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http://dx.doi.org/10.5695/JKISE.2014.47.5.263

Nanocrystalline Diamond Coated SiC Balls in Tribometer  

Im, Jong Hwan (Department of Advanced Materials Engineering, Korea Polytechnic University)
Kang, Chan Hyoung (Department of Advanced Materials Engineering, Korea Polytechnic University)
Publication Information
Journal of the Korean institute of surface engineering / v.47, no.5, 2014 , pp. 263-268 More about this Journal
Abstract
Nanocrystalline diamond(NCD) coated SiC balls were applied in a ball-on-disk tribometer. After seeding in an ultrasonic bath containing nanometer diamond powders, $2.2{\mu}m$ thick NCD films were deposited on sintered 3 mm diameter SiC balls at $600^{\circ}C$ in a 2.45 GHz microwave plasma CVD system. Bare $ZrO_2$ and SiC balls were prepared for comparison as test balls. Tribology tests were performed in air with pairs of three different balls and mirror polished steel(SKH51) disk. The wear tracks on balls and disks were examined by optical microscope and alpha step profiler. Under the load of 3 N, the friction coefficients of steel against $ZrO_2$, SiC and NCD-coated balls were between 0.4 and 0.8. After a few thousands sliding laps, the friction coefficient of NCD-coated balls dropped from 0.45 to below 0.1 and maintained thereafter. Under a higher load of 10 N or 20 N with a long sliding distance of 2 km, $ZrO_2$ and SiC balls exhibited the similar friction coefficients as above. The friction coefficient of NCD-coated balls was less than 0.1 from the beginning and increased to above 0.1 steadily or with some fluctuations as sliding distance increased. NCD coating layers were found worn out after long duration and/or high load sliding test, which resulted in the friction coefficient higher than 0.1.
Keywords
Nanocrystalline diamond; Microwave plasma CVD; Tribology; Friction Coefficient;
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Times Cited By KSCI : 4  (Citation Analysis)
연도 인용수 순위
1 J. E. Butler, A. V. Sumant, Chem. Vap. Deposition 14 (2008) 145.   DOI   ScienceOn
2 D. G. Bhat, D. G. Johnson, A. P. Malshe, H. Naseem, W. D. Brown, L. W. Schaper, C.-H. Shen, Diamond Relat. Mater. 4 (1995) 921.   DOI
3 S. K. Choi, D. Y. Chung, S. Y. Kweon, S. K. Jung, Thin Solid Films 279 (1996) 110.   DOI
4 D. M. Gruen, Annu. Rev. Mater. Sci. 29 (1999) 211.   DOI   ScienceOn
5 A. Erdemir, C. Bindal, G. R. Fenske, C. Zuiker, A. R. Krauss, D. M. Gruen, Diamond Relat. Mater. 5 (1996) 923.   DOI
6 A. Erdemir, G. R. Fenske, A. R. Krauss, D. M. Gruen, T. McCauley, R. T. Csencsits, Surf. Coat. Technol. 120/121 (1999) 565.   DOI
7 W. Kulisch, C. Popov, S. Boycheva, L. Buforn, G. Favaro, N. Conte, Diamond Relat. Mater. 13 (2004) 1997.   DOI
8 B.-K. Na, C. H. Kang, J. Kor. Inst. Surf. Eng. 46 (2013) 68.   DOI   ScienceOn
9 J.-W. Myung, C. H. Kang, J. Kor. Inst. Surf. Eng. 47 (2014) 75.   DOI
10 D. Y. Jung, C. H. Kang, J. Kor. Inst. Surf. Eng. 44 (2011) 131.   DOI   ScienceOn
11 I.-S. Kim, C. H. Kang, J. Kor. Inst. Surf. Eng. 46 (2013) 29.   DOI   ScienceOn
12 C. Zuiker, A. R. Krauss, D. M. Gruen, X. Pan, J. C. Li, R. Csencsits, A. Erdemir, C. Bindal, G. Fenske, Thin Solid Films 270 (1995) 154.   DOI