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Thermal and tribological characterizations of millscale-particles-reinforced ceramic matrix composites

机译:米利尔粒子增强陶瓷基复合材料的热和摩擦学特性

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摘要

This paper evaluates some basic functional properties of iron-millscale-reinforced ceramic matrix composites (CMCs) as potential material for automobiles and aircraft brake pads’ application. The particulate CMCs were produced by the powder metallurgy method. Iron millscale particles’ addition varied from 3 to 18 wt.% in a matrix comprising a mixture of silica, magnesia and bentonite. After sintering, the composites were subjected to coefficient of friction (COF), wear, thermal and microstructural characterizations. Microstructure of the composites showed a uniform distribution of millscale particles in the ceramic matrix with a strong interfacial bonding between the particles. The composites demonstrated a comparatively high resistance to wear, appreciable COF (0.506–0.561) and a modest thermal conductivity (0.39–0.53 W/m K) coupled with high thermal stability. Contributions to these superlative performances were provided by the high level of friction induced on composites’ surfaces and strong interfacial bonding developed during sintering.
机译:本文评估了铁磨料加强陶瓷基质复合材料(CMC)的一些基本功能性能作为汽车和飞机制动垫应用的潜在材料。通过粉末冶金方法生产颗粒状CMC。铁米施粒子的添加在3至18重量%中变化,含有二氧化硅,氧化镁和膨润土的混合物。烧结后,复合材料经受摩擦系数(COF),磨损,热和微观结构表征。复合材料的微观结构在陶瓷基质中均匀分布米粒子颗粒,在颗粒之间具有强界面键合。复合材料证明了对耐磨,可观的COF(0.506-0.561)的相对高的耐热导热性(0.39-0.53W / m k),与高热稳定性相结合。通过在复合材料表面诱导的高水平摩擦和烧结过程中产生的强烈界面粘合来提供对这些最高级性能的贡献。

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