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Microstructure and mechanical properties of steel/TiC nano-composite surface layer produced by friction stir processing

机译:摩擦搅拌法制备钢/ TiC纳米复合表面层的组织与力学性能

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摘要

A steel/TiC nano-composite surface layer with ultra fine grains of less than 600. nm was fabricated on mild steel substrate by introduction of nano-sized TiC powder into the stir zone employing four passes of friction stir processing. TiC clusters were formed after the first pass. Sequential break-up of clusters and refinement of matrix grains were caused by subsequent FSP passes. A near uniform dispersion of nano-sized TiC particles was achieved after the fourth pass. The fabricated nano-composite layer exhibited a maximum micro hardness value of ~. 450HV; this is much greater than 185 and 130HV of the friction stir processed layer without introduction of TiC powder and as-received substrates, respectively. Moreover, a significant improvement in wear resistance of the nano-composite layer was observed as compared with that of the as-received substrate. The enhanced properties are attributed to the uniform dispersion of hard nano-sized TiC reinforcements in a matrix of ultra fine dynamically recrystallized grains.
机译:通过四次摩擦搅拌工艺将纳米尺寸的TiC粉末引入搅拌区,在低碳钢基材上制备了具有小于600.nm的超细晶粒的钢/ TiC纳米复合材料表面层。 TiC团簇是在第一遍之后形成的。后续的FSP通过导致簇的顺序破裂和基体晶粒的细化。在第四遍之后,获得了纳米尺寸的TiC颗粒几乎均匀的分散。制成的纳米复合材料层的最大显微硬度值为〜。 450HV;这分别比没有引入TiC粉末和原样的基材的摩擦搅拌处理层的185和130HV大得多。此外,与原样基板相比,观察到纳米复合层的耐磨性显着提高。增强的性能归因于硬纳米级TiC增强材料在超细动态再结晶晶粒的基体中的均匀分散。

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