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Biaxial Tensile Deformation Behavior and Microstructural Evolutions of Superplasticity in AZ31 Magnesium Alloy

机译:AZ31镁合金中超塑性的双轴拉伸变形行为及微观结构演变

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Magnesium alloys show promise in meeting the demand for materials of lighter weight and higher rigidity. Mg alloys are hard to process and normally require grain refining for improved formability and mechanical properties. To process these fine-grained Mg alloys effectively, it is important to relate their load stress and mechanical properties to changes in their microstructures. Using a biaxial tensile machine and cruciform specimens, to evaluate the mechanical properties, microstructure, and plasticity, in a high temperature biaxial stress state, used of AZ31 Mg alloy sheet. With biaxial deformation, grain boundary slide occurred more frequently than with uniaxial deformation, causing grain boundary separation and formation of micro-voids between the grains. In the vicinity of the cracks and at the locations of grain boundary separation, although deformation temperature at higher than the recrystallization temperature, fine grains (about 2 μm) showing in duplex grain structures were formed locally. The formation of duplex grain structures as a result of local formation of fine grains during the deformation process is a major issue to be solved from the viewpoint of plasticity processing.
机译:镁合金在满足较轻的重量和更高刚性的材料需求方面表现出承诺。 Mg合金难以加工,通常需要晶粒精制,以改善可成形性和机械性能。为了有效地加工这些细粒镁合金,重要的是将其负载应力和机械性能相关,以改变它们的微观结构。使用双轴拉伸机和十字形标本,以评估使用AZ31 mg合金板的高温双轴应力状态的机械性能,微观结构和可塑性。通过双轴变形,晶界幻灯片比单轴变形更频繁地发生,导致晶粒边界分离和在谷物之间形成微空隙。在裂缝附近和晶界分离的位置,尽管变形温度高于重结晶温度,但在本地形成双相晶粒结构的细颗粒(约2μm)。在变形过程中形成了双工晶粒结构的形成是从可塑性处理的观点来解决的主要问题。

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