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材料导报  2020, Vol. 34 Issue (4): 4153-4157    https://doi.org/10.11896/cldb.19020155
  高分子与聚合物基复合材料 |
碳化硅掺杂Ni-P-PTFE复合涂层的微观结构和力学性能
杨玉明, 李伟, 刘平, 张柯, 马凤仓, 刘新宽, 陈小红, 何代华
上海理工大学材料科学与工程学院,上海 200093
Microstructure and Mechanical Properties of SiC Doped Ni-P-PTFE Composite Coatings
YANG Yuming, LI Wei, LIU Ping, ZHANG Ke, MA Fengcang, LIU Xinkuan, CHEN Xiaohong, HE Daihua
School of Materials Science and Engineering, University of Shanghai for Science and Technology, Shanghai 200093, China
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摘要 本工作研究了碳化硅的掺杂量对化学镀Ni-P-SiC-PTFE(聚四氟乙烯)复合涂层的微观结构和力学性能的影响。利用扫描电子显微镜(SEM)、X射线衍射仪(XRD)、纳米压痕仪、HSR-2M摩擦磨损试验机分别对Ni-P-SiC-PTFE涂层的微观结构和力学性能进行表征和测试。结果表明:碳化硅掺杂对Ni-P-PTFE复合涂层的成分、微观结构和力学性能都具有较大的影响,当镀液中碳化硅浓度为1.5 g/L时,所得Ni-P-SiC-PTFE涂层中SiC含量最高,涂层硬度达到最大值8.4 GPa,且Ni-P-SiC-PTFE涂层表现出优异的耐磨性能。
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杨玉明
李伟
刘平
张柯
马凤仓
刘新宽
陈小红
何代华
关键词:  碳化硅掺杂  化学镀  Ni-P-PTFE涂层  微观结构  力学性能    
Abstract: The effects of SiC doping on the microstructure and mechanical properties of Ni-P-PTFE composite coatings were studied in this paper. The microstructure and mechanical properties of the coatings were investigated by scanning electron microscopy (SEM), X-ray diffraction (XRD), Nano-indenter, and HSR-2M friction wear testing machine, respectively. The results show that SiC doping has great influence on the composition, microstructure and mechanical properties of Ni-P-PTFE composite coating. When the SiC concentration is 1.5 g/L, the content of SiC in the Ni-P-SiC-PTFE composite coating is the highest, together with the highest hardness of 8.4 GPa, at the same time, Ni-P-SiC-PTFE composite coating obtained at this concentration exhibits better wear resistance than other concentrations.
Key words:  SiC doping    electroless plating    Ni-P-PTFE coating    microstructure    mechanical properties
               出版日期:  2020-02-25      发布日期:  2020-01-15
ZTFLH:  TB333  
基金资助: 国家自然科学基金(51471110)
通讯作者:  liwei176@usst.edu.cn   
作者简介:  杨玉明,硕士,就读于上海理工大学材料科学与工程学院,主要从事功能薄膜材料方向的研究;李伟,上海理工大学材料科学与工程学院教授。2008年10月毕业于上海交通大学材料学院,获得材料物理与化学专业博士学位。同年任职于上海理工大学材料学院,从事功能薄膜材料、电功能材料和纳米材料相关的研究,主要包括超硬薄膜(涂层)材料、纳米多层膜。在国内外杂志发表学术论文50余篇,申请国家发明专利19项。
引用本文:    
杨玉明, 李伟, 刘平, 张柯, 马凤仓, 刘新宽, 陈小红, 何代华. 碳化硅掺杂Ni-P-PTFE复合涂层的微观结构和力学性能[J]. 材料导报, 2020, 34(4): 4153-4157.
YANG Yuming, LI Wei, LIU Ping, ZHANG Ke, MA Fengcang, LIU Xinkuan, CHEN Xiaohong, HE Daihua. Microstructure and Mechanical Properties of SiC Doped Ni-P-PTFE Composite Coatings. Materials Reports, 2020, 34(4): 4153-4157.
链接本文:  
http://www.mater-rep.com/CN/10.11896/cldb.19020155  或          http://www.mater-rep.com/CN/Y2020/V34/I4/4153
1 Zhao Q, Liu Y. Surface & Coatings Technology, 2005, 200(7),2510.
2 Hou W T. Electrochemical composite plating Ni-P/Ni-P-PTFE double coating. Master’s Thesis, Shandong University , China, 2009(in Chinese).
侯文涛. 化学复合镀Ni-P/Ni-P-PTFE双镀层. 硕士学位论文, 山东大学, 2009.
3 Shao G J, Qin X J, Yu S X, et al. Surface Technology, 2001, 30(5),32(in Chinese).
邵光杰, 秦秀娟, 于升学, 等. 表面技术, 2001, 30(5), 32.
4 Xu R D, Guo Z C, Zhu X Y, et al. Electroplating Pollution Control, 2002, 22(3),18(in Chinese).
徐瑞东, 郭忠诚, 朱晓云, 等. 电镀与环保, 2002, 22(3),18.
5 Shao G J, Qin X J, Li H, et al. Plating and Finishing, 2001, 23(3),5(in Chinese).
邵光杰, 秦秀娟, 李慧, 等. 电镀与精饰, 2001, 23(3),5.
