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Characterization and Analysis of Strain Heterogeneity at Grain-Scale of Titanium Alloy with Tri-Modal Microstructure during Tensile Deformation

机译:三模态钛合金拉伸变形过程中晶粒尺寸应变异质性的表征与分析

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摘要

Grain-scale strain heterogeneity characteristics play a critical role in the ductile damage behavior and mechanical properties of two-phase titanium alloys. In this work, the grain-scale strain distribution, strain heterogeneity, and strain localization of titanium alloy with tri-modal microstructure (consisting of equiaxed α (αp), lamellar α (αl), and β transformed matrix (βt)) during tensile deformation were experimentally investigated. The results show that the strain probability distribution of the whole microstructure obeys normal distribution during deformation. Significant strain heterogeneities exist in each constituent (αp, αl, and βt) and the whole microstructure. At lower macro-strain, αp and αl exhibit higher average strain than those of βt and the whole of the microstructure. Meanwhile, strain heterogeneity of each constituent is small and has a negligible change. The strain heterogeneity of the whole microstructure is mainly determined by αp. At larger macro-strain, some highly deformed regions produce and their positions do not change during further deformation. As a result, the strain heterogeneity of each constituent increases fast, and the strain heterogeneity of whole microstructure is mainly related to αl in this deformation stage. On the other hand, two types of strain localization may be generated within αp and αl and at the αp/βt and αl/βt boundaries, respectively. The former type is caused by transgranular intense slip deformation and presents crystal orientation dependence. The latter type is related to the boundary sliding and presents spatial distribution dependence for αl. These strain localizations greatly determine the micro-damages, thus forming the corresponding micro-voids within αp and αl and the micro-cracks at αpt and αlt boundaries in tri-modal microstructure at larger deformation.
机译:晶粒度应变异质性在两相钛合金的延性破坏行为和力学性能中起着至关重要的作用。在这项工作中,拉伸过程中具有三峰微观结构(由等轴α(αp),层状α(αl)和β相变基质(βt)组成)的钛合金的晶粒尺寸应变分布,应变异质性和应变局部化变形进行了实验研究。结果表明,变形过程中整个组织的应变概率分布服从正态分布。每个成分(αp,αl和βt)以及整个微观结构中都存在明显的应变异质性。在较低的宏观应变下,αp和αl的平均应变高于βt和整个微观结构。同时,每种成分的菌株异质性很小,变化可忽略不计。整个组织的应变异质性主要由αp决定。在较大的宏观应变下,会产生一些高度变形的区域,并且它们的位置在进一步变形期间不会改变。结果,每个成分的应变异质性迅速增加,并且在该变形阶段,整个微观结构的应变异质性主要与α1有关。另一方面,在αp和αl内以及在αp/βt和αl/β t 边界处可能分别产生两种应变局部化。前一种类型是由晶间强烈滑移变形引起的,并表现出晶体取向依赖性。后者与边界滑动有关,并表现出α l 的空间分布依赖性。这些应变的位置极大地决定了微损伤,从而在α p 和α l 内形成了相应的微孔,并在α p t 和α l t 边界。

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