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Research on Flow Stress of Magnesium Alloy Sheet Under Warm and High Strain Rate Forming Condition

机译:温度高应变率形成条件下镁合金板流量应力研究

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Process simulation is a powerful tool to predict material behaviors under specified deformation conditions, so as to optimize the processing parameters. The equation for flow stress is important to numerically analyze. However, the reported constitutive equations of magnesium alloy are only suitable for processing simulation with strain rate between 0.001-1s~(-1). In this paper, the strain-stress behavior of AZ31 under warm and high strain rate (>10~3s~(-1)) condition has been investigated by split Hopkinson pressure bar experiments at elevated temperature. The results show that the influence of the temperature on flow stress is more obvious than that of strain rate; the flow stress decreases with the rise of temperature at a certain strain rate. Based on Johnson-Cook model, the constitutive equation of AZ31 magnesium alloy under warm and high strain rate condition has been given out by fitting the experimental data, which can be applied in process simulation of AZ31 magnesium alloy sheet forming.
机译:过程仿真是一种强大的工具,可以在指定变形条件下预测材料行为,以便优化处理参数。流动应力的等式对于数值分析很重要。然而,报告的镁合金的本构体方程仅适用于在0.001-1s〜(-1)之间的应变率的处理模拟。本文通过升高温度下的分裂霍普金森压力条实验研究了AZ31在温度和高应变率下的应变应力行为(> 10〜3S〜(-1))条件。结果表明,温度对流量应力的影响比应变率更明显;流量应力随温度的上升以某种应变速率而降低。基于Johnson-Cook模型,通过拟合实验数据给出了温度和高应变率条件下AZ31镁合金的本构式方程,可以应用于AZ31镁合金板形成的过程模拟。

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