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CoCrFeMoNiCx中熵合金的组织及其力学和摩擦学性能
引用本文:马文林,王府伯,张爱军,孟军虎,苏博,韩杰胜. CoCrFeMoNiCx中熵合金的组织及其力学和摩擦学性能[J]. 摩擦学学报, 2021, 41(6): 913-923. DOI: 10.16078/j.tribology.2020267
作者姓名:马文林  王府伯  张爱军  孟军虎  苏博  韩杰胜
作者单位:1.兰州交通大学 机电工程学院, 甘肃 兰州 730070
基金项目:国家自然科学基金项目(51765029),甘肃省自然科学基金项目(20JR5RA561),高端轴承摩擦学技术与应用国家地方联合工程实验室开放基金项目(201907)和宁波市科技创新2025重大专项(2019B10085)资助
摘    要:采用真空感应熔炼技术制备了CoCrFeMoNiCx (x=0、1、2、3、4和5)系列中熵合金,研究了C元素的掺杂及其含量对合金微观组织、力学性能和摩擦学性能的影响. 结果表明:CoCrFeMoNiCx系列中熵合金主要由体心立方(BCC)相组成;C原子间隙固溶于BCC相,增大了合金的晶格常数,在XRD谱图中表现为衍射峰随着C含量的增加向小角度方向偏移;当C的质量分数大于2%时,BCC晶粒中有少量条状碳化物形成;随着C含量的增加,合金的硬度、强度和断裂韧性等力学性能显著提高,主要归因于C原子的间隙固溶强化效应和少量条状碳化物的出现. 与此同时,合金的磨损率持续降低,表现出良好的耐磨损性能. 室温下的磨损机制为磨粒磨损、塑性变形和疲劳磨损. 

关 键 词:中熵合金   CoCrFeMoNiCx   微观组织   力学性能   耐磨性
收稿时间:2020-12-04

Microstructure,Mechanical and Tribological Properties of CoCrFeMoNiCx Medium-Entropy Alloys
Affiliation:1.School of mechanical engineering, Lanzhou Jiaotong University, Gansu Lanzhou 730070, China2.Key laboratory of science and technology on Wear and Protection of Materials, Lanzhou Institute of Chemical Physics, Chinese Academy of Science, Gansu Lanzhou 730000, China3.National United Engineering Laboratory for Advanced Bearing Tribology, Henan University of Science and Technology, Henan Luoyang 471023, China
Abstract:High-entropy alloys (HEA) and medium-entropy alloys (MEA) have become one of the research focus in the field of materials science over the past decades. HEAs and MEAs usually consist of multi-principal metal elements with equal or near equal atomic ratio, and they have simple phase structures such as face centered cubic (FCC), body centered cubic (BCC) and hexagonal close packed (HCP) solid solutions. Compared with the HEAs and the conventional alloys, the MEAs exhibited superior properties such as high strength and toughness, excellent corrosion and oxidation resistance, high thermal stability, which make them have good application prospects in the industrial field. However, most of the MEAs usually contain a lot of expensive elements such as Co, Cr, Ni and Mo, which result in high cost and limit their application. Therefore, in this study, a new type of CoCrFeMoNiCx MEAs with low cost and good performance has been designed and prepared. The design strategies of the MEAs were as follows: firstly, in order to achieve low-cost, the Fe content of the MEAs was more than 60% and the total content of Co, Cr, Ni and Mo was less than 40%; secondly, for improving the strength and the hardness of the MEAs, C was used for interstitial solution strengthening. The CoCrFeMoNiCx (x=0, 1, 2, 3, 4 and 5) MEAs were prepared by vacuum induction melting technology, and the effects of carbon content on the microstructures, mechanical and tribological properties of the MEAs were systematically studied. The CoCrFeMoNiCx MEAs with different C content mainly consisted of BCC phase. The lattice constant of the MEAs was increased by the interstitial solution of C, which caused the diffraction peaks shift to small angles in XRD spectrum with increase C content. The interstitial solid solution of C induced severe lattice-distortion in BCC phase, which could effectively improve the mechanical properties of the MEAs. In the MEA without C, all the elements were homogeneously distributed in the alloy. By comparison, when the C content was higher than 2%, small amounts of stripe carbides were formed in BCC grains. With the increase of C content, the mechanical properties of the CoCrFeMoNiCx MEAs were significantly improved by the combination of the interstitial solution strengthening of C and the second phase strengthening of strip carbides. Among the CoCrFeMoNiCx MEAs, the MEA with 5% C content (C5 MEA) exhibited good comprehensive mechanical properties. The Rockwell hardness, yield strength, compression strength, fracture strain and fracture toughness of the C5 MEA were 34.1 HRC, 997 MPa, 2088 MPa, 43.2% and 41.2 MPa·m0.5, respectively. The addition of C had little effect on the friction coefficient of the MEAs, which always remained between 0.58 ~ 0.71. However, the addition of C could significantly improve the wear resistance of the MEAs. The wear rates of the CoCrFeMoNiCx MEAs decreased obviously with the increase of C content. The wear mechanisms of the MEAs included abrasive wear, plastic deformation and fatigue wear at room temperature. The good wear resistance of the MEAs with high C content was mainly attributed to as follows. On the one hand, with the increase of C content, the strength and hardness of the MEAs were improved obviously. It was difficult for the Si3N4 counterpart to plough the MEAs with high strength and hardness, and thus the effect of abrasive wear and plastic deformation were reduced. On the other hand, the formation of the tribo-oxide films on the worn surface during sliding could isolate the direct contact between the Si3N4 counterpart and the MEAs, which played a key role in improving the wear resistance of the alloys. Therefore, the wear resistance of the alloy was significantly improved with the increase of C content. 
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