Microstructure and self-lubricating property of a novel Al2O3/La2P4O13/ MoS2 composite layer in-situ prepared by micro-arc oxidation

被引:0
|
作者
Li, Q. [1 ]
Shang, J. [1 ]
Sun, S. [1 ]
机构
[1] Liaoning Univ Technol, Sch Mat Sci & Engn, Jinzhou 121001, Peoples R China
关键词
Solid lubricant coatings; Hardness; Surface analysis; Sliding wear; PLASMA ELECTROLYTIC OXIDATION; 6061; AL-ALLOY; CORROSION PERFORMANCE; MECHANICAL-PROPERTIES; CURRENT-DENSITY; COATINGS; PARAMETERS; BEHAVIOR;
D O I
10.1016/j.wear.2025.205968
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
A novel Al2O3/La2P4O13/MoS2 composite layer was successfully in-situ prepared on 6082-T6 alloy surface utilizing micro-arc oxidation (MAO) technology by introducing Na2MoO4, Na2S, and C2H6LaO3 into the electrolyte. The microstructures, compositions, morphologies and tribological behavior of the composite layer are characterized by XRD, XPS, SEM, EDS, TEM and UMT. The results show that: with the increase of C2H6LaO3 concentration, the surface roughness changed from 1.447 to 2.588 mu m, the porosity changed from 3.79 to 2.45 % and the hardness rises from 737.66 to 1177.41-1260.44 HV1; the self-lubricating phases La2P4O13 and MoS2 were dispersed between the hard phase Al2O3; when the concentration was 5 g/L, the average friction coefficient is reduced by 41.66 % compared with the Al2O3/MoS2 composite layer at 0 g/L. There was no obvious mass or volume changes of coupled body (Si3N4 balls) before and after sliding wear. The in-situ formation of MoS2 and La2P4O13 in the MAO layer can have a coordinate effects for improving the compactness, hardness and selflubricating behavior.
引用
收藏
页数:11
相关论文
共 50 条
  • [1] Self-lubricating properties of Al2O3/MoS2/CePO4 composite layers in-situ prepared by micro arc oxidation on 6082-T6 alloy
    Li, Q.
    Shang, J.
    MATERIALS TODAY COMMUNICATIONS, 2024, 40
  • [2] Tribological performance of in-situ transformed Cf/Al2O3 self-lubricating composite
    Ren, Jie
    Chen, Huahui
    Ma, Biao
    Zhao, Fu
    Wang, Chunyang
    Hong, Haiping
    Li, Yuan
    He, Xingliang
    Chen, Xinqi
    An, Ruowei
    WEAR, 2017, 376 : 363 - 371
  • [3] Improved wear and corrosion resistance of MoS2/MgO/MgAl2O4 composite layer in-situ prepared by one-step micro-arc oxidation
    Sun, Song
    Shang, Jian
    MATERIALS TODAY COMMUNICATIONS, 2024, 40
  • [4] Preparation and catalysis property of CuO/Al2O3 micro-arc oxidation composite coating
    Liu, Dong-Jie
    Jiang, Bai-Ling
    Liu, Zheng
    Wang, Ya-Ming
    Ge, Yan-Feng
    Zhongguo Youse Jinshu Xuebao/Chinese Journal of Nonferrous Metals, 2013, 23 (12): : 3348 - 3353
  • [5] Study on Self-lubricating MoS2/TiO2 Coating Synthesized on TC4 Surface by Micro-arc Oxidation
    TC4合金表面微弧氧化原位生长自润滑MoS2/TiO2膜层研究
    Chen, Yongnan (frank_cyn@163.com), 1600, Science Press (49): : 3195 - 3202
  • [6] Microstructure and growth process of Al2O3 film on pure aluminum by micro-arc oxidation
    Chen, CZ
    Dong, Q
    Wang, DG
    Ji, QM
    SURFACE REVIEW AND LETTERS, 2005, 12 (5-6) : 781 - 785
  • [7] Pore structure optimization of MoS2/Al2O3 self-lubricating ceramic coating for improving corrosion resistance
    Tuo, Yonglin
    Yang, Zehui
    Guo, Ziwei
    Chen, Yongnan
    Hao, Jianmin
    Zhao, Qinyang
    Kang, Yan
    Zhang, Yong
    Zhao, Yongqing
    VACUUM, 2023, 207
  • [8] Electroless Ni-P-MoS2-Al2O3 Composite Coating with Hard and Self-Lubricating Properties
    Mohanty, Shalini
    Jamal, Naghma
    Das, Alok Kumar
    Prashanth, Konda Gokuldoss
    MATERIALS, 2022, 15 (19)
  • [9] The corrosion resistance behavior of Al2O3 coating prepared on NiTi alloy by micro-arc oxidation
    Xu, J. L.
    Liu, F.
    Wang, F. P.
    Yu, D. Z.
    Zhao, L. C.
    JOURNAL OF ALLOYS AND COMPOUNDS, 2009, 472 (1-2) : 276 - 280
  • [10] Study on Self-lubricating MoS2/TiO2 Coating Synthesized on TC4 Surface by Micro -arc Oxidation
    Yang Zehui
    Wang Nan
    Chen Yongnan
    Zhang Long
    Chen Hong
    Hao Jianmin
    Zhao Yongqing
    Shi Chenxing
    Shi Wenlong
    RARE METAL MATERIALS AND ENGINEERING, 2020, 49 (09) : 3195 - 3202