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A synchrotron X-ray and electron backscatter diffraction based investigation on deformation and failure micro-mechanisms of monotonic and cyclic loading in titanium

机译:基于同步X射线和电子反向散射衍射的钛单调和循环载荷变形和破坏微观机制的研究

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摘要

Synchrotron X-ray diffraction technique has been used to estimate defect structure in terms of dislocation density, crystallite size and micro-strain in commercially pure titanium subjected to tension and cyclic deformation in stress and strain control mode. Statistical analysis of micro-texture data collected from electron backscatter diffraction approximately from the same region as that of synchrotron X-ray has been used to correlate orientation dependent micro-strain and dislocation density with deformation microstructure and microtexture. Two different orientations, namely, A with prismatic-pyramidal and B with basal orientation along the loading axis has been considered. Weak initial texture yet significant anisotropy in hardening/softening response and failure mode for monotonic tension and cyclic loading paths has been observed. Higher strain hardening response of orientation A during monotonic tensile deformation can be attributed to the evolution of lower micro-strain on basal orientation grains i.e, < 0002 > IIND along with extensive multi-variant twinning that also restricts crack propagation and delays failure in stress control mode. On the other hand, in strain control mode, orientation B shows higher fatigue life due to the generation of lower micro-strain in the basal orientation grains and single variant twinning that can undergo detwinning easily is responsible for delayed crack nucleation and subsequent failure.
机译:同步加速器X射线衍射技术已被用于根据位错密度,微晶尺寸和商业纯钛在应力和应变控制模式下经受张力和循环变形的情况下的位错密度,微晶尺寸和微应变来估算缺陷结构。从电子反向散射衍射收集的大约与同步加速器X射线相同区域的微观纹理数据的统计分析已用于将与方向相关的微应变和位错密度与变形微观结构和微观纹理相关联。已经考虑了两个不同的方向,即沿加载轴具有棱锥金字塔形的A和具有基本取向的B。在单调张力和循环载荷路径下,观察到初始结构较弱,但在硬化/软化响应和破坏模式中存在明显的各向异性。单调拉伸变形过程中取向A较高的应变硬化响应可归因于基础取向晶粒上较低的微应变的演化,即<0002> IIND以及广泛的多变量孪晶,这也限制了裂纹扩展并延迟了应力控制的失败模式。另一方面,在应变控制模式下,由于在基本取向晶粒中产生较低的微应变,取向B表现出较高的疲劳寿命,而易于变形的单晶孪晶则导致延迟的裂纹成核和随后的破坏。

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