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CoCrFeNiCu高熵合金的激光粉末床熔融增材制造:加工性能、微观结构见解及(原位)力学行为

Laser Powder Bed Fusion Additive Manufacturing of a CoCrFeNiCu High-Entropy Alloy: Processability, Microstructural Insights, and (In Situ) Mechanical Behavior.

作者信息

Burgio Vito, Moeini Ghazal

机构信息

Institute of Mechanical Engineering, Westphalian University of Applied Sciences, Neidenburger Straße 43, 45897 Gelsenkirchen, Germany.

出版信息

Materials (Basel). 2025 Jun 27;18(13):3071. doi: 10.3390/ma18133071.

Abstract

High-entropy alloys are known for their promising mechanical properties, wear and corrosion resistance, which are maintained across a wide range of temperatures. In this study, a CoCrFeNiCu-based high-entropy alloy, distinguished from conventional CoCrFeNi systems by the addition of Cu, which is known to enhance toughness and wear resistance, was investigated to better understand the effects of compositional modification on processability and performance. The influence of key process parameters, specifically laser power and scan speed, on the processability of CoCrFeNiCu-based high-entropy alloys produced by laser powder bed fusion additive manufacturing was investigated, with a focus of low laser power, which is critical for minimizing defects and improving the resulting microstructure and mechanical performance. The printed sample density gradually increases with higher volumetric energy density, achieving densities exceeding 99.0%. However, at higher energy densities, the samples exhibit susceptibility to hot cracking, an issue that cannot be mitigated by adjusting the process parameters. Mechanical properties under optimized parameters were further evaluated using Charpy impact and (in situ) tensile tests. These evaluations were supplemented by in situ tensile experiments conducted within a scanning electron microscope to gain insights into the behavior of defects, such as hot cracks, during tensile testing. Despite the sensitivity to hot cracking, the samples exhibited a respectable ultimate tensile strength of 662 MPa, comparable to fine-grained steels like S500MC (070XLK). These findings underscore the potential of CoCrFeNiCu-based high-entropy alloys for advanced applications. However, they also highlight the necessity for developing strategies to ensure stable and reliable processing methods that can mitigate the susceptibility to hot cracking.

摘要

高熵合金以其 promising 的机械性能、耐磨性和耐腐蚀性而闻名,这些性能在很宽的温度范围内都能保持。在本研究中,研究了一种基于 CoCrFeNiCu 的高熵合金,它通过添加 Cu 与传统的 CoCrFeNi 体系区分开来,已知 Cu 可提高韧性和耐磨性,以更好地理解成分改性对加工性能和性能的影响。研究了关键工艺参数,特别是激光功率和扫描速度,对通过激光粉末床熔融增材制造生产的基于 CoCrFeNiCu 的高熵合金加工性能的影响,重点是低激光功率,这对于最小化缺陷和改善所得微观结构及机械性能至关重要。随着体积能量密度的增加,打印样品的密度逐渐增大,密度超过 99.0%。然而,在较高能量密度下,样品表现出对热裂纹的敏感性,这一问题无法通过调整工艺参数来缓解。使用夏比冲击试验和(原位)拉伸试验进一步评估了优化参数下的机械性能。通过在扫描电子显微镜内进行的原位拉伸实验对这些评估进行了补充,以深入了解拉伸试验过程中热裂纹等缺陷的行为。尽管对热裂纹敏感,但样品仍表现出可观的 662 MPa 的极限抗拉强度,与 S500MC(070XLK)等细晶粒钢相当。这些发现强调了基于 CoCrFeNiCu 的高熵合金在先进应用中的潜力。然而,它们也凸显了制定策略以确保稳定可靠的加工方法以减轻对热裂纹敏感性的必要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b82f/12250662/cfa8ae50fe57/materials-18-03071-g001.jpg

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