Jiangyu Zhang, Yueqiu Liu, Yanling Chen, Shizhao Liu
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引用次数: 0
摘要
本文采用多种表征方法研究了 CoCrFeNiMn 高熵合金的机械性能、氧化行为和加工性能。该合金在室温下的屈服应力为 462 兆帕,极限拉伸强度为 1037 兆帕,断裂应变为 31.8%。氧化测试表明,在 1000 和 1200 °C 温度下,氧化层由最外层氧化层和 Cr2O3 层组成。在 1000 ℃ 时形成的 Cr2O3 层致密且连续,而当温度升高到 1200 ℃ 时,则从连续过渡到不连续。在 1200 ℃ 时,由于 Cr2O3 层的保护作用减弱以及多种复合氧化物的形成导致氧化层应力增加,氧化层出现局部剥落。磨削实验表明,随着载荷的增加,磨削力和表面粗糙度都会增加。此外,能量色散 X 射线光谱分析结果表明,120 N 时颗粒中的氧含量高于 60 N 和 90 N 时的氧含量,这表明 120 N 时磨削温度升高,导致形成粘结凸粒。
High-Temperature Oxidation Behavior and Grinding Performance of CoCrFeMnNi High-Entropy Alloy
Herein, the mechanical properties, oxidation behavior, and processing performance of the CoCrFeNiMn high-entropy alloy are investigated using multiple characterization methods. The alloy exhibits a yield stress of 462 MPa, an ultimate tensile strength of 1037 MPa, and a fracture strain of 31.8% at room temperature. Oxidation tests reveal that the oxide layer consists of an outermost oxide layer and a Cr2O3 layer at both 1000 and 1200 °C. The Cr2O3 layer formed at 1000 °C is dense and continuous, whereas it transitions from continuous to discontinuous as the temperature increases to 1200 °C. Localized peeling of the oxide layer is observed at 1200 °C due to the diminished protective effect of the Cr2O3 layer and the increased stress in the oxide layer caused by the formation of multiple complex oxides. Grinding experiments indicate that both the grinding force and surface roughness increase as the load increases. Additionally, energy-dispersive X-ray spectroscopy results show that the oxygen content of particles at a 120 N is higher than at 60 and 90 N, suggesting an elevated grinding temperature at 120 N, which leads to the formation of bonded convex particles.
期刊介绍:
Advanced Engineering Materials is the membership journal of three leading European Materials Societies
- German Materials Society/DGM,
- French Materials Society/SF2M,
- Swiss Materials Federation/SVMT.