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Model of Structural Fragmentation Induced by High Pressure Torsion

机译:高压扭转引起的结构破碎模型

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The paper analyzes mechanisms of ultra-fine grain substructure formation as observed in high pressure torsion (HPT) experiments. Accepting that HPT shearing is achieved by intergranular glide (M. Hafok and R. Pippan, Scripta Materialia, 56:757-760, 2007) the fragmentation process is interpreted within the framework of crystal plasticity. The deformation is treated as a plastic flow though the adjustable crystal lattice fragmented into misoriented regions. The basic feature of the substructure formation is an effective rotation of the slip systems approaching asymptotically the observed steady state. The fragmentation is interpreted as an instability of the homogeneous deformation mode. It is proposed that the rotation causes a continuous reconstruction of the substructure pattern. The hindered destruction of the previous pattern leads to be enhanced hardening. The size of the structural elements seems to result from the competition between two tendencies: the internal and dissipative energy tend to decrease the structural size, whereas the short-range dislocation interactions oppose this tendency.
机译:本文分析了高压扭转(HPT)实验中观察到的超细晶粒亚结构的形成机理。接受HPT剪切是通过晶间滑移来实现的(M.Hafok和R.Pippan,Scripta Materialia,56:757-760,2007),在晶体可塑性的框架内解释了破碎过程。变形被视为可塑性流,通过可调节的晶格破碎成取向错误的区域。子结构形成的基本特征是滑移系统的有效旋转,渐进地接近观察到的稳态。碎片被解释为均匀变形模式的不稳定性。建议旋转引起对子结构图案的连续重建。先前图案的受破坏破坏导致增强的硬化。结构元素的大小似乎是由两种趋势之间的竞争引起的:内能和耗散能倾向于减小结构大小,而短程位错相互作用则反对这种趋势。

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