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A virtual laboratory using high resolution crystal plasticity simulations to determine the initial yield surface for sheet metal forming operations

机译:一个虚拟实验室,使用高分辨率晶体可塑性模拟来确定钣金成形操作的初始屈服面

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We present a virtual laboratory to investigate the anisotropic yield behavior of polycrystalline materials by using high resolution crystal plasticity simulations. Employing a fast spectral method solver enables us to conduct a large number of full-field virtual experiments with different stress states to accurately identify the yield surface of the probed materials. Based on the simulated yield stress points, the parameters for many commonly used yield functions are acquired simultaneously with a nonlinear least square fitting procedure. Exemplarily, the parameters of four yield functions frequently used in sheet metal forming, namely Yld91, Yld2000-2D, Yld2004-18p, and Yld2004-27p are adjusted to accurately describe the yield behavior of an AA3014 aluminum alloy at two material states, namely with a recrystallization texture and a cold rolling texture. The comparison to experimental results proves that the methodology presented, combining accuracy with efficiency, is a promising micromechanics-based tool for probing the mechanical anisotropy of polycrystalline metals and for identifying the parameters of advanced yield functions. (C) 2016 Elsevier Ltd. All rights reserved.
机译:我们提供了一个虚拟实验室,通过使用高分辨率晶体可塑性模拟来研究多晶材料的各向异性屈服行为。使用快速光谱方法求解器使我们能够进行许多具有不同应力状态的全场虚拟实验,以准确识别所探测材料的屈服面。基于模拟的屈服应力点,可以使用非线性最小二乘拟合程序同时获取许多常用屈服函数的参数。示例性地,调整了钣金成形中经常使用的四个屈服函数的参数,即Yld91,Yld2000-2D,Yld2004-18p和Yld2004-27p,以准确描述AA3014铝合金在两种材料状态下的屈服行为,即重结晶织构和冷轧织构。与实验结果的比较证明,所提出的方法结合了准确性和效率,是一种有前途的基于微力学的工具,可用于探测多晶金属的机械各向异性并确定先进的屈服函数的参数。 (C)2016 Elsevier Ltd.保留所有权利。

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