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Microstructure Evolution in a Fast and Ultrafast Sintered Non-Equiatomic Al/Cu HEA

机译:快速和超快的微观结构演变烧结非赤型Al / Cu Hea

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摘要

One of the attractive characteristics of high entropy alloys (HEAs) is the ability to tailor their composition to obtain specific microstructures and properties by adjusting the stoichiometry to obtain a body-centered cubic (BCC) or face-centered cubic (FCC) structure. Thus, in this work, the target composition of an alloy of the FeCrCoNi family has been modified by adjusting the Al/Cu ratio in order to obtain a BCC crystalline structure. However, processing conditions always play a key role in the final microstructure and, therefore, in this work, the microstructure evolution of FeCrCoNiAl1.8Cu0.5 HEA sintered by different powder metallurgy (PM) techniques has been investigated. The techniques used range from the conventional PM sintering route, that uses high heating rates and sintering times, going through a fast sintering technique such as spark plasma sintering (SPS) to the novel and promising ultrafast sintering technique electrical resistance sintering (ERS). Results show that the increase in the processing time favours the separation of phases and the segregation of elements, which is reflected in a substantial change in the hardness of the alloy. In conclusion, the ERS technique is presented as a very promising consolidation technique for HEA.
机译:高熵合金(HEAS)的有吸引力特性之一是通过调节化学计量来获得特定微观结构和性能的能力,以获得以体为中心的立方(BCC)或面为中心的立方(FCC)结构。因此,在这项工作中,通过调节Al / Cu比以获得BCC晶体结构来修饰Fecrconi系列的合金的目标组成。然而,加工条件始终在最终的微观结构中发挥关键作用,因此,研究了由不同粉末冶金(PM)技术的Fecrconial1.8Cu0.5 Hea烧结的微观结构演化。使用来自传统PM烧结途径的范围的技术,该技术采用高加热速率和烧结时间,通过快速烧结技术,例如火花等离子体烧结(SPS)到新颖和有前途的超快烧结技术电阻烧结(ERS)。结果表明,加工时间的增加有利于相分离和元素的分离,其在合金硬度的实际变化中反映。总之,ERS技术被呈现为HEA的非常有前途的整合技术。

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