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Grain size effects on the tensile properties and deformation mechanisms of a magnesium alloy, AZ31B, sheet

机译:晶粒尺寸对镁合金AZ31B板材的拉伸性能和变形机理的影响

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The grain size dependence of the tensile properties and the deformation mechanisms responsible for those properties are examined for Mg alloy, AZ31B, sheet. Specifically, the Hall-Petch effect and strain anisotropy (r-value) are characterized experimentally, and interpreted using polycrystal plasticity modeling. {10.2} extension twins, {10.1} contraction twins, and so-called "double-twins" are observed via microscopy and diffraction-based techniques, and the amount of twinning is found to increase with increasing grain size. For the sheet texture and tensile loading condition examined, {10.2} extension twinning is not expected, yet the polycrystal plasticity model predicts the observed behavior, including this 'anomalous' tensile twinning. The analysis shows that the Hall-Petch strength dependence, of the polycrystal as a whole, is primarily determined by the grain size dependence of the strength of the prismatic slip systems.
机译:对于镁合金AZ31B板材,研究了拉伸性能对晶粒尺寸的依赖性以及引起这些性能的变形机理。具体而言,通过实验表征霍尔-Petch效应和应变各向异性(r值),并使用多晶可塑性模型对其进行解释。通过显微镜和基于衍射的技术观察到{10.2}延伸孪晶,{10.1}收缩孪晶和所谓的“双孪晶”,发现孪晶的数量随晶粒尺寸的增加而增加。对于所检查的板材质地和拉伸载荷条件,预计不会出现{10.2}延伸孪晶,但是多晶可塑性模型预测了观察到的行为,包括这种“异常”拉伸孪晶。分析表明,整个多晶体的霍尔-普奇强度依赖性主要取决于棱柱滑移系统强度的晶粒尺寸依赖性。

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