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Influence of Mg content, grain size and strain rate on mechanical properties and DSA behavior of Al-Mg alloys processed by ECAP and annealing

机译:镁含量,晶粒度和应变速率对ECAP和退火处理的Al-Mg合金力学性能和DSA行为的影响

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Ultrafine-grained (UFG) binary Al-xMg (x=1, 5 and 7 wt %) alloys were processed by equal channel angular pressing (ECAP) at room temperature via route Be combined with inter-pass annealing. The effects of Mg content, grain size and strain rate on mechanical properties and dynamic strain aging (DSA) behaviour of the Al-Mg alloys upon tensile testing at room temperature were studied. An increase in Mg content from 5 to 7 wt % leads to a pronounced increase in strength and uniform elongation in both the as-homogenized and as-ECAP Al-Mg alloys. Thereby, the Al-7Mg alloy, either prior to or after ECAP processing, possess significantly higher strength and comparable or even higher uniform elongation than the more dilute Al-Mg alloys. However, the as-ECAP Al-Mg alloys exhibit significantly higher strength but little work hardening and hence rather limited uniform elongation. In general, decreasing grain size leads to significant increase in strength while dramatic decrease in ductility. Moreover, DSA serration amplitudes increase with reducing grain size in the micrometer range. However, the UFG Al-Mg alloys exhibit much less DSA effect than the micrometer scaled grain size counterparts, i.e. probably due to the high dislocation densities and special grain boundary features in the UFG materials. Also, the Al-Mg alloys, especially those with a UFG structure, exhibit higher strength and ductility at lower strain rate than at higher strain rate, due mainly to enhanced DSA effect and hence work hardening at a lower strain rate.
机译:在室温下通过等通道角挤压(ECAP)通过路径Be与通道间退火相结合,加工了超细晶粒(UFG)二元Al-xMg(x = 1、5和7 wt%)合金。研究了镁含量,晶粒尺寸和应变速率对铝镁合金室温拉伸性能的力学性能和动态应变时效(DSA)行为的影响。 Mg含量从5 wt%增加到7 wt%导致均质化和as-ECAP Al-Mg合金强度和均匀伸长率显着提高。因此,与更稀的Al-Mg合金相比,在ECAP处理之前或之后的Al-7Mg合金具有显着更高的强度和相当或什至更高的均匀伸长率。但是,as-ECAP Al-Mg合金表现出明显更高的强度,但几乎没有加工硬化,因此均匀伸长率受到限制。通常,减小晶粒尺寸会导致强度显着提高,同时延展性显着下降。而且,DSA锯齿形振幅随着微米范围内晶粒尺寸的减小而增加。但是,UFG Al-Mg合金的DSA效应要比微米级的晶粒小得多,也就是说,这可能是由于UFG材料中的高位错密度和特殊的晶界特征。而且,Al-Mg合金,特别是具有UFG结构的Al-Mg合金,在较低的应变率下比在较高的应变率下显示出更高的强度和延展性,这主要是由于增强的DSA效应,因此以较低的应变率进行了加工硬化。

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