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Prediction of flow stress and textures of AZ31 magnesium alloy at elevated temperature

机译:高温下AZ31镁合金的流变应力和织构预测

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The viscoplastic behaviour of magnesium alloys at high temperatures leads to highly temperature-dependent mechanical properties. While at high strain rates a notable strain hardening response is observed, at low strain rates the material shows a smooth plastic response with negligible amount of hardening. This complicated behaviour is due to different deformation mechanisms that are active at different strain rate regimes, resulting in different strain rate sensitivity parameters. In this study we show, by utilizing both numerical simulations and experiments, that this behaviour can be predicted by a model that combines two deformation mechanisms, grain boundary sliding mechanism and dislocation glide mechanism. We discuss the importance of each deformation mechanism at different strain rate regimes based on the findings of modelling and experimental results for AZ3 magnesium alloy. By developing a model that includes the above-mentioned two deformation mechanism, the prediction of flow properties is expanded to a wide range of strain rate regimes compared to previous study. The obtained numerical findings for the stress-strain behaviour as well as texture evolution show good agreement with the experimental results.
机译:镁合金在高温下的粘塑性行为导致高度依赖于温度的机械性能。虽然在高应变速率下观察到显着的应变硬化响应,但在低应变速率下,材料显示出平滑的塑性响应,而硬化量可忽略不计。这种复杂的行为是由于不同的变形机制在不同的应变率范围内起作用,导致了不同的应变率敏感性参数。在这项研究中,我们通过数值模拟和实验表明,可以通过结合两种变形机制(晶界滑动机制和位错滑动机制)的模型来预测这种行为。我们基于AZ3镁合金的建模结果和实验结果,讨论了在不同应变率范围内每种变形机制的重要性。通过开发一个包含上述两种变形机制的模型,与以前的研究相比,对流动特性的预测扩展到了很大的应变率范围。所得的应力-应变行为以及织构演变的数值结果与实验结果吻合良好。

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