanical properties of both alloys was thoroughly discussed. Results show that the distribution characteristics of dislocation, twin substructure morphology, grain orientation concentration, and twin boundary in both alloys are similar. Wide twins (0.5-1 μm) and some narrow twins (< 100 nm) were observed in both two alloys, and the type of twin boundary is primarily Σ3. No obvious preferred orientation was noticed in both alloys. The difference is that the size of γ
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