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Experiments and Modeling of Fatigue Damage in Extruded Mg AZ61 Alloy

机译:挤压镁AZ61合金疲劳损伤的实验与建模

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In this study, structure-property relations with respect to fatigue of an extruded AZ61 magnesium alloy were experimentally quantified. Strain-life experiments were conducted in the extruded and transverse orientations under low and high cycle conditions. The cyclic behavior of this alloy displayed varying degrees of cyclic hardening depending on the strain amplitude and the specimen orientation. The fracture surfaces of the fatigued specimens were analyzed using a scanning electron microscope in order to quantify structure-property relations with respect to number of cycles to failure. Intermetallic particles were found to be the source of fatigue initiation on a majority of fracture surfaces. Finally, a multistage fatigue model based on the relative micro structural sensitive features quantified in this study was employed to capture the anisotropic fatigue damage of the AZ61 magnesium alloy.
机译:在这项研究中,通过实验量化了与挤压的AZ61镁合金的疲劳有关的结构特性关系。在低和高循环条件下,在挤压方向和横向方向上进行了应变寿命实验。这种合金的循环行为表现出不同的循环硬化程度,具体取决于应变幅度和样品取向。使用扫描电子显微镜分析疲劳试样的断裂表面,以便量化与失效循环数有关的结构特性关系。发现金属间颗粒是大多数断裂表面上引发疲劳的根源。最后,基于本研究中量化的相对微观结构敏感特征的多阶段疲劳模型被用于捕获AZ61镁合金的各向异性疲劳损伤。

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