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Softening Effect on Fracture Stress of Pure Copper Processed by Asynchronous Foil Rolling

机译:异步箔轧制加工纯铜断裂胁迫的软化效果

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摘要

In order to study the size effect on the mechanical property of micro-scale metal, pure copper strips with thicknesses in the range of 20 µm to 600 µm were obtained through the asynchronous foil rolling technology. Progressive mechanical property tests indicated that the pure copper experiences softening effect at a micro-scale when the thickness is below 80 µm, which is contrary to the traditional work hardening theory. The related mechanisms were analyzed and discussed through the observation of microstructure and fracture morphology. The decrease of fracture stress with the decrease of thickness can be attributed to the decreased interfacial energy and dislocation density, which contributes to the release of the cumulative distortion energy and the tendency to soften. In addition, the distribution of misorientation angle and changed Taylor factor with the decrease of thickness are other important factors. The fracture morphology indicated a reduction in the number of micro-voids and the nature of fracture transformed from dimpled pattern to knife edge rupture with thickness. The traditional Hall-Petch relationship is no longer applicable due to the softening effect. A modified Hall-Petch relation considering the distribution of misorientation angle and Taylor factor was established, which provided a better relationship between flow stress and grain size.
机译:为了研究对微尺度金属的力学性质的尺寸影响,通过异步箔轧制技术获得厚度为20μm至600μm的纯铜条。渐进式机械性能试验表明,当厚度低于80μm时,纯铜经历微尺度的软化效果,这与传统的工作硬化理论相反。通过观察微观结构和骨折形态来分析和讨论相关机制。厚度降低的断裂应力降低可归因于降低的界面能量和位错密度,这有助于释放累积变形能量和软化趋势。此外,厚度下降的无主管角度和改变泰勒因子的分布是其他重要因素。断裂形态表明微空隙的数量和从凹陷图案转化为厚度的刀刃破裂的骨折的性质。由于效果软化,传统的哈哈 - 矛盾关系不再适用。建立了修改的霍尔 - PACH相关关系,考虑了错位角度和泰勒因子的分布,提供了流量应力和晶粒尺寸之间的更好的关系。

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