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Synergistic effects of WC nanoparticles and MC nanoprecipitates on the mechanical and tribological properties of Fe 40Mn 40Cr 10Co 10 medium-entropy alloy

机译:WC纳米颗粒和MC纳米沉淀对Fe 40 Mn 40 Cr 10 Co 10 中熵合金

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摘要

The synthesis of Fe40Mn40Cr10Co10/WC composites by a combination of ball milling and spark plasma sintering is reported and corresponding mechanical and tribological properties of these composites are investigated. Compared with the Fe40Mn40Cr10Co10MEA (medium entropy alloy), the addition of 10?vol.% WC nanoparticles led to an increase in the compressive strength and hardness from 1.571?GPa and 320?HV to 2.324?GPa and 788?HV, respectively. Meanwhile, tribological tests demonstrated that the friction coefficient, wear depth and width of the composite decreased in comparison with Fe40Mn40Cr10Co10MEA. Load transfer effect, thermal mismatch mechanism, Orowan strengthening and grain refinement resulting from synergistic effects betweenex-situWC nanoparticles andin-situM23C6nanoprecipitates are responsible for the improvement in mechanical properties, especially thermal mismatch mechanism and grain refinement. In addition, the enhancement in tribological properties is also ascribed to these synergistic effects.
机译:报道了球磨和火花等离子体烧结相结合的Fe40Mn40Cr10Co10 / WC复合材料的合成,并研究了相应的力学和摩擦学性能。与Fe40Mn40Cr10Co10MEA(中熵合金)相比,添加10%(体积)的WC纳米颗粒可使抗压强度和硬度分别从1.571?GPa和320?HV增加到2.324?GPa和788?HV。同时,摩擦学试验表明,与Fe40Mn40Cr10Co10MEA相比,复合材料的摩擦系数,磨损深度和宽度减小。异位WC纳米颗粒与原位M23C6纳米沉淀物协同作用产生的载荷传递效应,热失配机理,Orowan强化和晶粒细化是改善机械性能的原因,尤其是热失配机理和晶粒细化。此外,摩擦学特性的增强也归因于这些协同效应。

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