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Disorientations after Severe Plastic Deformation and Their Effect on Work-Hardening

机译:严重塑性变形后的迷失方向及其对工作硬化的影响

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Plastic deformation creates orientation differences in grains of originally uniform orientation. These disorientations are caused by a local excess of dislocations having the same sign of the Burgers vector. Their increase with increasing plastic strain is modeled by dislocation dynamics taking into account different storage mechanisms. The predicted average disorientation angles across different types of boundaries are in close agreement with experimental data for small and moderate plastic strains. At large plastic strains after severe plastic deformation, saturation of the measured average disorientation angle is observed. This saturation is explained as an immediate consequence of the restriction of experimentally measured disorientation angles to angles below a certain maximum value imposed by crystalline symmetry. Taking into account the restrictions from crystalline symmetry for modeled disorientation angles does not only lead to an excellent agreement with experimental findings on Ni after high pressure torsion, but also rationalizes the work-hardening behavior at large plastic strains as well as a saturation of the flow stress.
机译:塑性变形会在原本均匀的取向晶粒中产生取向差。这些定向失调是由与Burgers向量具有相同符号的局部错位引起的。考虑到不同的存储机制,通过位错动力学来模拟它们随塑性应变的增加而增加。跨不同类型边界的预测平均定向角与中小塑性应变的实验数据非常吻合。在严重的塑性变形后,在较大的塑性应变下,观察到的平均取向差角已饱和。该饱和度被解释为将实验测量的取向角限制为低于由晶体对称性强加的某个最大值的角的直接结果。考虑到结晶对称性对模型取向位错的限制,不仅使高压扭转后的镍实验结果与实验结果非常吻合,而且使大塑性应变下的加工硬化行为以及流动饱和变得合理化。强调。

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