Additive Manufacturing Technologies of High Entropy Alloys (HEA): Review and Prospects.

Pub Date : 2023-03-19 DOI:10.3390/ma16062454
Tomer Ron, Amnon Shirizly, Eli Aghion
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引用次数: 9

Abstract

Additive manufacturing (AM) technologies have gained considerable attention in recent years as an innovative method to produce high entropy alloy (HEA) components. The unique and excellent mechanical and environmental properties of HEAs can be used in various demanding applications, such as the aerospace and automotive industries. This review paper aims to inspect the status and prospects of research and development related to the production of HEAs by AM technologies. Several AM processes can be used to fabricate HEA components, mainly powder bed fusion (PBF), direct energy deposition (DED), material extrusion (ME), and binder jetting (BJ). PBF technologies, such as selective laser melting (SLM) and electron beam melting (EBM), have been widely used to produce HEA components with good dimensional accuracy and surface finish. DED techniques, such as blown powder deposition (BPD) and wire arc AM (WAAM), that have high deposition rates can be used to produce large, custom-made parts with relatively reduced surface finish quality. BJ and ME techniques can be used to produce green bodies that require subsequent sintering to obtain adequate density. The use of AM to produce HEA components provides the ability to make complex shapes and create composite materials with reinforced particles. However, the microstructure and mechanical properties of AM-produced HEAs can be significantly affected by the processing parameters and post-processing heat treatment, but overall, AM technology appears to be a promising approach for producing advanced HEA components with unique properties. This paper reviews the various technologies and associated aspects of AM for HEAs. The concluding remarks highlight the critical effect of the printing parameters in relation to the complex synthesis mechanism of HEA elements that is required to obtain adequate properties. In addition, the importance of using feedstock material in the form of mix elemental powder or wires rather than pre-alloyed substance is also emphasized in order that HEA components can be produced by AM processes at an affordable cost.

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高熵合金增材制造技术综述与展望。
增材制造(AM)技术作为一种生产高熵合金(HEA)部件的创新方法,近年来受到了广泛关注。HEAs独特而优异的机械和环境性能可用于各种苛刻的应用,如航空航天和汽车工业。本文综述了增材制造HEAs的研究现状和发展前景。几种增材制造工艺可用于制造HEA组件,主要是粉末床熔合(PBF)、直接能量沉积(DED)、材料挤压(ME)和粘结剂喷射(BJ)。选择性激光熔化(SLM)和电子束熔化(EBM)等PBF技术已被广泛用于生产具有良好尺寸精度和表面光洁度的HEA部件。喷粉沉积(BPD)和电弧增材制造(WAAM)等具有高沉积速率的DED技术可用于生产表面光饰质量相对较低的大型定制零件。BJ和ME技术可用于生产需要随后烧结以获得足够密度的绿体。使用增材制造生产HEA组件提供了制造复杂形状和制造具有增强颗粒的复合材料的能力。然而,AM制造的HEA的微观结构和力学性能会受到加工参数和后处理热处理的显著影响,但总的来说,AM技术似乎是一种有前途的方法来生产具有独特性能的先进HEA部件。本文综述了高等院校增材制造的各种技术和相关方面。结束语强调了打印参数对HEA元素复杂合成机制的关键影响,而HEA元素需要获得足够的性能。此外,还强调了以混合元素粉末或线材而不是预合金物质的形式使用原料材料的重要性,以便HEA组件可以通过增材制造工艺以负担得起的成本生产。
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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