Effect of α-AlO Additive on the Surface Micro-Arc Oxidation Coating of Ti6Al4V Alloy.

Nanomaterials (Basel)

College of Mechatronic Engineering, North University of China, Taiyuan 030051, China.

Published: June 2023

α-AlO nanoparticles can enter a micro-arc oxidation coating and participate in the coating-formation process through chemical reaction or physical-mechanical combination in the electrolyte. The prepared coating has high strength, good toughness and excellent wear and corrosion resistance. In this paper, 0, 1, 3 and 5 g/L of α-AlO nanoparticles were added to a NaSiO-Na(PO) electrolyte to study the effect on the microstructure and properties of a Ti6Al4V alloy micro-arc oxidation coating. The thickness, microscopic morphology, phase composition, roughness, microhardness, friction and wear properties and corrosion resistance were characterized using a thickness meter, scanning electron microscope, X-ray diffractometer, laser confocal microscope, microhardness tester and electrochemical workstation. The results show that surface quality, thickness, microhardness, friction and wear properties and corrosion resistance of the Ti6Al4V alloy micro-arc oxidation coating were improved by adding α-AlO nanoparticles to the electrolyte. The nanoparticles enter the coatings by physical embedding and chemical reaction. The coatings' phase composition mainly includes Rutile-TiO, Anatase-TiO, α-AlO, AlTiO and amorphous phase SiO. Due to the filling effect of α-AlO, the thickness and hardness of the micro-arc oxidation coating increase, and the surface micropore aperture size decreases. The roughness decreases with the increase of α-AlO additive concentration, while the friction wear performance and corrosion resistance are improved.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10254928PMC
http://dx.doi.org/10.3390/nano13111802DOI Listing

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