High strength Al alloy development for laser powder bed fusion

Q3 Engineering
Jin'e Sun, Baicheng Zhang, X. Qu
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引用次数: 8

Abstract

High strength Al alloy development is the key technique to additive manufacturing (AM) applied on lightweight of aerospace, automotive and military industry. Unlike the conventional wrought Al–Si eutectic alloys available for AM process, the strength of new developed Al alloy can be improved by in situ or additional nano-precipitated phase. This paper presents an overview of high strength Al alloys development including metallic additives, such as Zr, Sc, Mn, Cu, etc., and nanoparticle additives, such as ceramics (TiB2, TiC, LaB6 and TiN) as well as carbon nanotubes (CNTs). The addition of Zr and Sc elements significantly prevents hot tearing and enhances the strength of laser processed Al alloys because the nanoscale Al3Zr, Al3Sc and Al3 (Sc, Zr) precipitated phases generate, facilitate the heterogeneous nucleation of Al matrix and refine the microstructure. Moreover, the addition of Mn and Cu elements provides an increment in the toughness and strength of laser processed Al alloys through the superimposed effect of multi-element solid solution reinforcement and precipitation strengthening role of some Al2CuMg and Al6Mn. The growth process of Al alloy can be interrupted by the addition of nanoceramics particles as additional nucleation site which leads the columnar grain transforms to the equiaxed grain. Furthermore, the mechanism of mutual solubility of LaB6, TiB2, TiC and TiN in Al alloys is systematically studied. Finally, an assessment of the state in laser processed high strength Al alloys and the research demands for the expansion of laser powder bed fusion of Al metallic components are provided.
激光粉末床熔合用高强度铝合金的研制
高强度铝合金的开发是增材制造在航空航天、汽车、军工等轻量化领域应用的关键技术。与可用于AM工艺的传统锻造Al–Si共晶合金不同,新开发的Al合金的强度可以通过原位或添加纳米沉淀相来提高。本文概述了高强度铝合金的发展,包括金属添加剂,如Zr、Sc、Mn、Cu等,以及纳米颗粒添加剂,如陶瓷(TiB2、TiC、LaB6和TiN)和碳纳米管(CNTs)。Zr和Sc元素的加入显著防止了热撕裂,并提高了激光加工Al合金的强度,因为纳米级Al3Zr、Al3Sc和Al3(Sc,Zr)沉淀相的产生,促进了Al基体的非均匀成核并细化了微观结构。此外,Mn和Cu元素的加入通过多元素固溶体增强和一些Al2CuMg和Al6Mn的沉淀增强作用的叠加作用,提高了激光加工铝合金的韧性和强度。通过添加纳米陶瓷颗粒作为额外的成核位点,可以中断铝合金的生长过程,使柱状晶粒转变为等轴晶粒。此外,系统地研究了LaB6、TiB2、TiC和TiN在铝合金中的互溶机理。最后,对激光加工高强度铝合金的状态进行了评估,并对铝金属构件的激光粉末床熔接扩展提出了研究要求。
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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来源期刊
Journal of Micromechanics and Molecular Physics
Journal of Micromechanics and Molecular Physics Materials Science-Polymers and Plastics
CiteScore
3.30
自引率
0.00%
发文量
27
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