Elevated temperature wear and friction performance of WC-CoCr/Mo and WC-Co/NiCr/Mo coated Ti-6Al-4V alloy

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Date

2024

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Elsevier Inc.

Abstract

The effect of adding Mo to WC-based coatings on the microstructure and dry sliding wear performance at elevated temperatures is investigated. The WC-based coatings are deposited using a high-velocity oxy-fuel process on the titanium-31 substrate. The coating was characterized by microstructure, microhardness, porosity, surface roughness, density, and bond strength. The wear and friction behavior of coatings was evaluated using a ball-on disc tribometer at temperatures of 200, 400, 600, and 800 °C and loads of 20 and 30 N. SEM-EDS and an optical profilometer were utilized to evaluate the wear rate and mechanism. The microhardness and bond strength of WC-CoCr/10%Mo coating is more than that of WC-Co/20%NiCr/10%Mo coatings. The WC-CoCr, WC-CoCr/10%Mo, and WC-Co/20%NiCr/10%Mo coatings exhibited decreasing wear rates up to 600 °C, transitioning to an increase at 800 °C. The oxide phases of CoWO<inf>4</inf> WO<inf>3</inf> MoO<inf>3</inf>, CoMoO<inf>4</inf>, and NiMoO<inf>4</inf>, formed at 600 °C, aid in reducing the rate of wear and friction coefficient. However, the wear rate slightly increased at 800 °C due to vigorous oxidation and softness of coatings. The friction coefficient of WC-CoCr, WC-CoCr/10%Mo, and WC-Co/20%NiCr/10%Mo coating decreases with increasing temperatures due to the lubricating properties of oxide phases on the worn surface. The WC-CoCr/10%Mo coating demonstrates a lower friction and wear rate than the WC-CoCr and WC-Co/20%NiCr/10%Mo coating. At 200 °C, the predominant wear mechanisms were abrasive and fatigue wear, while at 800 °C, oxidative wear, abrasive wear, and adhesive wear were observed. © 2024

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Keywords

Adhesives, Aluminum alloys, Bond strength (materials), Chromium alloys, Coatings, Cobalt alloys, Friction, HVOF thermal spraying, Microhardness, Molybdenum alloys, Molybdenum oxide, Solid lubricants, Surface roughness, Ternary alloys, Titanium alloys, Wear of materials, 3d profilometer, HVOF, Mo coatings, Oxide layer, Profilometers, WC coating, Wear and friction, Wear mechanisms, Wear performance, Wear-rate, Microstructure

Citation

Materials Characterization, 2024, 215, , pp. -

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