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Effects of Texture and Triaxiality on the Plasticity of Magnesium Alloys

机译:织构和三轴性对镁合金塑性的影响

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Understanding the role of triaxiality is key in the damage evolution of engineering alloys. In low symmetry materials, e.g. magnesium, the role of triaxiality in damage evolution is complicated by the presence of protean deformation mechanisms, which exhibit high crystallographic plastic anisotropy. We present the results of detailed finite element study of smooth and notched round bar polycrystalline specimens of magnesium, subjected to quasi-static tensile loading. Initial simulated textures mimicking and deviating from typical rolled Mg sheet textures are adopted. Using three-dimensional HCP single crystal plasticity, the effect of these textural variations is highlighted. The role of out-of-plane textural variation is compared to the in-plane variation, and the analysis indicates that out-of-plane deviations in [l010] result in subtle changes to the macroscopic deformation anisotropy and the underlying microscopic deformation slip and twin activity. The role of these textures in the activation of twinning mechanisms is discussed. These results, in conjunction with our recent works, help develop a systematic understanding of the texture-triaxiality-anisotropy interaction in magnesium alloys.
机译:了解三轴性的作用是工程合金损伤演变的关键。在低对称性的材料中镁,三轴性在损伤演化中的作用由于存在蛋白质变形机制而变得复杂,该机制表现出高结晶塑性各向异性。我们介绍了在准静态拉伸载荷作用下,光滑且有缺口的镁圆棒多晶试样的详细有限元研究的结果。采用模仿和偏离典型轧制镁板纹理的初始模拟纹理。使用三维HCP单晶可塑性,突出了这些纹理变化的影响。将平面外纹理变化与平面内变化的作用进行了比较,分析表明,[l010]中的平面外偏差会导致宏观变形各向异性和潜在的微观变形滑移的细微变化。双人活动。讨论了这些纹理在孪生机制激活中的作用。这些结果,结合我们最近的工作,有助于发展对镁合金中织构-三轴性-各向异性相互作用的系统理解。

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