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Effects of additives on corrosion and wear resistance of micro-arc oxidation coatings on TiAl alloy 被引量:10

Effects of additives on corrosion and wear resistance of micro-arc oxidation coatings on TiAl alloy
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摘要 Ceramic coating was deposited on TiAl alloy substrate by micro-arc oxidation(MAO)in a silicate-aluminate electrolyte solution with additives including sodium citrate,graphite and sodium tungstate.The microstructures and compositions were analyzed by SEM,EDX and XRD.The corrosion and wear properties of the coatings were investigated by potentiodynamic polarization and ball-on-disc wear test,respectively.The results show that the MAO coatings consist of WO3,Ti2O3,graphite and Al2O3 besides Al2TiO5 and Al2SiO5.With additives in the electrolyte,the working voltage at the micro-arc discharge stage decreases,and the ceramic coating gets smoother and more compact.The corrosion current density of MAO coating is much lower than that of TiAl substrate.It can be reduced from 9.81×10-8A/cm 2to 3.02×10-10A/cm 2 .The MAO coatings composed of hard Al2O3,WO3 and Ti2O3 obviously improve the wear resistance of TiAl alloy.The wear rate is-3.27×10-7g/(N·m). Ceramic coating was deposited on TiAl alloy substrate by micro-arc oxidation(MAO)in a silicate-aluminate electrolyte solution with additives including sodium citrate,graphite and sodium tungstate.The microstructures and compositions were analyzed by SEM,EDX and XRD.The corrosion and wear properties of the coatings were investigated by potentiodynamic polarization and ball-on-disc wear test,respectively.The results show that the MAO coatings consist of WO3,Ti2O3,graphite and Al2O3 besides Al2TiO5 and Al2SiO5.With additives in the electrolyte,the working voltage at the micro-arc discharge stage decreases,and the ceramic coating gets smoother and more compact.The corrosion current density of MAO coating is much lower than that of TiAl substrate.It can be reduced from 9.81×10^-8A/cm 2to 3.02×10^-10A/cm ^2 .The MAO coatings composed of hard Al2O3,WO3 and Ti2O3 obviously improve the wear resistance of TiAl alloy.The wear rate is-3.27×10^-7g/(N·m).
机构地区 School of Aeronautics
出处 《Transactions of Nonferrous Metals Society of China》 SCIE EI CAS CSCD 2010年第6期1032-1036,共5页 中国有色金属学报(英文版)
基金 Project(2006KG03) supported by the Science and Technology Program of Shannxi Province, China
关键词 TIAL合金 微弧氧化 磨损试验 添加剂 腐蚀 膜电阻 Ti2O3 TIAL基 TiAl alloy micro-arc oxidation coating additive corrosion resistance wear resistance
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参考文献17

  • 1王晶,宋仁国,林鑫,黄卫东.γ-TiAl金属间化合物合金表面激光熔覆TiC-Ti-Al涂层研究[J].稀有金属材料与工程,2008,37(12):2191-2195. 被引量:11
  • 2王立,吴向清,谢发勤,张军.硅酸盐体系中TiAl合金微弧氧化电解液的优化[J].中国表面工程,2008,21(5):31-34. 被引量:3
  • 3郝建民,介万奇,陈宏,叶育德.SiO_3^(2-)对TiAl合金微弧氧化陶瓷层的影响[J].稀有金属材料与工程,2005,34(9):1455-1459. 被引量:15
  • 4WIRTZ G P,BROWN S D,KRIVEN W M.Ceramic coatings by anodic spark deposition. Materials and Manufacturing Processes . 199l
  • 5Albella JM,Montern I,Martine-Duart JM.Electron injection and avalanche during the anodic oxidation of tantalum. Journal of the Electrochemical Society . 1984
  • 6Barton T F,Johnson C B.The effect of electrolyte on the anodized finish of a magnesium alloy. Plating and Surface Finishing . 1995
  • 7M. Yoshihara,Y. W. Kim.Oxidation Behavior of Gamma Alloys Designed for High Temperature Applications. Intermetallics . 2005
  • 8S. Mukherjee M.F. Maitz M.T. Pham E. Richter F. Prokerts.Development and biocompatibility of hard Ti-based coatings using plasma immersion ion implantation-assisted deposition. Surface and Coatings Technology . 2005
  • 9Z Y Liu,,G D Wang.Improvement of oxidation resistance ofγ?TiAl At 800 and 900℃in air by TiAl2 coatings. Journal of Materials Science . 2005
  • 10Z. D. Xiang,,S.R. Rose,P.K. Datta.Codeposition of Al and Si to form oxidation-resistant coatings on γ-TiAl by the pack cementation process. Journal of Materials Chemistry . 2003

二级参考文献18

  • 1王德云,东青,陈传忠,雷廷权.微弧氧化技术的研究进展[J].硅酸盐学报,2005,33(9):1133-1138. 被引量:29
  • 2武万良,李学伟,刘万辉,郭子玉.TiC增强钛基复合材料激光熔覆层显微组织及形成机理[J].稀有金属材料与工程,2006,35(9):1363-1366. 被引量:24
  • 3LeyensC,Perters M.Translated by Chen Zhenhuaetal(陈振华等译).Titanium and Titanium Alloy(钛与钛合金)[M].Beijing:Chemical Indudtry Press,2005:307.
  • 4Dimiduk D M. Materials Science and Engineering[J], 1999, A263:281.
  • 5Chen Yuyong, Kong Fantao, Tian Jing et at. Traqsactions of Nonferrous Metals Society of China [J], 2002, 12(4): 605.
  • 6Donchev A, Richter E, Schu″tze Met al. Intermetallics[J], 2006, 14:1168.
  • 7Sun J, Wu J S, Zhao B et al. Materials Science and Engineering[J], 2002, A329-331 : 713.
  • 8Suparut Narksitipan, Titipun Thongtem, Michael McNallan et al. Applied Surface Science[J], 2006, 252:8510.
  • 9Chu M S, Wu S K..4cta Materialia [J], 2003, 51:3109.
  • 10Chen Y, Wang H M. Applied Surface Science[J], 2003, 220: 186.

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