6 Liew K W, Kong H J, Low K O, et al. Materials & Design, 2014, 62(10),430.
7 Zhao Q, Liu Y, Müller-Steinhagen H, et al. Surface & Coatings Techno-logy, 2002, 155(2),279.
8 Ger Ming-der, Hou K H, Wang L M, et al. Materials Chemistry & Phy-sics, 2003, 77(3),755.
9 Dong J M, Wan D L, Song Y D, et al. China Petroleum Machinery, 2002, 30(6),1(in Chinese).
董家梅, 万德立, 宋亚东, 等. 石油机械, 2002, 30(6),1.
10 Qiu S X, Zhang P. Heat Treatment of Metal, 1996(2),20(in Chinese).
邱世洵, 张平. 金属热处理, 1996(2),20.
11 He K L, Chen Y, Zhong T M, et al. Journal of Refrigeration, 2013(1),84(in Chinese).
何凯龙, 陈颖, 钟天明,等. 制冷学报,2013(1),84.
12 Gao H X, Wang Z X, Hua Y C, et al. Journal of Zhenzhou Institute of Light Industry (Nature Science), 2001, 16(1),10(in Chinese).
高红霞, 王志新, 华远朝, 等.郑州轻工业学院学报:自然科学版, 2001, 16(1),10.
13 Huang Y S, Zeng X T, Annergren I, et al. Surface & Coatings Technology, 2003, 167(2),207.
14 Wu Y C. Journal of Tribology.1992, 12(2) ,144(in Chinese).
吴玉程. 摩擦学学报,1992,12(2),144.
15 Zhang H. Study on electroless Ni-P-PTFE-SiC composite coating. Master’s Thesis, Xihua University, China,2009(in Chinese).
张慧. Ni-P-SiC-PTFE化学复合镀的工艺研究.硕士学位论文,西华大学, 2009.
16 Zhao Q, Liu Y. Surface & Coatings Technology, 2005, 200(7),2510.
17 Wu Y C, Cheng Z C. Electroplating & Pollution Control,2000,20(2),16(in Chinese).
吴玉程, 程正翠.电镀与环保, 2000, 20(2),16.
18 Dong S F, Li W, Liu P, et al. The Chinese Journal of Nonferrous Metals,2018,28(3),579(in Chinese).
董帅峰, 李伟, 刘平,等. 中国有色金属学报, 2018,28(3),579.
19 Yong C, Gan F X, Shen W. Journal of Materials Protection, 2006, 39(5),4(in Chinese).
杨超, 甘复兴, 沈伟. 材料保护,2006,39(5),4.
20 Li L. Study on electroless composite coating. Master’s Thesis, Shanghai Jiao Tong University, China, 2007(in Chinese).
黎黎. 化学复合镀工艺研究. 硕士学位论文, 上海交通大学2007.
21 Wu Y C, Huang X M, Deng Z G, et al. Electroplating and finishing,1988(2),5(in Chinese).
吴玉程, 黄新民, 邓宗钢, 等. 电镀与涂饰, 1998(2),5.
22 Chi Y, Fan H Y, Gao J B. Materials Science and Technology, 2003, 11(1),77(in Chinese).
迟毅, 范会玉, 高金波. 材料科学与工艺, 2003, 11(1),77.
23 Fan H Y. The study of electroless composite Ni-P-SiC-PTFE plating. Master’s Thesis, Harbin Engineering University, China, 2002(in Chinese).
范会玉. 化学复合镀镍磷聚四氟乙烯碳化硅的研究. 硕士学位论文. 哈尔滨工程大学, 2002.
24 Yu T M, Liu G C, Liu Q S. Chinese Journal of Mechanical Engineering. 1999,10(12),1421(in Chinese).
于同敏, 刘贵昌, 刘全胜. 中国机械工程, 1999, 10(12),1421.
25 Zhang S S, Han K J, Cheng L. Surface & Coatings Technology, 2008, 202(12),2807.
26 Wang H L, Liu L Y , Dou Y, et al. Applied Surface Science, 2013, 286(4),319.
27 Wu Y C, Huang X M, Deng Z G, et al. Electroplating and Finishing,1988(3),5(in Chinese).
吴玉程, 黄新民, 邓宗钢, 等. 电镀与涂饰, 1998(3),5.
28 Tan C Y. Fabrication of Nickel, copper matrix composite coatings and their electrochemical behaviors. Ph.D. Thesis, Central South University, China, 2008(in Chinese).
谭澄宇. Ni、Cu基复合镀层制备及其电化学基础研究. 博士学位论文, 中南大学, 2008.
29 Cheng Y H, Chen H Y, Zhu Z C, et al. Applied Thermal Engineering,2014, 68(1-2),20.
30 Chang C S, Hou K H, Ger Ming-der, et al. Surface & Coatings Techno-logy, 2016, 288,135.
31 Balaraju J N, Rajam K S. Surface & Coatings Technology, 2005, 195(2-3),154.
32 Gao H X, Ji L Q, Wang X J. Journal of Zhengzhou Institute of Light Industry (Nature Science), 2003, 18(4),56(in Chinese).
高红霞, 纪莲清, 王小杰.郑州轻工业学院学报:自然科学版, 2003,18(4),56.
33 Zhou R Q. Technological Innovation and Application, 2013(30),30(in Chinese).
周汝起. 科技创新与应用, 2013(30),30.
34 Gao H X, Ji L Q, Gong J X. New Technology & New Process, 2004(2),50(in Chinese).
高红霞, 纪莲清, 弓金霞. 新技术新工艺, 2004(2),50.
35 Wu Y T, Liu H Z, Shen B, et al. Tribology International, 2006, 39(6),553.
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