EBSD Analysis of Grain-Refinement Mechanisms Operating During Equal-Channel Angular Pressing of Commercial-Purity Titanium

G. Dyakonov, S. Mironov, I. Semenova, R. Valiev, S. Semiatin
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引用次数: 43

Abstract

Abstract Electron backscatter diffraction was applied to examine the fundamental mechanisms governing the development of ultrafine-grain microstructures during equal-channel angular pressing of commercial-purity titanium. Texture analysis and examination of misorientation distributions revealed the enhanced activity of non-prismatic slip systems at prior grain boundaries, which promoted the preferential development of deformation-induced boundaries in these areas. By contrast, deformation in the interior of grains was dominated by prism slip which resulted in sluggish microstructural evolution. This difference in slip activity gave rise to the preferential nucleation of ultrafine grains at prior grain boundaries and thus the development of a bimodal grain structure. The grain refinement was concluded to result primarily from the incompatibility of deformation in neighboring grains.
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商品纯钛等通道角压晶粒细化机理的EBSD分析
摘要采用电子背散射衍射技术研究了等通道角挤压过程中超细晶粒组织形成的基本机理。织构分析和错取向分布分析表明,非棱柱滑移体系在先前晶界的活动增强,这促进了这些区域变形诱导晶界的优先发展。相反,晶粒内部的变形以棱柱滑移为主,导致微观组织演化缓慢。这种滑移活性的差异导致超细晶粒在先前晶界处优先成核,从而形成双峰型晶粒结构。晶粒细化的主要原因是邻近晶粒变形的不相容。
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