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Superplasticity at Room Temperature in Zn-22Al Alloy Processed by Equal-Channel-Angular Extrusion

机译:等通道角挤压加工Zn-22Al合金在室温下的超塑性

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摘要

Equal-Channel-Angular extrusion (ECAE) has been conducted at room temperature in order to develop an ultrafine-grained structure in a Zn-22 mass percent Al eutectoid alloy. The microstructures had an equiaxed and homogeneously distributed Al-rich and Zn-rich duplex-phase and its average grain size was about 0.35 mu m. This alloy exhibited a large elongation of 240 percent albeit at room temperature and a high strain rate of 10~(-2)s~(-1). A grain-size-dependent phenomenon was also observed at lower strain rates. The activation energy was close to that for grain boundary diffusion. It was apparent that the deformation behavior at room temperature is consistent with that observed in conventional superplasticity. From the results, it was concluded that the dominant deformation mechanism was grain boundary sliding accommodated by dislocation movement controlled by grain boundary diffusion.
机译:为了在Zn-22质量百分比的Al共析合金中形成超细晶粒结构,已经在室温下进行了等通道角挤压(ECAE)。显微组织具有等轴且均匀分布的富铝和富锌双相,平均晶粒尺寸约为0.35微米。尽管在室温下,该合金仍显示出240%的大伸长率,并且应变率高达10〜(-2)s〜(-1)。在较低的应变速率下也观察到晶粒尺寸依赖性现象。活化能接近晶界扩散的活化能。显然,室温下的变形行为与常规超塑性中观察到的一致。从结果可以得出结论,主要的变形机制是晶界扩散控制的位错运动所引起的晶界滑动。

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