首页> 外文会议>Asia-Pacific Symposium on Engineering Plasticity and Its Applications;AEPA; 20060925-29;20060925-29; Nagoya(JP);Nagoya(JP) >Molecular Dynamics Analysis on Initial Texture and Processing Route Influences on Grain Refinement Behavior of α-Fe by Equal Channel Angular Pressing
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Molecular Dynamics Analysis on Initial Texture and Processing Route Influences on Grain Refinement Behavior of α-Fe by Equal Channel Angular Pressing

机译:等通道角挤压初始结构和加工路径对α-Fe晶粒细化行为影响的分子动力学分析

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Fine-grained polycrystalline metals have a very high yield stress and excellent workability. Hence, numerous researchers are trying to develop an efficient process to obtain such materials. Our goal is to develop an efficient severe plastic deformation (SPD) process through investigating grain-refinement mechanisms in Equal Channel Angular Pressing (ECAP). In this paper, a series of molecular dynamics (MD) simulations of severe simple-shear deformations, which are ideally equivalent to SPD applied by typical ECAP processing routes, is performed using three-dimensional models that are thin and have a square shape with a periodic-boundary condition. We analyze the influences of the processing route and initial texture on the microstructural evolution. It is shown that twinning deformations are dominant under the calculated conditions, and that the structural evolution is notably affected by the relationship between the applied simple-shear direction and the characteristic crystal orientation, which can easily cause a twinning deformation. We conclude that Route A, without a rotation of the billet between processes, is the most efficient route. This is because twinning deformations along the simple-shear direction interact with the twin boundaries developed by the stress-component conjugate to the simple-shear. Furthermore, we demonstrate that the influence of the initial texture difference remains in force during multiple processes that have the same sliding plane.
机译:细粒多晶金属具有很高的屈服应力和出色的可加工性。因此,许多研究人员试图开发一种有效的方法来获得这种材料。我们的目标是通过研究等通道角挤压(ECAP)中的晶粒细化机制来开发有效的严重塑性变形(SPD)工艺。在本文中,使用薄且具有正方形,具有正方形形状的三维模型执行了一系列严重的简单剪切变形的分子动力学(MD)模拟,这些模拟理想地等效于典型ECAP处理路线所应用的SPD。周期性边界条件。我们分析了加工路线和初始织构对显微组织演变的影响。结果表明,在计算条件下孪生变形占主导地位,结构演化受到所施加的简单剪切方向与特征晶体取向之间关系的显着影响,这很容易引起孪生变形。我们得出结论,路线A在流程之间不旋转坯料的情况下,是最有效的路线。这是因为沿简单剪切方向的孪生变形与由与简单剪切共轭的应力分量所形成的孪生边界相互作用。此外,我们证明了初始纹理差异的影响在具有相同滑动平面的多个过程中仍然有效。

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