Mechanically Alloyed High Entropy Composite

G. Popescu, M. M. Adrian, I. Csáki, C. Popescu, D. Mitrică, S. Vasile, I. Carcea
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引用次数: 4

Abstract

In the last years high entropy alloys have been investigated due to their high hardness, high temperature stability and unusual properties that make these alloys to have significant interest. In comparison with traditional alloys that are based on two or three major elements, this new generation alloys consists at least of 5 principal elements, with the concentration between 5 and 35 at.%. The present paper reports synthesis of high entropy alloys (HEA) and high entropy composites (HEC) synthesized by mechanical alloying (MA). The equiatomic AlCrFeNiMn matrix was used for creating the HEA matrix, starting from elemental powders and as reinforcing material for composites was used pure graphite. The mechanical alloying process was carried out at different duration, in a high energy planetary ball mill, under argon atmosphere. The elemental powders alloying began after '5 hours of milling and was complete after 40 hours. The mechanical alloyed matrix and composite was pressed and heat treated under argon protection. The elemental powers were investigated for physical - technological properties, and by X-ray diffraction and scanning electron microscopy. Phase pressing operation was realized with a hydraulic press and the applied pressure was progressive. The sintering process was carried out at 850°C for 2 h. The X-ray diffraction revealed that the MA process resulted in solid solutions formation and also revealed body- centred cubic (BCC) and face-centred cubic (FCC) structures with average grain size around 40 nm. In addition, nanoscale particles were highlighted by scanning electron microscopy, as well as the homogeneity of the chemical composition of the matrix and composite that was confirmed by EDX microanalysis. It was noted that HEA matrix and HEA composites were processed with a high degree of compaction and with a quite large capacity of mixed powder densification (around 70%).
机械合金化高熵复合材料
近年来,高熵合金由于其高硬度、高温稳定性和不同寻常的性能而引起了人们的极大兴趣。与传统的以两种或三种主要元素为基础的合金相比,新一代合金至少由5种主要元素组成,浓度在5%至35%之间。本文报道了机械合金化法制备高熵合金(HEA)和高熵复合材料(HEC)。等原子AlCrFeNiMn基体用于制备HEA基体,从元素粉末开始,用纯石墨作为复合材料的增强材料。在高能行星球磨机中,在氩气气氛下进行了不同时间的机械合金化过程。元素粉末合金化在5小时后开始,40小时后完成。在氩气保护下对机械合金基体和复合材料进行压制和热处理。用x射线衍射和扫描电镜对元素功率进行了物理工艺性能研究。采用液压机实现了相压操作,施加的压力是渐进的。烧结过程在850°C下进行2 h。x射线衍射表明,MA过程形成了固溶体,同时还发现了平均晶粒尺寸约为40 nm的体心立方(BCC)和面心立方(FCC)结构。此外,扫描电镜显示纳米级颗粒,EDX微量分析证实了基体和复合材料化学成分的均匀性。注意到HEA基体和HEA复合材料具有高度的压实度和相当大的混合粉末致密化容量(约70%)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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