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Ratcheting Strain and Microstructure Evolution of AZ31B Magnesium Alloy under a Tensile-Tensile Cyclic Loading

机译:拉伸旋转循环载荷下AZ31B镁合金的棘轮应变和微观结构演化

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摘要

In this paper, studies were conducted to investigate the deformation behavior and microstructure change in a hot-rolled AZ31B magnesium alloy during a tensile-tensile cyclic loading. The relationship between ratcheting effect and microstructure change was discussed. The ratcheting effect in the material during current tensile-tensile fatigue loading exceeds the material’s fatigue limit and the development of ratcheting strain in the material experienced three stages: initial sharp increase stage (Stage I); steady stage (Stage II); and final abrupt increase stage (Stage III). Microstructure changes in Stage I and Stage II are mainly caused by activation of basal slip system. The Extra Geometrically Necessary Dislocations (GNDs) were also calculated to discuss the relationship between the dislocation caused by the basal slip system and the ratcheting strain during the cyclic loading. In Stage III, both the basal slip and the {11−20} twins are found active during the crack propagation. The fatigue crack initiation in the AZ31B magnesium alloy is found due to the basal slip and the {11−20} tensile twins.
机译:本文进行了研究,研究了在拉伸旋转循环载荷期间热轧AZ31B镁合金中的变形行为和微观结构变化。讨论了棘轮效应与微观结构变化的关系。在电流拉伸疲劳负载期间材料中的棘轮效果超过了材料的疲劳极限,并且材料中的棘轮菌株的发展经历了三个阶段:初始急剧增加阶段(阶段i);稳定阶段(第II阶段);和最终突然增加阶段(第三阶段)。阶段I和阶段II的微观结构变化主要是由基底滑移系统的激活引起的。还计算出额外的几何必要脱位(GNDS)以讨论由基底滑移系统引起的脱位与循环载荷期间的棘轮菌之间的关系。在第三阶段,在裂纹繁殖期间,基础滑移和{11-20}双胞胎被激活。由于基底滑移和{11-20}拉伸双胞胎,发现AZ31B镁合金中的疲劳裂纹引发。

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