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Modelling direction-dependent hardening in magnesium sheet forming simulations

机译:在镁薄板成形模拟中建模与方向有关的硬化

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摘要

In this work, a model capturing anisotropic hardening during plastic deformation under monotonic loading is proposed. For this purpose, the anisotropic plastic potential coefficients are assumed to be functions of a measure of the accumulated plastic strain. This model is applied to describe the plastic behavior of a magnesium alloy (ZM21) sheet at room temperature. The selected plastic potential accounts for the main features of Mg alloy plasticity, i.e., anisotropy and strength-differential (SD) effects. All the accumulated plastic strain dependent coefficients of the phenomenological model are determined from input data generated with a crystal plasticity approach. They are optimized to best capture the accumulated strain dependent potentials computed with crystal plasticity. The R-value (Lankford coefficient) anisotropy is used as an independent measure for the assessment of the approximation quality. This model is implemented into a finite element (FE) code and successfully validated through the numerical simulations of the cup drawing test. The calculated earing profile obtained with the proposed hardening model is compared to results assuming isotropic hardening for various plausible shapes of the plastic potential. Although the ear and valley numbers and positions are similar in all cases, the height differences between peaks and valleys are strongly dependent on the type of constitutive approach used in the simulation.
机译:在这项工作中,提出了一个捕获单调载荷下塑性变形过程中各向异性硬化的模型。为此,各向异性塑性势系数被假定为累积塑性应变的量度的函数。该模型用于描述室温下镁合金(ZM21)板材的塑性行为。选定的塑性势是镁合金塑性的主要特征,即各向异性和强度差(SD)效应。现象学模型的所有累积的与塑性应变相关的系数均由使用晶体可塑性方法生成的输入数据确定。它们经过了优化,可以最佳地捕获通过晶体可塑性计算出的累积应变相关电势。 R值(兰克福德系数)各向异性被用作评估近似质量的独立度量。该模型被实现为有限元(FE)代码,并通过杯子拉伸试验的数值模拟成功地进行了验证。将使用建议的硬化模型获得的计算的耳廓轮廓与假设塑性势的各种可能形状的各向同性硬化的结果进行比较。尽管在所有情况下耳和谷的数量和位置都相似,但峰和谷之间的高度差在很大程度上取决于模拟中使用的本构方法的类型。

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