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Spark Plasma Sintering of Cryomilled Nanocrystalline Al Alloy - Part I: Microstructure Evolution

机译:低温铣削纳米晶铝合金的火花等离子体烧结-第一部分:微观组织演变

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摘要

Aluminum alloys are widely used because they are lightweight and exhibit high strength. In recent years, spark plasma sintering (SPS) technology has emerged as a viable approach to sinter materials due to its application of rapid heating and high pressure. In this study, SPS was chosen to consolidate dense ultrafine-grained (UFG) bulk samples using cryomilled nanostructured Al 5083 alloy (Al-4.5Mg-0.57Mn-0.25Fe, wt pct) powder. Both bimodal microstructure and banded structure were observed through transmission electron microscopy (TEM) investigation. The evolution of such microstructures can be attributed to the starting powder and the process conditions, which are associated with the thermal, electrical, and pressure fields present during SPS. A finite element method (FEM) was also applied to investigate distributions in temperature, current, and stress between metallic powder particles. The FEM results reveal that the localized heating, deformation, and thermal activation occurring at interparticle regions are associated with the formation of the special microstructure.
机译:铝合金由于重量轻且强度高而被广泛使用。近年来,由于使用了快速加热和高压技术,火花等离子体烧结(SPS)技术已经成为一种可行的烧结材料方法。在这项研究中,选择SPS使用冷冻研磨的纳米结构Al 5083合金(Al-4.5Mg-0.57Mn-0.25Fe,wt pct)粉末来固结致密的超细颗粒(UFG)散装样品。通过透射电子显微镜(TEM)观察到双峰微观结构和带状结构。这种微结构的演变可归因于原料粉末和工艺条件,它们与SPS期间存在的热场,电场和压力场有关。还应用了有限元方法(FEM)来研究金属粉末颗粒之间的温度,电流和应力分布。有限元分析结果表明,在颗粒间区域发生的局部加热,变形和热活化与特殊微结构的形成有关。

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