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Hardness - strength relationships in fine and ultra-fine grained metals processed through constrained groove pressing

机译:硬度-通过约束沟槽压制加工的细金属和超细金属的强度关系

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Fine grained (FG) and ultra-fine grained (UFG) materials processed by severe plastic deformation exhibit beneficial hardness and tensile properties. Constrained groove pressing (CGP) were employed for fabrication of FG and UFG sheet metals and accomplished into different types of metals and alloys, such as commercial pure aluminum, AA3003 aluminum alloy, commercial pure copper, nickel, titanium and low carbon steels. Tensile and hardness characteristics in the FG and UFG sheets have been assessed with the aim of evaluating the hardness-strength relationship frequently established for coarse-grained metals and alloys (σ_(UTS)/H_V = 3.45). However, it was revealed that the FG and UFG materials do not obey widely used hardness-strength relationships in the conventional coarse grained structures. A new multiplicity factor less than 3, depending on the chemical composition of processed materials, is proposed in this study. This is attributed to different strain hardening response of the FG and UFG materials with slight work hardening before necking instability. In fine grained and ultra-fine grained structures failure does not occur in (or right after) the onset of necking point. That is, tensile deformation sustains significantly up to fracture point due to the role of superplasticity mechanisms.
机译:通过严重的塑性变形处理的细颗粒(FG)和超细颗粒(UFG)材料显示出有益的硬度和拉伸性能。约束槽压制(CGP)用于制造FG和UFG薄板金属,并制成各种类型的金属和合金,例如商用纯铝,AA3003铝合金,商用纯铜,镍,钛和低碳钢。评估了FG和UFG板材的拉伸和硬度特性,目的是评估经常为粗晶粒金属和合金建立的硬度-强度关系(σ_(UTS)/ H_V = 3.45)。但是,发现在常规的粗粒结构中,FG和UFG材料没有遵循广泛使用的硬度-强度关系。在这项研究中,提出了一个新的小于3的多重因子,具体取决于加工材料的化学组成。这归因于FG和UFG材料具有不同的应变硬化响应,并在颈缩不稳定之前进行了轻微的加工硬化。在细晶粒和超细晶粒结构中,不会在颈缩点开始时(或之后)发生故障。即,由于超塑性机制的作用,拉伸变形显着维持直至断裂点。

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