An optimal grain boundary engineering approach to improving the mechanical properties of FeCoCrNi high-entropy alloys at different temperatures

IF 7 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY Materials Science and Engineering: A Pub Date : 2025-07-01 Epub Date: 2025-04-14 DOI:10.1016/j.msea.2025.148344
Z.P. Jia , X.J. Guan , F. Shi , X.W. Li
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Abstract

The influence of grain boundary engineering (GBE) on the mechanical properties of FeCoCrNi high-entropy alloy (HEA) at different temperatures was systematically examined. An optimal GBE process, namely cold rolling (with 5 % reduction) followed by annealing (at 900 °C for 4 h), was ascertained to markedly modify the grain boundary character distribution (GBCD) in the alloy, and significantly increase the fraction of special boundaries (Σ3-Σ29) to as high as 82.4 %, and meanwhile, the connectivity of random high-angle grain boundaries (RHAGBs) has been effectively disrupted. Such a modified GBCD leads to an improvement in room-temperature tensile ductility without loss of strength, but to a simultaneous enhancement in strength and ductility at high temperatures (600 °C–800 °C). The improved properties result mainly from the inducement of abundant Σ3 boundaries that effectively inhibit intergranular crack initiation and propagation during plastic deformation. Also, the GBE process optimizes deformation uniformity, mitigates dynamic recovery and recrystallization and suppresses dynamic strain aging at high temperatures, further facilitating more stable and homogeneous plastic deformation. This study has offered a detailed perspective on how GBE affects the plastic deformation and damage behavior of FeCoCrNi HEA at different temperatures, thus providing a novel pathway to improve the mechanical properties of HEA especially at high temperatures.
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改善feccrni高熵合金不同温度下力学性能的最佳晶界工程方法
系统研究了晶界工程对feccrni高熵合金(HEA)在不同温度下力学性能的影响。优选的GBE工艺,即冷轧(压下5%)后退火(900℃热处理4 h),可以明显改变合金的晶界特征分布(GBCD),显著提高特殊晶界的比例(Σ3-Σ29),达到82.4%,同时有效地破坏了随机高角度晶界(RHAGBs)的连性。这种改性的GBCD可以改善室温拉伸延展性而不损失强度,但在高温(600°C - 800°C)下强度和延展性同时增强。性能的改善主要是由于丰富的Σ3边界的诱导,有效地抑制了塑性变形过程中晶间裂纹的萌生和扩展。此外,GBE工艺优化了变形均匀性,减轻了动态恢复和再结晶,抑制了高温下的动态应变老化,进一步促进了更稳定和均匀的塑性变形。本研究提供了GBE在不同温度下如何影响feccrni HEA的塑性变形和损伤行为的详细视角,从而为改善HEA的力学性能特别是高温力学性能提供了新的途径。
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来源期刊
Materials Science and Engineering: A
Materials Science and Engineering: A 工程技术-材料科学:综合
CiteScore
11.50
自引率
15.60%
发文量
1811
审稿时长
31 days
期刊介绍: Materials Science and Engineering A provides an international medium for the publication of theoretical and experimental studies related to the load-bearing capacity of materials as influenced by their basic properties, processing history, microstructure and operating environment. Appropriate submissions to Materials Science and Engineering A should include scientific and/or engineering factors which affect the microstructure - strength relationships of materials and report the changes to mechanical behavior.
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