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A cross-shear deformation for optimizing the strength and ductility of AZ31 magnesium alloys

机译:交叉剪切变形可优化AZ31镁合金的强度和延展性

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摘要

Magnesium alloys have recently attracted great interest due their lightweight and high specific strength. However, because of their hexagonal close-packed structure, they have few active slip systems, resulting in poor ductility and high mechanical anisotropy at room temperature. In the present work, we used a cross-shear deformation imposed by a differential speed rolling (DSR) technique to improve the room temperature strength and ductility of AZ31 magnesium alloy sheets. To introduce the cross-shear deformation, the sheets were rotated 180° around their longitudinal axis between the adjacent passes of DSR. The sheets of the AZ31 alloy subjected to the cross-shear deformation showed a uniform fine microstructure (1.2 ± 0.1 μm) with weak basal textures. The fabricated sheets showed a simultaneous high ultimate tensile strength and elongation-to-failure, i.e., ~333 MPa and ~21%, respectively. These were explained based on the structural features evolved due to the cross-shear deformation by DSR. The high strength was attributed to the uniform fine microstructure, whereas the high ductility was explained based on the basal texture weakening.
机译:镁合金由于其轻质和高比强度而引起了人们的极大兴趣。但是,由于它们的六方密排结构,它们几乎没有活动滑移系统,导致在室温下延展性差和机械各向异性高。在当前的工作中,我们使用了由差速轧制(DSR)技术施加的交叉剪切变形来提高AZ31镁合金板材的室温强度和延展性。为了引入交叉剪切变形,在DSR的相邻通道之间,将薄板绕其纵轴旋转180°。经过交叉剪切变形的AZ31合金薄板显示出均匀的细微组织(1.2±0.1μm),且基体组织较弱。制成的片材同时显示出高的极限抗拉强度和断裂伸长率,即分别为〜333 MPa和〜21%。这些是根据由于DSR的交叉剪切变形而演变而来的结构特征来解释的。高强度归因于均匀的细微组织,而高延展性则是基于基础纹理的弱化来解释的。

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