Skip to content

Microstructures and properties of nickel-aluminum-bronze coating by laser wire additive manufacturing

Aug 2026 · Industrial Lubrication and Tribology · 0 citations · 34 references

Abstract

This study aims to investigate the microstructure, mechanical properties and corrosion resistance of nickel-aluminum bronze (NAB) coatings fabricated on Q235 steel using laser fused wire additive manufacturing. The coatings were characterized using X-ray diffraction, electron backscatter diffraction and electrochemical analysis. The main phases identified in the NAB coating are α-phase-Cu, κI-phase AlFe3, and κII-phase AlNi. The microstructure is fine, dense and uniform, with an average microhardness of 259 HV0.2. The average coefficient of friction and wear rate are 0.317 and 1.694 × 10–6g/(N·m), respectively. Corrosion tests show a corrosion potential of −0.21V and a corrosion current density of 6.201 × 10–7A/cm². The solid solution of Al and Ni in the coating enhances strength through solid solution strengthening. Grain refinement from Al and the formation of a dense oxide layer, along with the presence of the Ni-rich κII-phase, significantly improve the coating’s strength, wear resistance and corrosion resistance, contributing to its excellent overall performance. A systematic investigation was conducted on the microstructural characteristics and mechanical behavior of the resulting coatings, and the corresponding strengthening mechanisms were further clarified.

View source

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.