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Microstructural evolution and mechanical properties of ultrafine-grained pure α-iron and Fe-0.02%C steel processed by high-pressure torsion: Influence of second-phase particles

机译:高压扭转超细颗粒纯α-铁和Fe-0.02%C钢的微观结构演化与机械性能:二相粒子的影响

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摘要

A Fe-0.02 wt%C, containing cementite particles, and a pure a-iron are subjected to unconstrained high-pressure torsion and their microstructural refinement with strain are examined by electron backscatter diffraction (EBSD) and transmission Kikuchi diffraction EBSD (TKD-EBSD), based on which the influence of second-phase particles on grain refinement mechanisms is investigated. Both materials are refined rapidly by formation of subgrain boundaries and grain boundaries at low and medium strains. The single-phase iron generates a higher density of geometrically necessary dislocations and forms small grains in the deformation inhomogeneity regions. However, at a higher strain of ~12.3, the cementite particles facilitate to overcome the saturation microstructure that occurrs in the pure iron and promote further grain refinement. Continuous dynamic recrystallization (CDRX) by transforming subgrain boundaries to grain boundaries is the major grain refinement mechanism before ε_(vm)~12-13. Geometric dynamic recrystallization (GDRX) is also operating during ultrahigh strains (ε_(vm)~12-30), particularly prevalent in the cementite-containing specimen. Mechanical properties of the HPT-processed mi-crostructures are examined by nanoindentation and micropillar compression.
机译:Fe-0.02wt%C,含渗碳盐颗粒和纯α-铁受到无约束的高压扭转,并且通过电子反向散射衍射(EBSD)和传输Kikuchi衍射EBSD(TKD-EBSD)检查它们的微观结构细化(基于其中研究了二相颗粒对晶粒细化机制的影响。通过在低和中等菌株中形成粒边界和晶界,两种材料都是快速精制的。单相铁产生较高密度的几何必要脱位,并在变形不均匀性区域中形成小颗粒。然而,在〜12.3的较高菌株中,渗碳石颗粒有助于克服纯铁中发生的饱和微观结构,促进进一步的晶粒细化。通过将子粒边界转换为晶界的连续动态再结晶(CDRX)是ε_(VM)〜12-13之前的主要晶粒细化机制。几何动态再结晶(GDRX)也在超高菌株(ε_(Vm)〜12-30)期间,特别是含硬渗碳标本中的普遍存在。通过纳米凸缘和微米压缩检查HPT处理的MI-Croostructure的机械性能。

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