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Modeling texture evolution in equal channel angular extrusion using crystal plasticity finite element models

机译:使用晶体可塑性有限元模型对等通道角挤压中的纹理演化进行建模

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摘要

A new approach to modeling crystallographic texture evolution in Equal Channel Angular Extrusion (ECAE) is presented in this paper. The proposed approach utilizes an elastic-viscoplastic single crystal constitutive model implemented in a finite element framework. A representative volume element of the polycrystal is subjected to boundary conditions that simulate the approximate deformation history experienced by different regions of the sample (at different through-thickness depths) in both Route A and Route C processing. The proposed approach aims to capture the influence of the complex interactions that ensue among the constituent individual crystals of a polycrystal in controlling the texture evolution in the sample, while capturing the boundary conditions inherent to ECAE deformation. The predictions from the proposed approach are compared against previously reported experimental measurements in ECAE of copper. It is observed that the proposed approach provides significantly better agreement with the measurements when compared against previously reported model predictions.
机译:本文提出了一种在等通道角挤压(ECAE)中建模晶体织构演化的新方法。所提出的方法利用在有限元框架中实现的弹性-粘塑性单晶本构模型。多晶的代表性体积元素要经受边界条件,该边界条件模拟在路径A和路径C处理中样品的不同区域(在不同的贯穿厚度深度)经历的近似变形历史。所提出的方法旨在捕获在控制样品中的纹理演变时,多晶的各个组成晶体之间发生的复杂相互作用的影响,同时捕获ECAE变形固有的边界条件。来自提议的方法的预测与先前报道的铜的ECAE中的实验测量值进行了比较。可以观察到,与先前报告的模型预测相比,所提出的方法与测量结果具有更好的一致性。

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