Effects of Nano-H-Bn and Ag-Coated Cu on the Microstructure and Friction-Reduction Properties of Self-Lubricating Composite Coatings

24 Pages Posted: 20 Dec 2023

See all articles by Xianfen LI

Xianfen LI

Hefei University of Technology

Hu Shen

Hefei University of Technology

Zheng Xu

Hefei University of Technology

Junyang Ye

Hefei University of Technology

Peng Hua

Hefei University of Technology

Dashuang Liu

Hefei University of Technology - School of Materials Science and Engineering

Abstract

High-strength steel (42CrMo) is frequently used to manufacture components under high load and high friction conditions. To improve the surface tribological properties, nickel-based alloy coatings with Ag(Cu)/nanoNi/h-BN nanosheets were prepared on the surface of 42CrMo steel by laser cladding technique. The effects of Ag(Cu) and nanoNi/h-BN on the microstructure evolution, hardness and friction-reduction properties of the cladding layer were discussed. The results show that the coating microstructure changes significantly. The addition of micron Ag(Cu) and nanoscale Ni/h-BN increased the nucleation rate of the melting pool, and the columnar dendritic crystals were transformed into fine cells. The addition of nanoparticles enabled the coating to obtain a higher microhardness of 575.4HV0.2, which is about 1.4 times of the substrate. The mechanical properties of the coating were improved, and the friction coefficient and wear rate were significantly reduced, with good friction-reduction property. The wear mechanism mainly consists of a composite wear of slight adhesive wear, abrasive wear and oxidation wear.

Keywords: laser cladding, self-lubrication, composite coatings, friction-reduction

Suggested Citation

LI, Xianfen and Shen, Hu and Xu, Zheng and Ye, Junyang and Hua, Peng and Liu, Dashuang, Effects of Nano-H-Bn and Ag-Coated Cu on the Microstructure and Friction-Reduction Properties of Self-Lubricating Composite Coatings. Available at SSRN: https://ssrn.com/abstract=4671085 or http://dx.doi.org/10.2139/ssrn.4671085

Xianfen LI (Contact Author)

Hefei University of Technology ( email )

193 Tunxi Rd
Baohe
Hefei
China

Hu Shen

Hefei University of Technology ( email )

193 Tunxi Rd
Baohe
Hefei
China

Zheng Xu

Hefei University of Technology ( email )

193 Tunxi Rd
Baohe
Hefei
China

Junyang Ye

Hefei University of Technology ( email )

193 Tunxi Rd
Baohe
Hefei
China

Peng Hua

Hefei University of Technology ( email )

193 Tunxi Rd
Baohe
Hefei
China

Dashuang Liu

Hefei University of Technology - School of Materials Science and Engineering ( email )

193 Tunxi Rd
Baohe
Hefei, Anhui
China

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