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Investigation of Grain Refinement Mechanism of Nickel Single Crystal during High Pressure Torsion by Crystal Plasticity Modeling

机译:晶体塑性模拟研究高压扭转镍单晶细化机理。

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摘要

The excellent properties of ultra-fine grained (UFG) materials are relevant to substantial grain refinement and the corresponding induced small grains delineated by high-angle grain boundaries. The present study aims to understand the grain refinement mechanism by examining the nickel single crystal processed by high pressure torsion (HPT), a severe plastic deformation method to produce UFG materials based upon crystal plasticity finite element (CPFEM) simulations. The predicted grain maps by the developed CPFEM model are capable of capturing the prominent characteristics associated with grain refinement in HPT. The evolution of the orientation of structural elements and the rotations of crystal lattices during the HPT process of the detected differently oriented grains are extensively examined. It has been found that there are mainly two intrinsic origins of lattice rotation which cause the initial single crystal to subdivide. The correlation between the crystallographic orientation changes and lattice rotations with the grain fragmentation are analyzed and discussed in detail based on the theory of crystal plasticity.
机译:超细晶粒(UFG)材料的优异性能与大量晶粒细化以及由高角度晶界划定的相应感应小晶粒有关。本研究旨在通过检查高压扭力(HPT)处理的镍单晶来了解晶粒细化机理,高压单扭是一种基于晶体塑性有限元(CPFEM)模拟的生产UFG材料的严重塑性变形方法。通过开发的CPFEM模型预测的晶粒图能够捕获HPT中与晶粒细化相关的突出特征。广泛检查了在检测到的不同取向晶粒的HPT过程中结构元素取向的演变和晶格的旋转。已经发现,晶格旋转主要有两个内在根源,它们引起了初始单晶的细分。基于晶体可塑性理论,对晶体取向变化和晶格旋转与晶粒破碎之间的相关性进行了分析和讨论。

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