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Mechanical properties and tempering resistance of an ultrafine grained Tool Steel-PSZ composite fabricated by high energy mechanical milling and spark plasma sintering

机译:高能量机械研磨和火花等离子体烧结制造的超细颗粒工具钢-PSZ复合材料的机械性能和耐候性

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摘要

The mechanical properties and tempering resistance of a powder metallurgical (PM) tool steel (AISI H13) reinforced with partially stabilized zirconia (PSZ) were investigated. The choice of particles reinforcement was made in view to the well-known phase transformation toughening effect in PSZ. Composite powders were produced by high energy mechanical milling and subsequently consolidated by spark plasma sintering (SPS). An ultrafine grain microstructure was achieved showing a homogenous distribution of refined PSZ particles within the severely deformed matrix. Thanks to the fast SPS consolidation, a small amount (less than 2 vol%) of reaction products were formed. The hardness of the composites was significantly higher than the unreinforced counterpart, due to the microstructural refinement, increased dislocation density, and dispersion hardening. Tempering resistance at 550 °C and 650 °C was also significantly improved. The hot compressive yield strength of the composites measured 650 °C and 450 °C was increased up to 1.8 times compared to unreinforced steel. PSZ phase transformation during hot compression contributed to increased work hardening. Fracture toughness was significantly decreased compared to the base material. However, compared to a TiC reinforced H13 with the same hardness, a marginal increase in apparent fracture toughness was observed.
机译:研究了用部分稳定的氧化锆(PSZ)增强的粉末冶金(PM)工具钢(AISI H13)的机械性能和耐候性。考虑到PSZ中的众所周知的相变强化效果,提出了颗粒增强。通过高能量机械研磨生产复合粉末,随后通过火花血浆烧结(SPS)固结。实现了超细晶粒微观结构,显示了在严重变形基质中的精制PSZ颗粒的均匀分布。由于快速的SPS合并,形成了少量(不到2体积%)的反应产物。由于微观结构细化,增加的位错密度和分散硬化,复合材料的硬度明显高于未原始的对应物。 550℃和650℃的耐淬火也显着提高。与未原始的钢相比,测量650℃和450℃的复合材料的热压缩屈服强度高达1.8倍。热压缩期间PSZ相变有助于增加工作硬化。与基材相比,断裂韧性显着降低。然而,与具有相同硬度的TIC加固H13相比,观察到表观裂缝韧性的边际增加。

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