|
|
45钢表面Ni/WC复合熔覆层的形成机制 |
杨贵荣1( ),高大文1,宋文明2,张玉福2,马颖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 |
|
Formation Mechanism of Ni/WC Composite Coatings on Carbon Steel |
Guirong YANG1( ),Dawen GAO1,Wenming SONG2,Yufu ZHANG2,Ying MA1 |
1. State Key Laboratory of Advanced Processing and Recycling of Non-ferrous Metals, Lanzhou University of Technology, Lanzhou 730050, China 2. Lanpec Technologies Co. Ltd., Lanzhou 730070, China |
引用本文:
杨贵荣,高大文,宋文明,张玉福,马颖. 45钢表面Ni/WC复合熔覆层的形成机制[J]. 材料研究学报, 2019, 33(2): 87-94.
Guirong YANG,
Dawen GAO,
Wenming SONG,
Yufu ZHANG,
Ying MA.
Formation Mechanism of Ni/WC Composite Coatings on Carbon Steel[J]. Chinese Journal of Materials Research, 2019, 33(2): 87-94.
[1] | Guo C, Chen J M, Zhou J C, et al. Effects of WC-Ni content on microstructure and wear resistance of laser cladding Ni-based alloys coating [J]. Surf. Coat. Technol., 2012, 206: 2064 | [2] | Simunovic K, Saric T, Simunovic G. Different approaches to the investigation and testing of the Ni-based self-fluxing alloy coatings—a review. Part 1. General facts, wear and corrosion investigations [J]. Tribol. Trans., 2014, 57: 955 | [3] | Park Y S, Bae D H. Assessment of the crack growth characteristics at the low fatigue limit of a multi-pass welded Ni-based alloy 617 [J]. J. Mech. Sci. Technol., 2014, 28: 1251 | [4] | Guo C, Zhou J S, Chen J M, et al. High temperature wear resistance of laser cladding NiCrBSi and NiCrBSi/WC-Ni composite coatings [J]. Wear, 2011, 270: 492 | [5] | Yang G R, Huang C P, Song W M, et al. Microstructure characteristics of Ni/WC composite cladding coatings [J]. Int. Miner J. Metall. Mater., 2016, 23: 184 | [6] | Wang X S. Research on the formation mechanisms and properties of Ni-Co/WC+G composite coatings deposited by vacuum cladding on casting steel substrate [D]. Lanzhou: Lanzhou University of Technology, 2016 | [6] | (王旭升. 铸钢表面Ni-Co/WC+G复合熔覆层的形成机制及性能研究 [D]. 兰州: 兰州理工大学, 2016) | [7] | Eso O, Fang Z, Griffo A. Liquid phase sintering of functionally graded WC-Co composites [J]. Int. Refract J. Met. Hard Mater., 2005, 23: 233 | [8] | Eso O, Fang Z Z, Griffo A. Kinetics of cobalt gradient formation during the liquid phase sintering of functionally graded WC-Co [J]. Int. Refract J. Met. Hard Mater., 2006, 25: 286 | [9] | Gao Y, Luo B H, He K J, et al. Mechanical properties and microstructure of WC-Fe-Ni-Co cemented carbides prepared by vacuum sintering [J]. Vacuum, 2017, 143: 271 | [10] | Gao Y, Luo B H, He K J, et al. Effect of Fe/Ni ratio on the microstructure and properties of WC-Fe-Ni-Co cemented carbides [J]. Ceram. Int., 2018, 44: 2030 | [11] | Elkhoshkhany N, Hafnway A, Khaled A. Electrodeposition and corrosion behavior of nano-structured Ni-WC and Ni-Co-WC composite coating [J]. J. Alloys Compd., 2017, 695: 1505 | [12] | Babu P S, Rao P C, Jyothirmayi A, et al. Evaluation of microstructure, property and performance of detonation sprayed WC-(W, Cr)2C-Ni coatings [J]. Surf. Coat. Technol., 2018, 335: 345 | [13] | Ghasali E, Ebadzadeh T, Alizadeh M, et al. Mechanical and microstructural properties of WC-based cermets: A comparative study on the effect of Ni and Mo binder phases [J]. Ceram. Int., 2018, 44: 2283 | [14] | Cui Z Q, Qin Y C. Metallography and Heat Treatment [M]. 2nd ed. Beijing: China Machine Press, 2007 | [14] | 崔忠圻, 覃耀春. 金属学与热处理[M]. 2版. 北京: 机械工业出版社, 2007 | [15] | Yuan Y L, Li Z G. Dissolving and precipitating characteristics of WC and carbides in the Ni60A+WC graded coating [J]. J. Mater. Eng., 2013, (11): 12 | [15] | (袁有录, 李铸国. Ni60A+WC增强梯度涂层中WC的溶解与碳化物的析出特征 [J]. 材料工程, 2013, (11): 12) | [16] | Wang Z H, Yang A D, Zhang T, et al. Dissolution behavior of WC in WC reinforced composite coatings [J]. J. Mater. Eng., 2008, (9): 56 | [16] | (王智慧, 杨爱弟, 张田等. 真空熔覆WC颗粒增强复合涂层中WC溶解行为的研究 [J]. 材料工程, 2008, (9): 56) | [17] | Zhang Z, Liu H X, Zhang X W, et al. Dissolution behavior of WC reinforced particles on carbon steel surface during laser cladding process [J]. Adv. Mater. Res., 2012, 430-432: 137 | [18] | Lu J B. Interfacial microstructure of vacuum sintered Ni-based coating [J]. Vacuum, 2006, 43(6): 30 | [18] | (卢金斌. 真空熔结镍基合金的界面组织研究 [J]. 真空, 2006, 43(6): 30) | [19] | Lu J B. Study on performance of vacuum sintered Ni-based coating [J]. Surf. Technol., 2006, 35(6): 25 | [19] | (卢金斌. 真空熔结镍基合金涂层性能的研究 [J]. 表面技术, 2006, 35(6): 25) | [20] | Lu J B. Microstructure of vacuum sintered Ni60 alloy and formation mechanism of M7C3 [J]. Weld. Join., 2006, (2): 28 | [20] | (卢金斌. Ni60合金真空烧结组织及M7C3形成机理 [J]. 焊接, 2006, (2): 28) | [21] | Huang X B. Study on the preparation and properties of vacuum fusion sintered WC/Ni and WC/Co composite coatings [D]. Xi'an: Xidian University, 2005 | [21] | (黄新波. 真空熔覆Ni基合金—碳化钨和Co基合金—碳化钨复合涂层的制备及性能研究 [D]. 西安: 西安电子科技大学, 2005 | [22] | Huang P Y. Principles of Powder Metallurgy [M]. 2nd ed. Beijing: Metallurgy Industry Press, 1997 | [22] | (黄培云. 粉末冶金原理 [M]. 第2版. 北京: 冶金工业出版社, 1997) | [23] | Günther K, Bergmann J P. Understanding the dissolution mechanism of fused tungsten carbides in Ni-based alloys: An experimental approach [J]. Mater. Lett., 2018, 213: 253 |
|
|
Viewed |
|
|
|
Full text
|
|
|
|
|
Abstract
|
|
|
|
|
Cited |
|
|
|
|
|
Shared |
|
|
|
|
|
Discussed |
|
|
|
|