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Numerical simulation of sheet metal forming using anisotropic strain-rate potentials

机译:各向异性应变率势对板料成形的数值模拟

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For numerical simulation of sheet metal forming, more and more advanced phenomenological functions are used to model the anisotropic yielding. The latter can be described by an adjustment of the coefficients of the yield function or the strain-rate potential to the polycrystalline yield surface determined using crystal plasticity and X-ray measurements. Several strain-rate potentials were examined by the present authors and compared in order to analyze their ability to model the anisotropic behavior of materials using the methods described above to determine the material parameters. Following that, a specific elastic-plastic time integration scheme was developed and the strain-rate potentials were implemented in the FE code. Comparison of the previously investigated potentials is continued in this paper in terms of numerical predictions of cup drawing, for different b.c.c. and f.c.c. materials. The identification procedure is shown to have an important impact on the accuracy of the FE predictions.
机译:对于钣金成形的数值模拟,越来越多的高级现象学函数用于建模各向异性屈服。后者可以通过调整屈服函数的系数或使用晶体可塑性和X射线测量确定的对多晶屈服面的应变率电势来描述。本作者检查并比较了几种应变率电势,以便分析它们使用上述方法确定材料参数对材料的各向异性行为建模的能力。随后,开发了一种特定的弹塑性时间积分方案,并在FE代码中实现了应变率电势。本文针对不同的不列颠哥伦比亚省,根据杯形图的数值预测继续对先前研究的潜力进行比较。和f.c.c.材料。结果表明,识别程序对有限元预测的准确性有重要影响。

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