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Effect of Alloying Elements on Fracture Toughness and Ductility in Magnesium Binary Alloys; A Review

机译:合金元素对镁二元合金中断裂韧性和延性的影响; 回顾

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The development of magnesium alloys, which exhibit high strength and high ductility (fracture toughness), is critical for ensuring the safety and reliability in structural applications. It is well-known that grain refinement and/or alloying are impressive strategies to attain such properties in metallic materials. In the former case, grain boundaries of magnesium and its alloys have unique characteristics, e.g., sites for non-basal dislocation activity and occurrence of partial grain boundary sliding. As a result, strength as well as ductility (fracture toughness) tend to increase and improve with grain refinement. In the latter case, 29 types of solid solution elements, which have a maximum solubility of more than 0.1 at%, can dissolve in magnesium. Several elements are generally added to magnesium simultaneously to achieve good mechanical properties via a synergistic effect. In industrial fields, ternary magnesium alloys such as Mg-Al-Zn and Mg-Zn-Zr alloys, which have fine-grained structures, have been widely used; however, there is no still clear and systematic understanding of the impact of various alloying elements on properties for magnesium. In this paper, we review recent studies on the effect of solid solution alloying elements on ductility (fracture toughness), with focusing on polycrystalline binary magnesium alloys. With regard to the toughness, the crack-propagation behavior and/or fracture behavior are quite sensitive to the alloying element, regardless of grain size. Twin boundaries in particular are recognized as harmful defects, because they act as crack-propagation sites. Nevertheless, changing the electric bonding behavior through alloying has the potential to increase the toughness. As for the ductility, the alloying elements also dramatically affect the room-temperature plastic deformation. In addition to the activation of the non-basal dislocation slip, grain boundary sliding also plays a notable role in enhancing the elongation-to-failure in tension.
机译:镁合金的开发具有高强度和高延展性(断裂韧性),对于确保结构应用中的安全性和可靠性至关重要。众所周知,谷物细化和/或合金化是在金属材料中获得这种性质的令人印象深刻的策略。在前一种情况下,镁的晶界及其合金具有独特的特征,例如,非基础脱位活动的位点以及部分晶界滑动的出现。结果,随着晶粒细化,强度以及延展性(断裂韧性)趋于增加和改善。在后一种情况下,29种类型的固溶体元素,其具有大于0.1at%的最大溶解度,可以溶于镁中。通常通过协同效应同时添加几种元素以实现良好的机械性能。在工业领域,已广泛使用诸如Mg-Al-Zn和Mg-Zn-Zr合金的三元镁合金,已被广泛使用;然而,对各种合金元素对镁性能的影响仍然没有清楚和系统地理解。本文审查了最近关于固体溶液合金化元素对延展性(断裂韧性)的影响的研究,聚焦在多晶二烯镁合金上。关于韧性,裂缝繁殖行为和/或断裂行为对合金元素非常敏感,无论粒度尺寸如何。特别是双界被认为是有害缺陷,因为它们充当裂缝传播网站。然而,通过合金化改变电键合行为具有增加韧性的可能性。至于延展性,合金元素也显着影响室温塑性变形。除了非基础脱位滑动的激活之外,晶界滑动也在提高张力伸长率的伸长率方面发挥着显着作用。

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