Warm forming processes have been successfully applied at laboratory level to overcome some important drawbacks of the Al-Mg alloys, such as poor formability and large springback. However, the numerical simulation of these processes requires the adoption of coupled thermo-mechanical finite element analysis, using temperature-dependent material models. The numerical description of the thermo-mechanical behaviour can require a large set of experimental tests. These experimental tests should be performed under conditions identical to the ones observed in the forming process. In this study, the warm deep drawing of a cylindrical cup is analysed, including the split-ring test to assess the temperature effect on the springback. Based on the analysis of the forming process conditions, the thermo-mechanical behaviour of the AA5086 aluminium alloy is described by a rate-independent thermo-elasto-plastic material model. The hardening law adopted is temperature-dependent while the yield function is temperature-independent. Nevertheless, the yield criterion parameters are selected based on the temperature of the heated tools. In fact, the model assumes that the temperature of the tools is uniform and constant, adopting a variable interfacial heat transfer coefficient. The accuracy of the proposed finite element model is assessed by comparing numerical and experimental results. The predicted punch force, thickness distribution and earing profile are in very good agreement with the experimental measurements, when the anisotropic behaviour of the blank is accurately described. However, this does not guarantee a correct springback prediction, which is strongly influenced by the elastic properties, namely the Young's modulus.
翻译:在实验室一级成功地应用了暖化过程,以克服Al-Mg合金的一些重要缺陷,如不易形成和大弹回弹。然而,这些过程的数值模拟需要采用温度依赖材料模型,同时进行热机械性限量元素分析。热机械行为的数字描述可能需要大量的实验性测试。这些实验性测试应当在与形成过程所观察到的相同的条件下进行。在本研究中,对圆柱形杯的温暖深度绘制进行了分析,包括用来评估回弹温度效应的分环测试。根据对形成过程条件的分析,AAA5086铝合金的热机械性作用分析需要采用温度依赖热力-机能性能物质模型。采用的硬化法是温度依赖,而产量功能则依赖温度。然而,根据加热工具温度的温度选择收益标准参数。事实上,模型假设工具的温度与回弹回温度影响。根据对形成过程条件的分析,AA5086铝合金质的热力特性分析,AA5086铝的热力-机械性动作行为分析,通过一个恒定的实验性变压性变压性变压性模型, 采用一个预测性变压性变压性变数的计算结果。在试验性变压性变压性变数的计算中,这个变压性变数的变数的变数的变数的变数,这个变数的变数的变数性变数的变数的变数性变数性变数。