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首页> 外文期刊>Materials Science and Technology: MST: A publication of the Institute of Metals >Microstructural evolution and mechanisms of superplasticity in an Al-4.5%Mg alloy
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Microstructural evolution and mechanisms of superplasticity in an Al-4.5%Mg alloy

机译:Al-4.5%Mg合金的微观组织演变和超塑性机理

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摘要

An Al-4.5%Mg alloy (AA 5083) exhibited superplasticity over the temperature range from 450 to 570 degrees C and strain rate range from 10(-4) to 10(-2) s(-1) with high strain rate sensitivities (maximum 0.7). A single activation energy, being close to that for aluminium selfdiffusion, was found for the testing conditions used. Using a technique of quenching and aging under load, the dislocation structures developed during the deformation were retained. A gradual and systematic change was observed between dislocation creep at the high strain rates and diffusion creep at the low strain rates. The grains grew and became elongated during the deformation. The amount of grain extension along the tensile stress in the superplastic range, however, was significantly smaller that the tensile strain, indicating grain boundary sliding (GBS). It is suggested that highly strain rate sensitive plastic flow can be achieved when GBS is controlled by intragranular dislocation climb. Superplasticity in this alloy was a combined action of such a process and conventional dislocation creep.
机译:Al-4.5%Mg合金(AA 5083)在450至570摄氏度的温度范围内,应变率范围从10(-4)至10(-2)s(-1)表现出超塑性,并具有较高的应变率敏感性(最高0.7)。对于所使用的测试条件,发现了一个接近于铝自扩散的单活化能。使用在负载下淬火和时效的技术,保留了变形过程中形成的位错结构。在高应变速率下的位错蠕变和低应变速率下的扩散蠕变之间观察到了逐渐而系统的变化。在变形过程中,晶粒长大并拉长。然而,在超塑性范围内沿拉伸应力的晶粒延伸量明显小于拉伸应变,表明晶界滑动(GBS)。建议当通过晶内位错爬升控制GBS时,可以实现对应变率敏感的塑性流动。这种合金的超塑性是这种过程和常规位错蠕变的共同作用。

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