Huaijing Li , Wei Zhao , Lei Wang , Hui Zhang , Yuexia Lv , Zhen Wang , Weifeng Rao
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引用次数: 0
Abstract
AlCoCrFeNiMoxV1-x (x = 0, 0.25, 0.5, 0.75, and 1.0) high-entropy alloy coatings were fabricated on Q235 steel via laser cladding. The microstructure, elastic properties, and wear resistance at room temperature and intermediate-to-high temperatures were systematically investigated. The coatings are composed of BCC, σ, and B2 phases, with grain morphology transitioning from dendritic to columnar structures. First-principles calculations and nanoindentation tests reveal that co-addition of Mo and V significantly enhances the deformation resistance and wear performance of the BCC phase. Microhardness and wear resistance initially increase with increasing x, peaking at x = 0.5 before declining. This can be attributed to the formation of a high-elastic modulus BCC phase and the dispersion strengthening of the σ phase. Across the temperature range from room temperature to 800 °C, the wear resistance of each coating initially improves, reaching an optimal at 600 °C before the deterioration. This behavior is driven by the combined effect of oxidation kinetics and friction pressure, which promotes the in-situ formation of a continuous and dense oxide film. However, the volatilization of V2O5 and MoO3 at 800 °C leads to a deterioration in wear resistance.
期刊介绍:
This journal is a platform for publishing innovative research and overviews for advancing our understanding of the structure, property, and functionality of complex metallic alloys, including intermetallics, metallic glasses, and high entropy alloys.
The journal reports the science and engineering of metallic materials in the following aspects:
Theories and experiments which address the relationship between property and structure in all length scales.
Physical modeling and numerical simulations which provide a comprehensive understanding of experimental observations.
Stimulated methodologies to characterize the structure and chemistry of materials that correlate the properties.
Technological applications resulting from the understanding of property-structure relationship in materials.
Novel and cutting-edge results warranting rapid communication.
The journal also publishes special issues on selected topics and overviews by invitation only.