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Elastic/crystalline viscoplastic finite element analyses of single- and poly-crystal sheet deformations and their experimental verification

机译:单晶和多晶片变形的弹性/结晶粘塑性有限元分析及其实验验证

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摘要

The elastic/crystalline viscoplastic constitutive equation, based on a newly proposed hardening-softening evolution equation, is introduced into the dynamic-explicit finite element code "Itas-Dynamic." In the softening evolution equation, the effective distance and the angle between each slip system of a crystal are introduced to elucidate the interaction between the slip systems, which causes a decrease of dislocation density. The polycrystal sheet is modeled by Voronoi polygons, which correspond to the crystal grains; and by the selected orientations, which can relate to the texture, they are assigned to the integration points of the finite elements. We propose a direct crystal orientation assignment method, which means that each integration point of finite element has an assigned orientation, and its orientation can be rotated independently. Therefore, this inhomogeneous polycrystal model can consider the plastic induced texture development and subsequent anisotropy evolution. The parameters of the constitutive equation are identified by uni-axial tension tests carried out on single crystal sheets. Numerical results obtained for sheet tensions are compared with experimental ones to confirm the validity of our finite element code. Further, we investigate the following subjects: (1) how the initial orientation of single crystal affects slip band formation and strain localization; (2) how the grain size and particular orientations of the grain affect the strain localization in case of a polycrystal sheet. It is confirmed that the orientation of a single crystal can be related to the primary slip system and the deformation induced activation of that system, which in turn can be related to the slip band formation of the single crystal sheet. Further, in case of a polycrystal sheet, the larger the grain size, the more the strain localizes at a specific crystal, which has the particular orientation. It is confirmed through comparisons with experiments that our finite element code can predict the localization of strain in sheets and consequently can estimate the formability of sheet metals. (C) 2000 Elsevier Science Ltd. All rights reserved. [References: 25]
机译:基于新提出的硬化-软化演化方程的弹性/晶体粘塑性本构方程被引入到动态显式有限元代码“ Itas-Dynamic”中。在软化演化方程中,引入了晶体每个滑移系统之间的有效距离和角度,以阐明滑移系统之间的相互作用,这导致位错密度降低。多晶体片由Voronoi多边形建模,该多边形对应于晶粒。通过与纹理相关的选定方向,将它们分配给有限元的积分点。我们提出了一种直接的晶体取向分配方法,这意味着有限元的每个积分点都有一个分配的取向,并且其取向可以独立旋转。因此,这种不均匀的多晶模型可以考虑塑性诱导的织构发展和随后的各向异性演化。本构方程的参数通过在单晶板上进行的单轴拉伸试验确定。将薄板张力的数值结果与实验结果进行比较,以确认我们有限元代码的有效性。此外,我们研究以下主题:(1)单晶的初始取向如何影响滑带形成和应变局部化; (2)在多晶片的情况下,晶粒尺寸和晶粒的特定取向如何影响应变局部化。可以确定的是,单晶的取向可以与初级滑动系统以及该系统的变形引起的激活有关,这又可以与单晶片的滑动带形成有关。此外,在多晶片的情况下,晶粒尺寸越大,应变更多地集中在具有特定取向的特定晶体上。通过与实验的比较证实,我们的有限元代码可以预测板材中的应变局部,因此可以估算板材的可成形性。 (C)2000 Elsevier ScienceLtd。保留所有权利。 [参考:25]

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