首页> 外文期刊>International Journal of Modern Physics: Conference Series >MICROSTRUCTURAL EVOLUTION OF AZ31 MAGNESIUM ALLOY PROCESSED BY A NEW NOBLE SEVERE PLASTIC DEFORMATION METHOD
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MICROSTRUCTURAL EVOLUTION OF AZ31 MAGNESIUM ALLOY PROCESSED BY A NEW NOBLE SEVERE PLASTIC DEFORMATION METHOD

机译:一种新的贵贵塑性变形法加工AZ31镁合金的微观结构演化

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A new noble severe plastic deformation method, called accumulative back extrusion (ABE), was developed to assist generating ultra fine grain materials. In the present work the ABE process was successfully applied on AZ31 magnesium alloy up to three passes without any danger of cracks. The results showed that a large shear deformation may introduce through step one, where extensive shear banding and twinning are present in the microstructure. As the second step proceeds via constrained compressive deformation, more deformation inhomogenieties, which may act as preferred nucleation sites for new grains, were introduced in the microstructure. By increasing the number of passes to 3, more homogeneous microstructure with no significant smaller grain size was formed. The strain induced twinning and strain localization, which were led to occurrence of dynamic recrystallization (DRX), were found to be the main reasons of grain refinement during ABE process.
机译:开发了一种新的高贵严重塑性变形方法,称为累积背挤出(ABE),以帮助产生超细晶粒材料。在本工作中,ABE方法在AZ31镁合金上成功应用,直到三次通过,没有任何裂缝的危险。结果表明,大的剪切变形可以通过步骤1引入,其中微结构中存在广泛的剪切带和孪晶。由于第二步通过受约束的压缩变形进行,在微观结构中引入了更加变形的非变形少种,其可以作为新颗粒的优选成核位点。通过增加通过的通过的次数,形成没有明显较小的晶粒尺寸的更均匀的微观结构。发现诱导的孪生和应变定位,其导致动态再结晶(DRX)的发生,是在ABE过程中细化的主要原因。

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