Enhancement of surface hardness and roughness of HQ 805 steel using diamond-like carbon coating deposited by PVD

Binsar Maruli Tua Pakpahan, Rizqi Ilmal Yaqin, Bakti Dwi Waluyo, Zulfikram Zulfikram, Muhammad Dominique Mendoza

Abstract


Diamond-Like Carbon (DLC) coatings are well-regarded for their high hardness, low friction coefficient, and excellent wear resistance, making them suitable for enhancing surface properties in demanding industrial applications. This study aims to analyze the effect of DLC coating on HQ 805 steel, focusing on improvements in surface hardness and surface roughness. HQ 805 steel, which is known for its mechanical durability, was coated using the Physical Vapor Deposition (PVD) method to achieve a uniform and adherent thin film. Hardness was evaluated using the Vickers microhardness test, while surface roughness was measured with a profilometer. Results showed a significant increase in surface hardness, with the coated samples achieving up to 798 VHN. It represented a 25–30% increase compared to the uncoated steel at 355 VHN. Surface roughness exhibited only a slight increase (5–7% Ra), indicating the thin layer and uniform deposition achieved with DLC without adversely affecting the surface finish. These results confirm that PVD-applied DLC coatings can effectively enhance the mechanical surface performance of HQ 805 steel without compromising surface quality. The optimal coating condition was found at 400°C for 4 hours. This research shows the potential application of DLC-coated HQ 805 steel in high-wear industrial environments extending component service life and improving operational efficiency.

Keywords


Diamond-Like Carbon (DLC), HQ 805 Steel, hardness, surface roughness, Physical Vapor Deposition (PVD)

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References


D. K. Rajak, A. Kumar, A. Behera, and P. L. Menezes, "Diamond-like carbon (DLC) coatings: classification, properties, and applications," Applied Sciences, vol. 11, no. 10, pp. 4445, May 2021.

K. D. Bouzakis et al., "Investigations of DLC Coating hardness improvement on cutting tools," Surface and Coatings Technology, vol. 429, pp. 127845, Dec. 2021.

S. T. Chen et al., "Characterization of DLC films for tribological applications," Wear, vol. 512, pp. 204091, Mar. 2023.

A. Lee et al., "Mechanical Properties of hydrogenated DLC coatings on steel," Tribo logy International, vol. 163, pp. 107145, Jul. 2022.

F. W. Smith et al., "Effects of multilayer DLC films on hardness and adhesion," Thin Solid Films, vol. 745, pp. 139091, Nov. 2022.

J. F. Peng et al., "Tribological behavior of DLC-c steel at High Loads," Surface Engineering, vol. 39, no. 2, pp. 167-175, Feb. 2023.

R. Kumar et al., "DLC coatings for enhanced corrosion resistance," Coatings, vol. 13, no. 4, pp. 999, Apr. 2023.

N. Ishiguro et al., "Comparison of DLC deposition techniques for steel applications, "Materials Today: Proceedings, vol. 23, pp. 123-129, Dec. 2020.

T. Y. Ma et al., "Surface modification of steel by plasma-assisted DLC coatings," Journal of Materials Research and Technology, vol. 18, pp. 56-64, Jan. 2022.

W. Zhou et al., "Impact of DLC coatings on surface wear and friction," Tribology Letters, vol. 69, no. 3, pp. 74, Mar. 2021.

C. R. Yang et al., "Advanced DLC coating methods for high-performance steel," Journal of Coating Technology, vol. 54, pp. 56-63, Apr. 2023.

B. K. Gupta et al., "Wear-resistant DLC films: A comprehensive review," Journal of Applied Physics, vol. 124, pp. 124903, Sep. 2022.

Y. Chang et al., "Enhanced roughness and hardness in DLC coated steel," International Journal of Mechanical Sciences, vol. 243, pp. 107809, Feb. 2023.

H. T. Zhang et al., "Nano-scale DLC coating techniques for precision steel tools," Journal of Nanotechnology and Advanced Materials, vol. 15, no. 4, pp. 75- 82, Mar. 2023.

J. R. Li et al., "Investigating the impact of DLC on steel frictional properties," Wear Materials, vol. 512, pp. 102930, Apr. 2021.

V. K. Kannan et al., "DLC as protective layers for industrial steel," Materials Science Forum, vol. 1145, pp. 12-19, Jan. 2022.

M. C. Huang et al., "Recent advances in DLC coatings for wear resistance," Surface Review and Letters, vol. 30, no. 2, pp. 1350048, Apr. 2023.

S. K. Das et al., "Microstructure evolution in DLC films under high stress," Journal of Surface Science, vol. 79, pp. 453-462, Jul. 2023.

A. P. Jones et al., "Effects of hydrogenated DLC coatings on tribological performance," Tribology in Industry, vol. 45, no. 3, pp. 257-264, Sep. 2023.

R. Singhal et al., "Impact of DLC coatings on structural integrity of steel," Coatings Technology Journal, vol. 27, no. 3, pp. 78- 87, Feb. 2023.




DOI: http://dx.doi.org/10.30811/jpl.v23i3.6166

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