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Extra-Hardening of SPD-Processed Al-Mg Alloy with Minimum Grain Sizes

机译:具有最小粒径的SPD加工Al-Mg合金的超硬化

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摘要

Severe plastic deformation (SPD) processing of Al alloys could obtain high strength by grain refinement mechanism. The minimum grain size of Al alloy, obtained at higher strain rate at low temperature, is determined the stacking fault energy of the alloy. SPD-processed pure Al metal, has high stacking fault energy, has relatively large grain size. During SPD processing, large strain is introduced, and the dislocation is rearranged in the specimen. The re-arrangement of dislocation in SPD-processed Al alloy with intermediate stacking fault energy significantly delayed, thus the strain remains in the grain interior. The extra-hardening, a kind of strain hardening, results from an incomplete of dynamic recrystallization during SPD processing. Al-Mg solid solution alloy has intermediate stacking fault energy and the minimum grain size of this alloy approaches about 200 nm after SPD. The mechanical property of this alloy is remarkably higher than the predictable strength by Hall-Petch relationship due to the extra-hardening. In addition, the increase in strength by the extra-hardening varies with the Mg content of Al-Mg alloy. In this study, the effect of Mg content, i.e. the stacking fault energy of the alloy, on the degree of the extra-hardening of SPD-processed Al-Mg alloy was investigated in terms of the dislocation density and low-angle grain boundary of the alloy.
机译:通过晶粒细化机制,Al合金的严重塑性变形(SPD)加工可以获得高强度。在低温下以较高应变速率获得的Al合金的最小粒度是确定合金的堆叠故障能量。 SPD加工的纯Al金属,具有高堆叠故障能量,具有相对大的粒度。在SPD处理期间,引入大应变,并在样品中重新排列位错。具有中间堆叠故障能量的SPD加工Al合金中位错的重新布置显着延迟,因此该应变保持在晶粒内部。超硬化,一种应变硬化,由SPD处理期间的动态重结晶不完全产生。 Al-Mg固体溶液合金具有中间堆叠故障能量,并且在SPD后,该合金的最小粒度约为200nm。由于超硬化,该合金的机械性能显着高于通过霍尔辅助关系的可预测强度。此外,通过铝镁合金的Mg含量随着Mg含量而增加的强度。在该研究中,在脱位密度和低角度晶边界方面研究了Mg含量,即合金的堆叠故障能量,对SPD处理的Al-Mg合金的超硬化程度的影响合金。

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