Effect of Cu Addition on Abnormal Grain Growth in a FeMnAlNi-Based Superelastic Alloy

IF 2.1 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY JOM Pub Date : 2024-08-06 DOI:10.1007/s11837-024-06776-z
Zhenxin Li, Yang Zhang, Haosheng Wang, Pengfei Dai, Guangda Zhao, Zhongwu Zhang
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Abstract

Grain size has a significant impact on the superelasticity of alloys. Large-sized grains show superior superelastic properties because the grain boundaries are minimized and the grain constraints caused by triple junctions are reduced. Cyclic heat treatment (CHT) is commonly employed to generate subgrains, whose energy can be consumed to induce abnormal grain growth (AGG) and obtain large-sized grains. In this paper, the effects of adding Cu on the subgrain characteristics during AGG and microstructural evolution of FeMnAlNi-based superelastic alloys were systematically investigated. The addition of Cu reduced the temperature at which the γ phase precipitates and altered the morphology of the γ phase. After the dissolution of the refined γ phases, the average subgrain size became smaller and misorientation increased. These characteristic subgrain changes improved the driving force for AGG and accelerated the grain boundary migration rate. Due to the addition of Cu, the maximum grain size reached 28.2 mm. This study provides a new method for the preparation of FeMnAlNi-based superelastic alloys with large-sized grains.

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添加铜对铁锰铝镍超弹性合金异常晶粒长大的影响
晶粒大小对合金的超弹性有重大影响。大尺寸晶粒显示出优异的超弹性特性,因为晶界最小化,三重交界造成的晶粒约束减少。循环热处理(CHT)通常用于产生亚晶粒,其能量可用于诱导异常晶粒长大(AGG)并获得大尺寸晶粒。本文系统研究了添加 Cu 对 AGG 期间亚晶粒特征的影响以及铁锰铝镍基超弹性合金的微观结构演变。Cu 的加入降低了 γ 相析出的温度,并改变了 γ 相的形态。精炼的 γ 相溶解后,平均亚晶粒尺寸变小,错向度增加。这些特征性亚晶粒变化提高了 AGG 的驱动力,并加快了晶界迁移率。由于加入了铜,最大晶粒尺寸达到了 28.2 毫米。这项研究为制备具有大尺寸晶粒的铁锰铝镍基超弹性合金提供了一种新方法。
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来源期刊
JOM
JOM 工程技术-材料科学:综合
CiteScore
4.50
自引率
3.80%
发文量
540
审稿时长
2.8 months
期刊介绍: JOM is a technical journal devoted to exploring the many aspects of materials science and engineering. JOM reports scholarly work that explores the state-of-the-art processing, fabrication, design, and application of metals, ceramics, plastics, composites, and other materials. In pursuing this goal, JOM strives to balance the interests of the laboratory and the marketplace by reporting academic, industrial, and government-sponsored work from around the world.
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