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Volume 40 Issue 5
May  2018
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Article Contents
ZHANG Yu-lin, ZHU Xin-bin, YU Pei-hang, ZUO You, ZHANG You, CHEN Fei. Friction properties of C-containing ceramic coatings on an Mg-Li alloy[J]. Chinese Journal of Engineering, 2018, 40(5): 605-611. doi: 10.13374/j.issn2095-9389.2018.05.011
Citation: ZHANG Yu-lin, ZHU Xin-bin, YU Pei-hang, ZUO You, ZHANG You, CHEN Fei. Friction properties of C-containing ceramic coatings on an Mg-Li alloy[J]. Chinese Journal of Engineering, 2018, 40(5): 605-611. doi: 10.13374/j.issn2095-9389.2018.05.011

Friction properties of C-containing ceramic coatings on an Mg-Li alloy

doi: 10.13374/j.issn2095-9389.2018.05.011
  • Received Date: 2017-07-05
  • Due to its specific strength, superior electromagnetic shielding and excellent processing capabilities, the magnesium-lithium (Mg-Li) alloy is regarded as one of the most promising structural metal materials and has been extensively applied in various fields such as aerospace, offshore engineering, and the communication industry. Unfortunately, inferior tribological behavior, caused by low hardness, a fluctuating friction coefficient, and serious adhesive wear, has severely inhibited large-scale application of Mg-Li alloys in industrial engineering. Therefore, in this study, to enhance the tribological performance of a micro-arc oxidation (MAO)-produced ceramic coating on an Mg-Li alloy, a variety of inorganic particles were tentatively added to MAO electrolytes to prepare composite ceramic coatings with pronounced friction and wear resistance properties. MAO in Na2SiO3-KOH electrolytes with graphene additives was used to produce self-lubricating C-containing ceramic coatings on an Mg-Li alloy. The surface morphologies, roughness, hardness, and phase compositions were investigated using scanning electron microscopy (SEM), atomic force microscopy (AFM), a Vickers hardness test, and X-ray power diffraction (XRD). At room temperature, the tribological properties of the ceramic coatings were evaluated by friction and wear tests. The results indicate that the micro-pores in the C-containing coatings distribute uniformly on the alloy surfaces and a significant decrease in micro-pore size and surface roughness is observed. The surface hardness of the coatings show significant enhancement compared with that of the Mg-Li alloy. The coatings mainly consist of SiO2, Mg2SiO4, and MgO phases; graphene is dispersed throughout via mechanical effects and displayed an antifriction effect. The C-containing coating produced when the volume fraction of graphene in the electrolyte is 1% show good wear resistance and its surface hardness and friction coefficient are 1317.6 HV0.1 kg and 0.09, respectively. Meanwhile, compared with the Mg-Li alloy the wear traces on the coating appears narrower and shallow, and the worn area seems relatively smooth, which indicates that slight adhesive wear occurs on the C-containing coating surface.

     

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  • [2]
    Laleh M, Rouhaghdam A S, Shahrabi T, et al.Effect of alumina sol addition to micro-arc oxidation electrolyte on the properties of MAO coatings formed on magnesium alloy AZ91D. J Alloys Compd, 2010, 496(1-2):548
    [4]
    Matykina E, Arrabal R, Monfort F, et al. Incorporation of zirconia into coatings formed by DC plasma electrolytic oxidation of aluminium in nanoparticle suspensions.Appl Surf Sci, 2008, 255(5):2830
    [5]
    Chen F, Zhou H, Yao B, et al. Corrosion resistance property of the ceramic coating obtained through microarc oxidation on the AZ31 magnesium alloy surfaces. Surf Coat Technol, 2007, 201(9-11):4905
    [6]
    Yang Y, Liu Y H. Effects of current density on the microstructure and the corrosion resistance of alumina coatings embedded with SiC nano-particles produced by micro-arc oxidation. J Mater Sci Technol, 2010, 26(11):1016
    [7]
    Li X J, Luan B L. Discovery of Al2O3 particles incorporation mechanism in plasma electrolytic oxidation of AM60B magnesium alloy. Mater Lett, 2012, 86:88
    [8]
    Lü G H, Chen H, Gu W C, et al.Effects of graphite additives in electrolytes on the microstructure and corrosion resistance of alumina PEO coatings. Curr Appl Phys, 2009, 9(2):324
    [9]
    Snizhko L O, Yerokhin A L, Pilkington A, et al. Anodic processes in plasma electrolytic oxidation of aluminium in alkaline solutions.Electrochim Acta, 2004, 49(13):2085
    [10]
    Dunleavy C S, Golosnoy I O, Curran J A, et al. Characterisation of discharge events during plasma electrolytic oxidation. Surf Coat Technol, 2009, 203(22):3410
    [11]
    Feng C J, Hu S L, Jiang Y F, et al. Effects of micro-arc oxidation of Ti6Al4V alloy on adhesion property to electroless Ni-P-ZrO2 composite platings and their wear resistance. Rare Met Mater Eng, 2013, 42(12):2427
    [12]
    Abbasi S, Golestani-Fard F, Rezaie H R, et al.MAO-derived hydroxyapatite/TiO2 nanostructured multi-layer coatings on titanium substrate. Appl Surf Sci, 2012, 261:37
    [13]
    Ma K J, Bosta M M S A, Wu W T. Preparation of self-lubricating composite coatings through a micro-arc plasma oxidation with graphite in electrolyte solution. Surf Coat Technol, 2014, 259:318
    [14]
    Mohammadi S, Taromi F A, Shariatpanahi H, et al. Electrochemical and anticorrosion behavior of functionalized graphite nanoplatelets epoxy coating.J Ind Eng Chem, 2014, 20(6):4124
    [15]
    Hua Y, Zhang Z G, Li W. Microstructure and degradation properties of C-containing composite coatings on magnesium alloy wires treated with micro-arc oxidation. Surf Coat Technol, 2016, 291:70
    [16]
    Wu X H, Su P B, Jiang Z H, et al. Influences of current density on tribological characteristics of ceramic coatings on ZK60 Mg alloy by plasma electrolytic oxidation. ACS Appl Mater Interfaces, 2010, 2(3):808
    [17]
    Tsao L C. Interfacial structure and fracture behavior of 6061 Al and MAO-6061 Al direct active soldered with Sn-Ag-Ti active solder. Mater Des, 2014, 56:318
    [18]
    Li H X, Song R G, Ji Z G. Effects of nano-additive TiO2 on performance of micro-arc oxidation coatings formed on 6063 aluminum alloy. Trans Nonferrous Met Soc China, 2013, 23(2):406
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