Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
9812916 | Thin Solid Films | 2005 | 8 Pages |
Abstract
Nanoscale multilayer C/Cr coatings have been deposited by utilising the combined steered cathodic arc/unbalanced magnetron sputtering technique. The coating microstructure and tribological performance have been investigated as a function of the bias voltage, ranging from Ub=â65 to â350 V. The XRD results revealed that C/Cr coatings are amorphous at low Ub, but became more crystalline when the Ub increased to â350 V. High-resolution XTEM analysis indicated coating densification and smoothening as well as formation of novel amorphous nanostructure, in which carbon-rich clusters are surrounded by a Cr-rich matrix, leading to the formation of self-organised multilayer structure as the bias voltage was increased from â65 to â350 V. An increase of the bias voltage from â65 to â350 V resulted in an increase in the hardness from 8 to 25 GPa and Young's modulus, E from 186 to 319 GPa. A pin-on-disc test showed that the friction coefficient was reduced from 0.22 to 0.16 when the bias voltage was increased from â65 to â95 V. However, a further increase in the bias voltage to â350 V led to an increase in the friction coefficient to 0.31. The lowest wear coefficient Kcâ¼6.25Ã10â17 m3 Nâ1 mâ1 was achieved at Ub=â120 V. Standard HSS drills, 8 mm in diameter, coated with C/Cr have been tested using solution annealed AISI 304 stainless steel as the work piece material. An improvement of the lifetime by a factor of â¼9 has been achieved as compared to the uncoated tools. In this test, the C/Cr coating outperformed a number of commercially available PVD coatings, such as TiCN, TiAlCrN and showed similar performance to TiAlCrYN.
Related Topics
Physical Sciences and Engineering
Materials Science
Nanotechnology
Authors
Y.N. Kok, P.Eh. Hovsepian, Q. Luo, D.B. Lewis, J.G. Wen, I. Petrov,