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Superior low-temperature superplasticity in fine-grained ZK60 Mg alloy sheet produced by a combination of repeated upsetting process and sheet extrusion

机译:通过重复的镦粗工艺和片材挤出的组合产生的细粒ZK60mg合金板中优异的低温超塑性

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摘要

Fine-grained magnesium alloy sheets are potential candidates for superplastic forming applications. In the present study, the ZK60 Mg alloy sheet was obtained by a combination of repeated upsetting (RU) process, as a severe plastic deformation method, and subsequent forward sheet extrusion. Performing extrusion on the specimens processed by 1 and 5 passes of RU resulted in sheets with average grain sizes smaller than 10 μm, and a basal texture component. The sheet produced by 5 passes of RU and subsequent extrusion (denoted as A5RE) showed low-temperature superplasticity with the strain rate sensitivity index (m-value) of 0.57 and 0.62 at 523 K and 573 K, respectively. The microstructural characterization revealed that a fully recrystallized (V_(DRX) = 96%) fine-grained microstructure containing a large volume fraction of high-angle grain boundaries (HAGBs) of 80.5%, together with the presence of thermally stable secondary phase particles, are the main reasons for achieving the superplasticity in the A5RE condition. The m-value greater than 0.5 and activation energy of 106 kJ/mol calculated for this condition indicate the grain boundary sliding (GBS), accommodated by grain boundary diffusion, as the dominant deformation mechanism during superplastic forming.
机译:细粒镁合金板是超塑性成型应用的潜在候选者。在本研究中,通过重复的镦粗(Ru)方法的组合,作为严重的塑性变形方法和随后的向前板挤出而获得ZK60mg合金片。对由1和5通过Ru加工的试样进行挤出产生的平均晶粒尺寸小于10μm的片材,以及基础纹理组分。由Ru的5次通过和随后的挤出产生的片材显示出低温超塑性,其应变率敏感性指数(M值)分别为0.57和0.62,分别为523k和573k。微观结构表征显示,全重结晶的(V_(DRX)= 96%)细粒微粒微粒,其大容积大部分的高角度晶界(HAGBS)为80.5%,以及存在热稳定的二次相粒子,是在A5RE条件下实现超塑性的主要原因。为该条件计算的106kJ / mol的M值大于0.5和激活能量,表示通过晶粒边界扩散容纳的晶界滑动(GBS),作为超塑性成型期间的主要变形机制。

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