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材料研究学报  2015, Vol. 29 Issue (9): 679-685    DOI: 10.11901/1005.3093.2015.114
  本期目录 | 过刊浏览 |
类表面织构化镍基复合涂层的摩擦磨损性能
张玉福1,2,杨贵荣1(),黄超鹏1,宋文明1,2,李健3,吕晋军4,郝远1
1. 兰州理工大学 省部共建有色金属先进加工与再利用国家重点实验室 兰州 730050
2. 甘肃蓝科高新石化装备股份有限公司 兰州 730070
3. 武汉材料保护研究所 武汉 430030
4. 西北大学化学与材料科学学院 西安 710069
Wear Resistance of a Texture-like Nickel-based Composite Coating
Yufu ZHANG1,2,Guirong YANG1,**(),Chaopeng HUANG1,Wenming SONG1,2,Jian LI3,Jinjun LV4,Yuan HAO1
1. State Key Laboratory of Advanced Processing and Recycling of Nonferrous Metals, Lanzhou University of Technology, Lanzhou 730050, China
2. Lanzhou Petroleum Machinery Institute, Lanzhou 730070, China
3. Wuhan Research Institute of Materials Protection, Wuhan 430030, China
4. College of Chemistry and Materials Science, Northwest University, Xi’an 710069, China
引用本文:

张玉福,杨贵荣,黄超鹏,宋文明,李健,吕晋军,郝远. 类表面织构化镍基复合涂层的摩擦磨损性能[J]. 材料研究学报, 2015, 29(9): 679-685.
Yufu ZHANG, Guirong YANG, Chaopeng HUANG, Wenming SONG, Jian LI, Jinjun LV, Yuan HAO. Wear Resistance of a Texture-like Nickel-based Composite Coating[J]. Chinese Journal of Materials Research, 2015, 29(9): 679-685.

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摘要: 

在低碳钢表面添加质量分数为20%的WC和6%的石墨颗粒, 采用真空熔覆方法制备出具有类织构切面形貌的镍基合金(Ni0)复合涂层, 研究了复合涂层的显微组织形貌及形成机理、相组成以及干摩擦条件下的摩擦磨损性能, 并与镍基合金(Ni0)、碳化钨增强镍基合金(Ni0+20%WC)、石墨改性镍基合金(Ni0+6%石墨)三种涂层进行了比较。结果表明, WC呈不连续的三维网状分布在镍基合金基体中, 镍基合金主要由基体相γ-Ni, 铬化物硬质相CrB、Cr7C3、Cr23C6和共晶相Ni3B、Ni3Si构成; WC和石墨的单独加入都能提高复合涂层的摩擦磨损性能, 类织构组织复合熔覆层的摩擦磨损性能优于相同组成的硬质颗粒单独弥散分布的复合熔覆层; 在WC和镍基合金基体组成的类织构形貌结构和石墨润滑相的共同影响下, 复合涂层比单一镍基合金涂层的耐磨性提高大约9.6倍。

关键词 材料失效与保护镍基复合涂层真空熔覆类织构WC    
Abstract

A nickel-based (Ni0) composite coating, which was reinforced with 20%WC and 6% graphite particles and has a texture-like section morphology, was fabricated on steel substrate by vacuum cladding technology. Then its microstructure and tribological property under dry friction condition were characterized in comparison with other three coatings (Ni0, Ni0+20%WC and Ni0+6% graphite). The results show that the WC particles evenly distributed in the nickel-based (Ni0) alloy coatings and formed a special 3D reticular microstructure. The Ni-based alloy coating is mainly composed of γ-Ni solid solution, hard phases (Cr7C3, Cr23C6, CrB) and eutectic phases (Ni3Si, Ni3B). The cladd composite coating consisted of Ni0 with WC and graphite particles exhibits the highest wear resistance among the test coatings. The combination of texture-like structure (which was composed of WC particles and nickel base alloy) and graphite lubricant promoted the abrasion resistance of the composite coating by about 9.6 times in comparison to the pure Ni0 coating.

Key wordsmaterials failure and protection    nickel-based alloy    vacuum cladding    texture    WC
收稿日期: 2015-03-05     
基金资助:* 国家自然科学基金51205178和甘肃省自然科学基金1208RJZA189资助项目。
图1  真空熔覆Ni0+WC涂层的XRD图谱
图2  真空熔覆涂层的组织形貌
图3  四种涂层磨损率和摩擦系数以及对磨件的磨损
Elements C O Si Cr Fe Ni
Composition 9.05 24.39 2.49 16.59 22.1 25.39
表1  Ni0+G的磨屑成分EDS分析结果
图4  涂层的磨损形貌SEM像
图5  Ni0+WC+G涂层摩擦表面形貌的SEM像及其中C元素分布EDS图片
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