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Ultrafine Structure Formation in Aluminium Alloy Processed by HPT and the Mechanical Properties Response

机译:HPT处理铝合金超细结构的形成及其力学性能响应

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In this study ultrafine grain structure evolution during high pressure torsion (HPT) of commercial aluminium alloy AA6082 at increased temperature is presented. Two different initial structural states of the alloy were prepared by thermal treatment. The progress in structure refinement in dependence on the shear strain level strain was investigated by TEM of thin foils. The impact of different amount of strain (ε_(ef)) introduced was analyzed with respect to the effect of increased temperature. The microhardness results measured across the deformed discs pointed out that some data scattering. The results of microstructure analyses showed that ultrafine grain (ufg) structure was already formed in deformed disc upon the first turn, regardless the initial structure of alloy, resulting from prior thermal treatment. The observed heterogeneity in ufg structure formation across the deformed disc was observed, supporting microhardness results scattering. By increasing the strain level (number of turns N -2,4,6), more effectively homogenized ufg structure was observed across the deformed discs. The effect of increased deformation temperature became evident and dynamic recrystalization modified locally ufg structure. The retardation of new grains growth and higher thermal stability of ufg structure was observed, when two steps thermal treatment of alloy (quenching and ageing) was executed prior deformation. Strength measurements results yielded from tensile tests showed that the effect of structure strengthening was degraded by local recrystallization. The results of torque measurement versus the time showed that the torque required to deform the sample was increasing until the first turn and then kept stable or even decreased.
机译:在这项研究中,提出了在高温下商用铝合金A6082在高压扭转(HPT)过程中的超细晶粒组织演变。通过热处理制备了两种不同的合金初始结构态。通过薄箔的TEM研究了取决于剪切应变水平应变的结构细化的进展。针对温度升高的影响,分析了引入的不同应变量(ε_(ef))的影响。在变形光盘上测得的显微硬度结果表明存在一些数据散射。显微组织分析的结果表明,不管合金的初始结构是由先前的热处理产生的,在第一轮中已经在变形盘中形成了超细晶粒(ufg)结构。观察到整个变形盘上ufg结构形成中的异质性,支持了显微硬度结果的散射。通过增加应变水平(匝数N -2、4、6),可以在变形的圆盘上更有效地观察到均匀的ufg结构。变形温度升高的影响变得明显,动态再结晶改变了局部ufg结构。当在变形之前对合金进行两步热处理(淬火和时效)时,观察到了新晶粒生长的延迟和ufg结构的更高的热稳定性。拉伸试验得出的强度测量结果表明,局部再结晶会降低结构加固的效果。扭矩测量与时间的关系结果表明,使样品变形所需的扭矩一直增加,直到第一圈,然后保持稳定甚至降低。

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