Surface molybdenizing on titanium by halide-activated pack cementation

被引:28
|
作者
Peng, X. M. [1 ]
Xia, C. Q. [1 ]
Liu, Y. Y. [1 ]
Wang, J. H. [1 ]
机构
[1] Cent S Univ, Sch Mat Sci & Engn, Changsha 410083, Peoples R China
关键词
Titanium; Halide-activated pack cementation; Molybdenizing; Diffusion; Microhardness; HIGH-TEMPERATURE OXIDATION; TI-MO ALLOYS; ALUMINIDE COATINGS; WEAR-RESISTANCE; BEHAVIOR; MICROSTRUCTURE; AL; CODEPOSITION; CORROSION; CR;
D O I
10.1016/j.surfcoat.2009.04.008
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
To improve the surface hardness of titanium, molybdenized layer was fabricated on titanium surface by halide-activated pack cementation process. Coupons were analyzed using optical microscopy (CM), scanning electron microscopy (SEM) with X-ray energy dispersive spectrometer (EDS) and X-ray diffraction (XRD). Microhardness values were obtained by Vickers hardness test. It was found that molybdenized layer consists of diffusion layer and deposition layer formed above 883 degrees C. Attributed to the difference of Mo content, the phase transformation of Mo ->beta ->alpha ''->alpha' occurred from outside to inside in the diffusion layer, which led to the gradual decrease of microhardness values from the deposition layer to the substrate for the different hardness levels of beta, alpha '' and alpha' phases. Molybdenized layer could obviously improve the surface microhardness of the titanium substrate. The highest microhardness value of deposition layer and diffusion layer is about 1400 HV and 1200 HV respectively, which is approximately four times higher than that of the titanium substrate. Based on Fick's second law, the relation between the thickness of diffusion layer, process temperature and time is discussed. (C) 2009 Elsevier B.V. All rights reserved.
引用
收藏
页码:3306 / 3311
页数:6
相关论文
共 44 条
  • [1] Aluminide coating on Mar-M246 nickel superalloy by halide activated pack cementation (HAPC)
    Gloria, Raphael Felca
    Chaia, Nabil
    da Cruz, Anderson Weslei
    Alckmin, Luciano Braga
    Nunes, Carlos Angelo
    Rodrigues, Geovani
    SURFACE & COATINGS TECHNOLOGY, 2021, 411
  • [2] High-Performance Al-Si Coatings Toward Enhancing Oxidation Resistance of Tungsten by Halide-Activated Pack Cementation
    Zhu, Liu
    Zhang, Yu-Xiang
    Wang, Jin-Fang
    Luo, Lai-Ma
    FRONTIERS IN MATERIALS, 2020, 7
  • [3] Wear-resistant enhanced composite coatings on TC4: Combining halide-activated pack cementation and plasma electrolytic oxidation
    Xie, Tianxiang
    Jiang, Chaoping
    Ning, Bingkun
    Qian, Weifeng
    Shi, Lei
    Chen, Yongnan
    SURFACE & COATINGS TECHNOLOGY, 2024, 489
  • [4] The deposition of aluminide and silicide coatings on gamma-TiAl using the halide-activated pack cementation method
    Munro, TC
    Gleeson, B
    METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 1996, 27 (12): : 3761 - 3772
  • [5] Shape Memory Alloys via Halide-Activated Pack Equilibration
    King, Andrew S.
    Dempsey, Ryan D.
    Lipke, David W.
    ADVANCED ENGINEERING MATERIALS, 2022, 24 (08)
  • [6] Development and growth of boron-modified and germanium-doped titanium-silicide diffusion coatings by the halide-activated, pack-cementation method
    Cockeram, B
    Rapp, RA
    OXIDATION OF METALS, 1996, 45 (3-4): : 375 - 425
  • [7] RESEARCH STATUS OF SURFACE MODIFICATION OF TITANIUM-BASED ALLOYS BY PACK CEMENTATION
    Han, Feng
    Yuan, Shuo
    Lin, Naiming
    Zeng, Qunfeng
    Jia, Hongbing
    Li, Maolin
    Wu, Yucheng
    SURFACE REVIEW AND LETTERS, 2021, 28 (12)
  • [8] Effect of filler on the oxidation protective ability of MoSi2 coating for Mo substrate by halide activated pack cementation
    Sun, Jia
    Fu, Qian-Gang
    Guo, Li -Ping
    Liu, Yue
    Huo, Cai-Xia
    Li, He-Jun
    MATERIALS & DESIGN, 2016, 92 : 602 - 609
  • [9] Effect of surface pretreatment and pack cementation on bioactivity of titanium dental implant
    Kim, Hee-Lyang
    Park, Il-Song
    Lee, Sook-Jeong
    Yu, Mi-Kyung
    Lee, Kwang-Won
    Bae, Tae-Sung
    Lee, Min-Ho
    SURFACE & COATINGS TECHNOLOGY, 2014, 259 : 178 - 184