Research progress in friction reduction and wear resistance of graphene in stainless steel applications

被引:0
作者
Guo W.-M. [1 ]
Bai Q.-S. [1 ]
Dou Y.-H. [1 ]
Guo Y.-B. [1 ]
Du Y.-L. [1 ]
机构
[1] School of Mechatronics Engineering, Harbin Institute of Technology, Harbin
基金
中国国家自然科学基金;
关键词
Friction and wear; Graphene; Mechanical properties; Selective laser melting; Stainless steel;
D O I
10.16490/j.cnki.issn.1001-3660.2021.04.003
中图分类号
学科分类号
摘要
Friction and wear of stainless-steel materials is a great waste of economy and energy. Graphene with high strength provides a new way, to improve the wear resistance of stainless-steel materials. The combination of the two materials is of great significance to the industrial field. According to the combination mode of graphene and stainless-steel materials, the research progress on the application of graphene in the friction and wear of stainless-steel materials was summarized. From the processing to the application of stainless-steel materials, the law of graphene reducing the friction coefficient of stainless steel was revealed. As a cutting fluid additive, graphene nanoparticles can greatly reduce the friction coefficient of the friction interface between stainless steel and the tool, thus improving the surface quality of stainless-steel workpiece. Preparation followed by transfer is still the main way for graphene to be applied to stainless steel surface. Graphene acts on the friction interface in the form of solid lubricant, and the wear rate of stainless-steel surface can be reduced by an order of magnitude. The continuous development of laser melting additive manufacturing technology provides an effective way for graphene reinforced stainless steel composites, greatly promotes the process of engineering application of the material, and provides a new research direction for graphene to reduce the friction and wear of stainless-steel materials. Finally, through the research on the reduction of friction and wear of stainless-steel materials by graphene, some problems existing in the current research are pointed out and possible solutions are proposed, and the application prospect of this direction is prospected. © 2021, Chongqing Wujiu Periodicals Press. All rights reserved.
引用
收藏
页码:43 / 55
页数:12
相关论文
共 80 条
[51]  
Romani E C., Larrude D G., Nachez L., Et al., Graphene grown by chemical vapour deposition on steel substrates: Friction behaviour[J], Tribology Letters, 65, 3, (2017)
[52]  
Zang Jian-Bing X.U.H.-Q., Yun-Gang Y.U.A.N., Et al., In-situ preparation of graphene coating bonded to stainless steel substrate via Cr-C bonding for excellent anticorrosion and wear resistant[J], Applied Surface Science, 492, pp. 199-208, (2019)
[53]  
Gullapalli H., Mohana Reddy A L., Kilpatrick S., Et al., Graphene growth via carburization of stainless steel and application in energy storage[J], Small, 7, 12, pp. 1697-1700, (2011)
[54]  
Upadhyaya G.S., A brief history of major powder metallurgy research centres[J], Powder Metallurgy, 59, 1, pp. 2-8, (2016)
[55]  
Levina D.A., Chernyshev L.I., Mikhailovskaya N.V., Contemporary powder metallurgy: Achievements and problems[J], Powder Metallurgy and Metal Ceramics, 46, 3-4, pp. 202-205, (2007)
[56]  
Kryachek V.M., Levina D.A., Chernyshev L.I., Developmental trends in European powder metallurgy[J], Powder Metallurgy and Metal Ceramics, 46, 11-12, pp. 608-612, (2007)
[57]  
Shard A., Deepshik H A., Gupta V., Et al., Material removal rate during powder metallurgy Cu-Ti electrodes in electrical discharge machining of EN9 steel[J], Acc Chem Res, 53, 6, (2020)
[58]  
Sluzalec A., Stochastic characteristics of powder metallurgy processing[J], Applied Mathematical Modelling, 39, 23-24, pp. 7303-7308, (2015)
[59]  
Gokce A., Findik F., Kurt A.O., Microstructural exa-mination and properties of premixed Al-Cu-Mg powder metallurgy alloy[J], Materials Characterization, 62, 7, pp. 730-735, (2011)
[60]  
Aluminum Ni<sub>3</sub>Al composites processed by powder-metallurgy[J], . Materials Science and Engineering a — Structural Materials Properties Microstructure and Processing, 183, 1-2, pp. 5-8, (1994)