通过粘结剂喷射快速成型技术制造的全液相烧结 WE43 镁合金试样的力学和腐蚀特性

IF 15.8 1区 材料科学 Q1 METALLURGY & METALLURGICAL ENGINEERING Journal of Magnesium and Alloys Pub Date : 2024-07-01 DOI:10.1016/j.jma.2024.06.023
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引用次数: 0

摘要

本研究采用粘合剂喷射增材制造(BJAM)技术,将全液相烧结作为一种制造 WE43(Mg-4wt.%Y-3wt.%RE-0.7wt.%Zr)合金部件的工艺。这种制造工艺正被开发用于生产结构或生物医学设备。具体而言,本研究的重点是利用 WE43 Mg 合金实现接近致密的微观结构,同时大幅缩短 BJAM 零件渲染后烧结后处理的持续时间。最佳工艺可获得孔隙率为 2.5% 的微观结构,并显著缩短烧结时间。BJAM 中使用的 WE43 粉末表面自发形成的 Y2O3 和 Nd2O3 氧化层可以解释烧结效果的改善。这些氧化层似乎是防止样品形状变形和形成烧结颈的关键,尤其是在烧结条件超过 WE43 合金的液相温度时。通过 BJAM 制成的烧结 WE43 试样在耐腐蚀性和机械性能方面都有显著改善,因为孔隙率的降低与烧结时间有关。
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Mechanical and corrosion properties of full liquid phase sintered WE43 magnesium alloy specimens fabricated via binder jetting additive manufacturing

This study investigates full liquid phase sintering as a process of fabrication parts from WE43 (Mg-4wt.%Y-3wt.%RE-0.7wt.%Zr) alloy using binder jetting additive manufacturing (BJAM). This fabrication process is being developed for use in producing structural or biomedical devices. Specifically, this study focused on achieving a near-dense microstructure with WE43 Mg alloy while substantially reducing the duration of sintering post-processing after BJAM part rendering. The optimal process resulted in microstructure with 2.5% porosity and significantly reduced sintering time. The improved sintering can be explained by the presence of Y2O3 and Nd2O3 oxide layers, which form spontaneously on the surface of WE43 powder used in BJAM. These layers appear to be crucial in preventing shape distortion of the resulting samples and in enabling the development of sintering necks, particularly under sintering conditions exceeding the liquidus temperature of WE43 alloy. Sintered WE43 specimens rendered by BJAM achieved significant improvement in both corrosion resistance and mechanical properties through reduced porosity levels related to the sintering time.

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来源期刊
Journal of Magnesium and Alloys
Journal of Magnesium and Alloys Engineering-Mechanics of Materials
CiteScore
20.20
自引率
14.80%
发文量
52
审稿时长
59 days
期刊介绍: The Journal of Magnesium and Alloys serves as a global platform for both theoretical and experimental studies in magnesium science and engineering. It welcomes submissions investigating various scientific and engineering factors impacting the metallurgy, processing, microstructure, properties, and applications of magnesium and alloys. The journal covers all aspects of magnesium and alloy research, including raw materials, alloy casting, extrusion and deformation, corrosion and surface treatment, joining and machining, simulation and modeling, microstructure evolution and mechanical properties, new alloy development, magnesium-based composites, bio-materials and energy materials, applications, and recycling.
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