In Situ Reactive Printing of Aluminum Matrix Composite with Ultra-High Volume Fraction Reinforcement.

IF 2.3 4区 工程技术 Q3 ENGINEERING, MANUFACTURING 3D Printing and Additive Manufacturing Pub Date : 2024-04-01 Epub Date: 2024-04-16 DOI:10.1089/3dp.2022.0152
Chenxi Tian, Atieh Moridi
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Abstract

Additive manufacturing (AM) can fabricate intricate structures that are infeasible or uneconomical for conventional manufacturing methods. Its unique capabilities have motivated emergence of several printing technologies and extensive research in material adoption in particular ferrous-, Ti-, and Ni-based alloys. Meanwhile, the large freezing range and high reflectivity of aluminum, a lightweight structural material, greatly reduce aluminum's compatibility with AM. The incompatibility roots from aluminum's unstable behavior in the rapid cyclic thermal conditions in AM and its poor interaction with laser. This hinders the development of laser-based aluminum AM and deteriorates the existing lack of lightweight structural materials in the intermediate temperature range. Aluminum matrix composites (AMCs) have great potential to serve as thermally stable lightweight structural materials, combining lightweight nature of aluminum matrix and strength of reinforcement phases. However, fabrication of AMC largely uses conventional methods, achieving only moderate volume fraction of reinforcement while having limited part complexity compared with AM. To address these challenges, in situ reactive printing (IRP) is adopted as a novel AM method, harnessing the reaction product of dissimilar elemental powder mix to fabricate AMC with an ultra-high volume fraction of intermetallic reinforcement. In this study, the effect of titanium addition to elemental aluminum feedstock powder is systematically studied on different aspects, including material processability, microstructural features, and mechanical performances. The results show that IRP can overcome the incompatibility between AM and aluminum and produce AMC with exceptional volume fraction of reinforcements and outstanding stiffness enhancement when compared with existing AM aluminum alloys and other AMCs.

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超高体积分数增强铝基复合材料的原位反应印花
快速成型制造(AM)可以制造出传统制造方法无法实现或不经济的复杂结构。其独特的功能促使了多种打印技术的出现,并推动了对材料采用的广泛研究,尤其是铁基、钛基和镍基合金。同时,作为一种轻质结构材料,铝的冷冻范围大、反射率高,这大大降低了铝与 AM 的兼容性。这种不兼容性源于铝在 AM 快速循环热条件下的不稳定行为及其与激光的不良相互作用。这阻碍了以激光为基础的铝 AM 的发展,并恶化了现有轻质结构材料在中温范围内的不足。铝基复合材料(AMC)结合了铝基的轻质特性和增强相的强度,具有作为热稳定轻质结构材料的巨大潜力。然而,与 AM 相比,AMC 的制造主要采用传统方法,只能实现中等体积分数的强化,同时零件复杂程度有限。为了应对这些挑战,原位反应印刷(IRP)作为一种新型 AM 方法被采用,利用不同元素粉末混合的反应产物来制造具有超高金属间增强体体积分数的 AMC。本研究系统地研究了在铝元素原料粉末中添加钛对材料加工性、微观结构特征和机械性能等不同方面的影响。结果表明,与现有的 AM 铝合金和其他 AMC 相比,IRP 可以克服 AM 与铝之间的不相容性,生产出具有超高强化剂体积分数的 AMC,并能显著提高刚度。
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来源期刊
3D Printing and Additive Manufacturing
3D Printing and Additive Manufacturing Materials Science-Materials Science (miscellaneous)
CiteScore
6.00
自引率
6.50%
发文量
126
期刊介绍: 3D Printing and Additive Manufacturing is a peer-reviewed journal that provides a forum for world-class research in additive manufacturing and related technologies. The Journal explores emerging challenges and opportunities ranging from new developments of processes and materials, to new simulation and design tools, and informative applications and case studies. Novel applications in new areas, such as medicine, education, bio-printing, food printing, art and architecture, are also encouraged. The Journal addresses the important questions surrounding this powerful and growing field, including issues in policy and law, intellectual property, data standards, safety and liability, environmental impact, social, economic, and humanitarian implications, and emerging business models at the industrial and consumer scales.
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