Carbide surface coating of Co-Cr-Mo implant alloys by a microwave plasma-assisted reaction

被引:0
|
作者
Department of Mechanical Engineering, UMBC, Baltimore, MD 21250, United States [1 ]
机构
来源
J Mater Sci | / 14卷 / 3525-3531期
基金
美国国家科学基金会;
关键词
Carbides - Coating techniques - Hydrogen - Methane - Microwaves - Morphology - Plasma applications - Surfaces - Vickers hardness testing - Wear resistance;
D O I
暂无
中图分类号
学科分类号
摘要
A technique to grow a hard carbide surface coating on Co-Cr-Mo implant alloys used in artificial joints was developed. The carbide surface coating was applied to as-cast and forged Co-Cr-Mo alloys to improve their wear properties. The surface carbide layers were produced by reactions between the alloy surface and a methane-hydrogen mixed gas by a microwave plasma-assisted surface reaction. The new carbide layers showed 'brain coral-like' surface morphology and appear to consist of mixed phases including Cr3C2, Cr2C, Cr7C3, Cr23C6, and Co2C. The Vickers microhardness of thin carbide coatings (approx. 3 μm thick) was about HV 1100 regardless of the test location. The Vickers microhardness of thick carbide coatings (approx. 10 μm thick) showed a wide range of hardnesses from HV 1000 to HV 2100. Co-deposition of soot and diamond films occurred on a small area of the forged alloy substrates and diamond particles were sparsely dispersed on as-cast alloy substrates. The carbide surface layer has the potential to increase the wear resistance of the Co-Cr-Mo alloy as a wear resistant coating.
引用
收藏
相关论文
共 50 条
  • [31] Carbide Formation and Dissolution in Biomedical Co-Cr-Mo Alloys with Different Carbon Contents during Solution Treatment
    Shingo Mineta
    Shigenobu Namba
    Takashi Yoneda
    Kyosuke Ueda
    Takayuki Narushima
    Metallurgical and Materials Transactions A, 2010, 41 : 2129 - 2138
  • [32] Machining of dental Alloys: Evaluating the surface finish of laterally milled Co-Cr-Mo Alloy
    Pasang, T.
    Lees, S.
    Takahashi, M.
    Fujita, T.
    Conor, P.
    Tanaka, K.
    Kamiya, O.
    MANUFACTURING ENGINEERING SOCIETY INTERNATIONAL CONFERENCE 2017 (MESIC 2017), 2017, 13 : 5 - 12
  • [33] The production and properties of wrought high carbon Co-Cr-Mo alloys
    Berry, G
    Bolton, JD
    Brown, JB
    McQuaide, S
    COBALT-BASE ALLOYS FOR BIOMEDICAL APPLICATIONS, 1999, 1365 : 11 - 31
  • [34] Plastic deformation behavior of low carbon Co-Cr-Mo alloys
    Torres, LPM
    Rodriguez, AS
    PROCESSING AND FABRICATION OF ADVANCED MATERIALS V, 1996, : 691 - 702
  • [35] Numerical modeling and experimental investigation of Co-Cr-Mo alloys solidification
    Bocardo, JCE
    Cervantes, LCP
    Donizak, J
    Kolenda, Z
    ARCHIVES OF METALLURGY, 2003, 48 (01): : 53 - 73
  • [36] Study on surface roughness generated by micro-blasting on Co-Cr-Mo bio-implant
    Melentiev, Ruslan
    Kang, Chengwei
    Shen, Gang
    Fang, Fengzhou
    WEAR, 2019, 428 : 111 - 126
  • [37] Deformation behavior of low-carbon Co-Cr-Mo alloys for low-friction implant applications
    SalinasRodriguez, A
    RodriguezGalicia, JL
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH, 1996, 31 (03): : 409 - 419
  • [38] Microstructural characterization of as-cast biocompatible Co-Cr-Mo alloys
    Giacchi, J. V.
    Morando, C. N.
    Fornaro, O.
    Palacio, H. A.
    MATERIALS CHARACTERIZATION, 2011, 62 (01) : 53 - 61
  • [39] Effect of surface roughness on the adhesive and tribological characteristics of DLC coating prepared on Co-Cr-Mo alloy
    Sheeja, D
    Tay, BK
    Lam, HM
    Ng, SK
    INTERNATIONAL JOURNAL OF MODERN PHYSICS B, 2002, 16 (6-7): : 952 - 957
  • [40] HEAT-TREATMENT OF CAST CO-CR-MO FOR ORTHOPEDIC IMPLANT USE
    DOBBS, HS
    ROBERTSON, JLM
    JOURNAL OF MATERIALS SCIENCE, 1983, 18 (02) : 391 - 401