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异质沉淀介导的异质纳米结构增强了严重冷轧和退火CoCrFeNiNb高熵合金的强度-延展性协同效应。

Heterogeneous precipitation mediated heterogeneous nanostructure enhances strength-ductility synergy in severely cryo-rolled and annealed CoCrFeNiNb high entropy alloy.

作者信息

Sunkari U, Reddy S R, Rathod B D S, Kumar S S Satheesh, Saha R, Chatterjee S, Bhattacharjee P P

机构信息

Indian Institute of Technology Hyderabad, Kandi, Sangareddy, 502285, Telangana, India.

Defence Metallurgical Research Laboratory, Hyderabad, 500058, Telangana, India.

出版信息

Sci Rep. 2020 Apr 8;10(1):6056. doi: 10.1038/s41598-020-63038-z.

Abstract

Possibilities of enhancing mechanical properties of brittle intermetallic containing high entropy alloys (HEAs) using novel processing and microstructural design strategies were investigated in the present work. For this purpose, homogenized CoCrFeNiNb HEA consisting of FCC matrix and complex Laves phase particles was successfully processed by severe cold- or cryo-rolling to 90% reduction in thickness followed by annealing (800 °C/1 hour(h)). As compared to cold-rolling, cryo-rolling resulted in a finer lamellar nanostructure and decidedly greater fragmentation of the Laves phase. Upon annealing, the cold-rolled HEA showed a recrystallized FCC matrix dispersed with D0 structured ε nano-precipitates. In contrast, the finer nanostructure and greater driving force for accelerated precipitation of profuse nano-precipitates at the early stages of annealing inhibited recrystallization in the cryo-rolled HEA and resulted in the formation of heterogeneous microstructure consisting of retained deformed and recrystallized regions. The novel heterogeneous microstructure of the cryo-rolled and annealed HEA resulted in a remarkable enhancement in strength-ductility synergy. The present results indicated that cryo-rolling could be used as an innovative processing strategy for tailoring heterogeneous microstructure and achieving novel mechanical properties.

摘要

在本工作中,研究了使用新型加工和微观结构设计策略来提高含高熵合金(HEA)的脆性金属间化合物机械性能的可能性。为此,由面心立方(FCC)基体和复杂的拉夫斯相粒子组成的均匀化CoCrFeNiNb高熵合金通过严重冷轧或低温轧制成功加工至厚度减少90%,随后进行退火(800°C/1小时)。与冷轧相比,低温轧制产生了更细的层状纳米结构,并且拉夫斯相的破碎明显更大。退火后,冷轧高熵合金显示出分散有D0结构ε纳米析出物的再结晶FCC基体。相比之下,更细的纳米结构以及在退火早期大量纳米析出物加速析出的更大驱动力抑制了低温轧制高熵合金中的再结晶,并导致形成由保留的变形区和再结晶区组成的不均匀微观结构。低温轧制和退火后的高熵合金的新型不均匀微观结构导致强度-延展性协同效应显著增强。目前的结果表明,低温轧制可作为一种创新的加工策略,用于定制不均匀微观结构并实现新型机械性能。

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