Wear and corrosion characteristics of copper-based composite coatings

被引:13
作者
Calli, Cagdas [1 ]
Tazegul, Onur [1 ]
Kayali, Eyup Sabri [1 ]
机构
[1] Istanbul Tech Univ, Dept Met & Mat Engn, Istanbul, Turkey
关键词
Wear; Corrosion; Copper; Electrical conductivity; Cold spraying; Composite coatings; TRIBOLOGICAL BEHAVIOR; MECHANICAL-PROPERTIES; ALLOY; MICROSTRUCTURE; PARTICLES;
D O I
10.1108/ILT-07-2016-0146
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Purpose - The purpose of this paper is to investigate the effects of reinforcing particles (B4C, TiB2 and TiC) on the physical, corrosion and wear behaviour of copper matrix composite coatings. Design/methodology/approach - Coatings were produced by cold gas dynamic spraying process, and the contribution of reinforcements (B4C, TiB2 and TiC) to the coating characteristics was detected through microstructural examinations (scanning electron microscope examinations and X-ray diffraction analyses), hardness and electrical conductivity measurements, corrosion tests in Cl- environment with potentiostat/galvonostat apparatus and wear tests which were performed under dry conditions by reciprocating wear tester. Findings - Coatings with high density, good bonding at the coating and substrate interface were obtained by cold gas dynamic spray process. The electrochemical polarisation test in a Cl- environment clearly indicated that the type of reinforcing particles did not significantly affect the corrosion performances of pure copper coating. In terms of the wear performances of the coatings, the best wear performance has been obtained for pure copper coating. Wear performance reduction of the composite coatings was related to the inhibition of continuous oxide layer formation on the worn surfaces due to third-body abrasion mechanism and delamination of oxide layer during wear tests. Originality/value - Contrary to expectations, wear tests results of the study revealed the inverse effect of ceramic particle addition to the copper matrix in cold spray coating applications due to poor bonding between matrix and reinforcing particles.
引用
收藏
页码:300 / 305
页数:6
相关论文
共 20 条
[1]  
ALKHIMOV AP, 1990, DOKL AKAD NAUK SSSR+, V315, P1062
[2]   Bonding mechanism in cold gas spraying [J].
Assadi, H ;
Gärtner, F ;
Stoltenhoff, T ;
Kreye, H .
ACTA MATERIALIA, 2003, 51 (15) :4379-4394
[3]   Corrosion behavior of novel imitation-gold copper alloy with rare earth in 3.5% NaCl solution [J].
Chen, J. L. ;
Li, Z. ;
Zhu, A. Y. ;
Luo, L. Y. ;
Liang, J. .
MATERIALS & DESIGN, 2012, 34 :618-623
[4]   Impact of high velocity cold spray particles [J].
Dykhuizen, RC ;
Smith, MF ;
Gilmore, DL ;
Neiser, RA ;
Jiang, X ;
Sampath, S .
JOURNAL OF THERMAL SPRAY TECHNOLOGY, 1999, 8 (04) :559-564
[5]   Investigation of the microstructure and tribological behavior of cold-sprayed tin-bronze-based composite coatings [J].
Guo, Xueping ;
Zhang, Ga ;
Li, Wenya ;
Gao, Yang ;
Liao, Hanlin ;
Coddet, Christian .
APPLIED SURFACE SCIENCE, 2009, 255 (06) :3822-3828
[6]   Influence of the powder size distribution on the microstructure of cold-sprayed copper coatings studied by X-ray diffraction [J].
Kairet, T. ;
Degrez, M. ;
Campana, F. ;
Janssen, J. -P. .
JOURNAL OF THERMAL SPRAY TECHNOLOGY, 2007, 16 (5-6) :610-618
[7]   Cold spraying of in situ produced TiB2-Cu nanocomposite powders [J].
Kim, J. S. ;
Kwon, Y. S. ;
Lomovsky, O. I. ;
Dudina, D. V. ;
Kosarev, V. F. ;
Klinkov, S. V. ;
Kwon, D. H. ;
Smurov, I. .
COMPOSITES SCIENCE AND TECHNOLOGY, 2007, 67 (11-12) :2292-2296
[8]   Structure and corrosion properties of cold sprayed coatings: a review [J].
Koivuluoto, H. ;
Vuoristo, P. .
SURFACE ENGINEERING, 2014, 30 (06) :404-413
[9]   Effect of Powder Type and Composition on Structure and Mechanical Properties of Cu + Al2O3 Coatings Prepared by using Low-Pressure Cold Spray Process [J].
Koivuluoto, Heli ;
Vuoristo, Petri .
JOURNAL OF THERMAL SPRAY TECHNOLOGY, 2010, 19 (05) :1081-1092
[10]   Performance and characterization of dispersion strengthened Cu-TiB2 composite for electrical use [J].
López, M ;
Corredor, D ;
Camurri, C ;
Vergara, V ;
Jiménez, J .
MATERIALS CHARACTERIZATION, 2005, 55 (4-5) :252-262