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Cyclic stress and strain responses of AZ31 magnesium alloy sheet metal at elevated temperatures

机译:高温下AZ31镁合金板材的循环应力和应变响应

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Lightweight materials have been widely and increasingly utilized for the automotive industry to reduce the carbon dioxide (CO2) emissions. To replace the existing ordinary steels, the automotive companies have been investigated the other materials to satisfy the specific strength, stiffness and recyclability. Under these circumstances, some researchers have been paying attention to the magnesium alloy sheets. Although the material have low ductility at room temperature due to small number of slip systems, it is the well-known fact that the formability at the elevated temperatures around 200 oC is drastically improved. In these days, the local heating techniques have been applied to the press forming systems in order to realize the power saving manufacturing systems in spite of the existing systems. Although the warm stamping has some great advantages to improve the formability, the prediction of the deformed sheet metal is not always enough accurate. In order to investigate the stress strain responses for the material at the elevated temperatures, a testing device which can observe the cyclic stress strain responses was developed in the present research. The magnesium alloy sheets were warmed at around 200 oC to reduce the critical resolved shear stress of slip systems and improved its deformability. The corresponding stress strain responses by finite element method based on the crystal plasticity were calculated. It was found that the calculations could capture the above-mentioned features very well.
机译:轻质材料已被广泛使用,并越来越多地用于汽车工业,以减少二氧化碳(CO2)的排放。为了替代现有的普通钢,汽车公司已经对其他材料进行了研究,以满足特定的强度,刚度和可回收性。在这种情况下,一些研究人员一直在关注镁合金薄板。尽管由于滑动系统的数量少,该材料在室温下的延展性较低,但众所周知的事实是,在200 oC左右的高温下,可成形性得到了显着改善。如今,尽管已有系统,但局部加热技术已应用于冲压成型系统,以实现节能的制造系统。尽管热冲压在改善可成形性方面具有一些巨大优势,但变形钣金的预测并不总是足够准确。为了研究材料在高温下的应力应变响应,本研究开发了一种可以观察循环应力应变响应的测试装置。将镁合金板加热到200 oC左右,以减少滑移系统的临界分辨剪切应力并提高其变形能力。利用有限元方法,根据晶体塑性计算了相应的应力应变响应。发现该计算可以很好地捕获上述特征。

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