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Forming limit strains for non-linear strain path of AA6014 aluminium sheet deformed at room temperature

机译:AA6014铝板的非线性应变路径形成限位菌株在室温下变形

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Forming limit strain curves of conventional aluminium alloy AA6014 sheets after loading with non-linear strain paths are presented and compared with D-Bressan macroscopic model of sheet metal rupture by critical shear stress criterion. AA6014 exhibits good formability at room temperature and, thus, is mainly employed in car body external parts by manufacturing at room temperature. According to Weber et al., experimental bi-linear strain paths were carried out in specimens with 1mm thickness by pre-stretching in uniaxial and biaxial directions up to 5%, 10% and 20% strain levels before performing Nakajima testing experiments to obtain the forming limit strain curves, FLCs. In addition, FLCs of AA6014 were predicted by employing D-Bressan critical shear stress criterion for bi-linear strain path and comparisons with the experimental FLCs were analyzed and discussed. In order to obtain the material coefficients of plastic anisotropy, strain and strain rate hardening behavior and calibrate the D-Bressan model, tensile tests, two different strain rate on specimens cut at 0°, 45° and 90° to the rolling direction and also bulge test were carried out at room temperature. The correlation of experimental bi-linear strain path FLCs is reasonably good with the predicted limit strains from D-Bressan model, assuming equivalent pre-strain calculated by Hill 1979 yield criterion.
机译:通过临界剪切应力标准呈现并将常规铝合金AA6014纸张形成常规铝合金AA6014纸张的限位应变曲线。通过临界剪切应力标准,金属板破裂的D-Bressan Macroscopic模型。 AA6014在室温下表现出良好的成形性,因此,在室温下制造,主要用于汽车身体外部部件。根据Weber等人。,通过在执行Nakajima测试实验中的单轴和双轴方向上预拉伸,在厚度为1mm厚度的标本中进行实验性双线性应变路径,在执行Nakajima测试实验之前,在高达5%,10%和20%的应变水平。形成极限应变曲线,FLC。另外,通过采用D-Bressan临界剪切应力标准来预测AA6014的FLC,用于双线性应变路径和与实验FLC的比较进行了分析和讨论。为了获得塑性各向异性,应变和应变速率硬化行为的材料系数,并校准D-Bressan模型,拉伸试验,在0°,45°和90°切割的试样上的两种不同的应变率,以及滚动方向凸起测试在室温下进行。实验性双线性应变路径FLC的相关性具有来自D-Bressan模型的预测极限菌株,假设由Hill 1979屈服标准计算的等效预致菌株。

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