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Microstructure and High-Temperature Wear Performance of FeCr Matrix Self-Lubricating Composites from Room Temperature to 800 °C

机译:FeCr基自润滑复合材料从室温到800°C的微观结构和高温磨损性能

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摘要

FeCr matrix high-temperature self-lubricating composites reinforced by Mo, Ag, and CuO were fabricated by the powder metallurgy technique. The tribological behaviors of composites were studied at temperatures up to 800 °C. The CuO content was optimized according to the tribological results. Mo showed an obvious lubricating effect when it converted into MoO . The bimetallic oxide system formed high-temperature solid lubricants with low shear strength. CuO reacted with MoO and formed CuMoO and Cu Mo O . The composites showed an increase in the friction coefficient with the increase of CuO. However, the wear rates decreased with the increase of CuO. The critical threshold at which there was a transition of friction coefficients and wear rates from room temperature (RT) to 800 °C was 10 wt.% CuO. The Fe(Cr)-14% Mo-10.5% Ag-10% CuO composite showed the most reasonable high-temperature tribological behaviors. This was ascribed to the synergistic effects of silver, Mo, in situ formed solid lubricants (metal oxides and salt compounds), and the stable oxide film on the worn surfaces. At elevated temperatures, the dominant wear mechanism was oxidation wear.
机译:通过粉末冶金技术制备了由Mo,Ag和CuO增强的FeCr基高温自润滑复合材料。在高达800°C的温度下研究了复合材料的摩擦学行为。根据摩擦学结果优化了CuO含量。 Mo转变为MoO时表现出明显的润滑作用。双金属氧化物体系形成了剪切强度低的高温固体润滑剂。 CuO与MoO反应生成CuMoO和Cu MoO。随着CuO的增加,复合材料的摩擦系数增加。但是,磨损率随CuO的增加而降低。从室温(RT)到800°C的摩擦系数和磨损率过渡的临界阈值为10 wt。%CuO。 Fe(Cr)-14%Mo-10.5%Ag-10%CuO复合材料表现出最合理的高温摩擦学行为。这归因于银,钼,原位形成的固体润滑剂(金属氧化物和盐化合物)以及磨损表面上稳定的氧化膜的协同作用。在高温下,主要的磨损机理是氧化磨损。

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