Microstructural evolution and mechanisms affecting the mechanical properties of wire arc additively manufactured Al-Zn-Mg-Cu alloy reinforced with high-entropy alloy particles

IF 6.3 2区 材料科学 Q2 CHEMISTRY, PHYSICAL
Tao Yuan, Yang Li, Shujun Chen, Xuelei Ren, Pengjing Zhao, Xiaohu Zhao, He Shan
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Abstract

The mechanical properties of Al-Zn-Mg-Cu alloys produced via wire arc additive manufacturing (WAAM) are often weakened by the presence of continuous and coarse precipitated phases, which significantly limits their practical applications. In this study, high-entropy alloy (HEA) particles were incorporated into Al-Zn-Mg-Cu alloy during the WAAM process, which inhibits the continuity of precipitated phase, and the mechanism of microstructure evolution and macroscopic mechanical properties optimization of the components are explored. The results show that HEA particles promote grain refinement, and disrupt the formation of continuous precipitated phase along the grain boundary by generating plenty of fine spot-like precipitated phases, thus inhibiting grain boundary segregation. The spot-like precipitated phases are connected via a slender second-phase-band. The primary precipitates include the metastable η', stable η, and T phases, and the diffusion of solute atoms forms the Al3Ni and Al3(Ni, Cu)2 phases. The tensile strength increases from 247.4±5.9 MPa to 326.2±19.7 MPa in the horizontal direction and from 273.0±13.7 MPa to 335.4±11.1 MPa in the vertical direction, which correspond to increases of 31.9 % and 22.9 % respectively. The enhancement of mechanical properties is mainly attributed to Hall-Petch, Orowan, load-transfer, solid-solution and dislocation strengthening mechanisms. Only slight variation occurred in the elongation, the increased number of fine spot-like precipitated phases and grain boundaries hinder the crack propagation, while the increased number of pores facilitates the crack propagation, and these effects almost balance each other out in competition. These findings are expected to provide new insights into the microstructure optimization of WAAM components, thereby meeting more practical applications.

用高熵合金颗粒强化的线弧快速成型铝锌镁铜合金的微观结构演变及其对力学性能的影响机制
通过线弧快速成型(WAAM)工艺生产的铝-锌-镁-铜合金的力学性能往往会因为连续和粗大析出相的存在而被削弱,这极大地限制了其实际应用。本研究在 WAAM 工艺中将高熵合金(HEA)颗粒加入到 Al-Zn-Mg-Cu 合金中,抑制了析出相的连续性,并探索了微观结构演化机理和部件的宏观力学性能优化。结果表明,HEA 颗粒能促进晶粒细化,并通过生成大量细小的点状析出相来破坏沿晶界连续析出相的形成,从而抑制晶界偏析。点状析出相通过细长的第二相带相连。主要析出物包括析出相、稳定相和相,溶质原子的扩散形成了 AlNi 和 Al(Ni,Cu)相。拉伸强度在水平方向上从 247.4±5.9 兆帕增加到 326.2±19.7 兆帕,在垂直方向上从 273.0±13.7 兆帕增加到 335.4±11.1 兆帕,分别增加了 31.9% 和 22.9%。力学性能的提高主要归因于霍尔-佩奇、奥罗凡、载荷传递、固溶和位错强化机制。伸长率仅有轻微变化,细小点状析出相和晶界数量的增加阻碍了裂纹的扩展,而孔隙数量的增加则促进了裂纹的扩展,这些效应在竞争中几乎相互平衡。这些发现有望为 WAAM 组件的微观结构优化提供新的见解,从而满足更多的实际应用需求。
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来源期刊
Journal of Alloys and Compounds
Journal of Alloys and Compounds 工程技术-材料科学:综合
CiteScore
11.10
自引率
14.50%
发文量
5146
审稿时长
67 days
期刊介绍: The Journal of Alloys and Compounds is intended to serve as an international medium for the publication of work on solid materials comprising compounds as well as alloys. Its great strength lies in the diversity of discipline which it encompasses, drawing together results from materials science, solid-state chemistry and physics.
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