Research on Friction and Wear Properties of Plasma Spraying Ni-Base Alloy Coatings on Aluminum Alloy Surfaces

Article Preview

Abstract:

In order to improve the wear resistance and extend service life of aluminum alloy parts, the Ni-base alloy anti-wear coatings were prepared on the surfaces of 7A05 aluminum alloy by plasma spraying technology. The microstructure and interface of the coatings were analyzed, and the friction and wear properties of Ni-base alloy coatings and aluminum alloy substrates were investigated under dry friction condition at room temperature. The research results show that the main phases of Ni-base alloy coating are γ-Ni, CrB and Cr23C6. The thicknesses of diffusion layers existing between intermediate layer and coating, intermediate layer and substrate are respectively 15μm and 20μm. The bonding types of the coating and the substrate are mechanical combination accompanied with partially metallurgical combination. When wore against GCr15 steel balls, the average friction coefficient of the Ni-base alloy coatings is 11.6% lower than that of the aluminum alloy substrates, and the average wear loss of the former is 9.3mg, which is only 1/3 of that of the latter. With the increase of loads, the wear mechanisms of the Ni-base alloy coatings change from slightly micro-cutting wear and fatigue wear to abrasive wear and micro-fracture wear, while those of the aluminum alloy substrates are mainly adhesive wear and abrasive wear as well as slight oxidation wear.

You might also be interested in these eBooks

Info:

Periodical:

Advanced Materials Research (Volumes 538-541)

Pages:

207-213

Citation:

Online since:

June 2012

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2012 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

[1] Z.T. Wang, X.H. Zhang: Light Alloy Fabrication Technology, Vol.39 (2011), pp.1-13. (in Chinese)

Google Scholar

[2] Y.J. Chen, C.J. Feng, Z.S. Shao, C.X. Wang and Y. Zhou: Materials Review, Vol.24 (2010), pp.132-135. (in Chinese)

Google Scholar

[3] M.G. Qian, S.S. Yao, S.Z. Zhang: Modern Surface Technology (China Machine Press, Beijing 2002). (in Chinese)

Google Scholar

[4] Z.H. Men, Y.X. Su and L.W. Mei: China Heat Treatment Society, Vol.29 (2004), pp.49-53. (in Chinese)

Google Scholar

[5] J.H. Li: Metallographic Map of Metals (China Machine Press, Beijing 2006). (in Chinese)

Google Scholar

[6] K. Ma, D.Q. Sun, Z.Z. Xuan and J. Lu: Transaction of the China Welding Institution, Vol.29 (2008), pp.49-54. (in Chinese)

Google Scholar

[7] N. Serres, F. Hlawka and S. Costil. Journal of Thermal Spray Technology, Vol.20 (2010), pp.336-343.

Google Scholar

[8] Y. Wang, M.L. Wang, F. Zhou, H.Y. Ding and Z.D. Dai: The Chinese Journal of Nonferrous Metals, Vol.17 (2007), pp.1266-1272. (in Chinese)

Google Scholar

[9] Z.Q. Peng, H.F. Wang, J.B. Lu and J.X. Gong: Transaction of the China Welding Institution, Vol.32 (2011), pp.89-95. (in Chinese)

Google Scholar

[10] Z.Y. Zhang, Z.P. Wang and L. Bunv: Tribology Letters, Vol.37 (2010), pp.141-148.

Google Scholar

[11] J.A. He, Y.W. Wang: Material wear and abrasion resistant material (Northeastern University Press, Shenyang 2001). (in Chinese)

Google Scholar