Investigation of Tribological Behavior of Ceramic–Graphene Composite Coating Produced by Plasma Electrolytic Oxidation

被引:0
|
作者
H. Nasiri Vatan
M. Adabi
机构
[1] Islamic Azad University,Young Researchers and Elite Club, Roudehen Branch
关键词
Mg alloy; Plasma electrolytic oxidation; Graphene; Wear resistance;
D O I
暂无
中图分类号
学科分类号
摘要
Plasma electrolyte oxidation coatings were formed on AZ31 magnesium alloy in the phosphate electrolyte containing 0 and 5 g L−1 graphenes at different process times. The composition and microstructure of the coatings were analyzed by scanning electron microscope (SEM) equipped with energy dispersive X-ray spectrometer and X-ray diffraction (XRD). The SEM images showed that by increasing the coating time, the number of coating pores decreased whereas the diameter of coating pores increased. Furthermore, the diameter and number of pores related to ceramic–graphene composite coatings were lower than ceramic ones. XRD analysis indicated that major constituents of coatings were MgO and Mg3(PO4)2. The pin-on-disk sliding tests revealed that the wear loss and coefficient of friction of ceramic–graphene composite coatings were lower than simple ones.
引用
收藏
页码:1643 / 1652
页数:9
相关论文
共 50 条
  • [21] Coating growth behavior during the plasma electrolytic oxidation process
    Hussein, R. O.
    Northwood, D. O.
    Nie, X.
    JOURNAL OF VACUUM SCIENCE & TECHNOLOGY A, 2010, 28 (04): : 766 - 773
  • [22] Effect of plasma electrolytic oxidation process on surface characteristics and tribological behavior
    Cai, Ran
    Zhao, Chen
    Nie, Xueyuan
    SURFACE & COATINGS TECHNOLOGY, 2019, 375 : 824 - 832
  • [23] Characterization of Black Ceramic Coating Layer Produced on Al Alloy by Plasma Electrolytic Oxidation in Alkaline Silicate Based Solution
    Lee, Jung-Hyung
    Kim, Seong-Jong
    Science of Advanced Materials, 2016, 8 (10) : 1908 - 1911
  • [24] Preparation of a novel yellow ceramic coating on Ti alloys by plasma electrolytic oxidation
    Jiang, Yanli
    Wang, Jiankang
    Hu, Bing
    Yao, Zhongping
    Xia, Qixing
    Jiang, Zhaohua
    SURFACE & COATINGS TECHNOLOGY, 2016, 307 : 1297 - 1302
  • [25] Plasma electrolytic oxidation coating produced on 39NiCrMo3 steel
    Pezzato, L.
    Brunelli, K.
    Dolcet, P.
    Dabala, M.
    SURFACE & COATINGS TECHNOLOGY, 2016, 307 : 73 - 80
  • [26] An investigation of the coating/substrate interface of plasma electrolytic oxidation coated aluminum
    Liu, Chen
    He, Donglei
    Yan, Qin
    Huang, Zhiquan
    Liu, Peng
    Li, Dalong
    Jiang, Guirong
    Ma, Haojie
    Nash, Philip
    Shen, Dejiu
    SURFACE & COATINGS TECHNOLOGY, 2015, 280 : 86 - 91
  • [27] The correlation between the coating structure and the corrosion behavior of the plasma electrolytic oxidation coating on aluminum
    Liu, Chen
    Liu, Peng
    Huang, Zhiquan
    Yan, Qin
    Guo, Renge
    Li, Dalong
    Jiang, Guirong
    Shen, Dejiu
    SURFACE & COATINGS TECHNOLOGY, 2016, 286 : 223 - 230
  • [28] Influence of process time on microstructure and electrochemical characteristics of ceramic oxide coating produced on Al alloy by pulsed plasma electrolytic oxidation
    Lee, Jung-Hyung
    Kim, Seong-Jong
    JOURNAL OF CERAMIC PROCESSING RESEARCH, 2016, 17 (08): : 831 - 836
  • [29] Corrosion behaviour of a magnesium matrix composite with a silicate plasma electrolytic oxidation coating
    Arrabal, R.
    Pardo, A.
    Merino, M. C.
    Mohedano, M.
    Casajus, P.
    Matykina, E.
    Skeldon, P.
    Thompson, G. E.
    CORROSION SCIENCE, 2010, 52 (11) : 3738 - 3749
  • [30] Characterization of the ceramic coating formed on 2024 al alloy by scanning plasma electrolytic oxidation
    Xu, Xingrui
    Jia, Weiping
    Yin, Tingting
    Dong, Qi
    Ma, Yutao
    Wang, Zhen
    Zhao, Zhilong
    Lv, Pengxiang
    SCIENTIFIC REPORTS, 2025, 15 (01):