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Crystal plasticity finite-element simulation of work-hardening behavior in a magnesium alloy sheet under biaxial tension

机译:镁合金薄板双轴拉伸下加工硬化行为的晶体塑性有限元模拟

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This paper presents the prediction of the contours of plastic work for an AZ31 magnesium alloy sheet in the first quadrant of the stress space using a rate-dependent crystal plasticity finite-element method. The contour of plastic work was initially rather flat in the vicinity of equi-biaxial tension, but bulged severely thereafter. Evidently, the shapes of the contours changed as the plastic work increased, exhibiting a differential work-hardening behavior. The variation of the relative activity of each family of slip systems was examined to investigate the mechanism of the differential work-hardening behavior. During uniaxial tension, the work-hardening was determined mainly by the basal slip in the very beginning, whereas it was determined by both the prismatic and the basal slip in the subsequent deformation. On the other hand, during equi-biaxial tension, the relative activity of the prismatic slip systems was much smaller than that under uniaxial tension, whereas the relative activity of the basal slip systems played a dominant role in the work-hardening throughout the deformation. A simple analysis revealed that it was more difficult to activate the prismatic slip systems for equi-biaxial tension than uniaxial tension in rolled magnesium alloy sheets because the two biaxial stresses tended to cancel each other thus decreasing the relative activity as the biaxial stress ratio approached unity. On the other hand, the basal slip systems were much easily activated than the prismatic slip systems although their Schmid factors were small because the shear stress required for the activation of the basal slip systems was much lower than that of the prismatic slip systems. We concluded that such differences in the activities of the slip systems eventually resulted in the differential work-hardening behavior of the contour of plastic work.
机译:本文介绍了使用速率依赖型晶体塑性有限元方法对应力空间第一象限中AZ31镁合金薄板塑性加工轮廓的预测。塑性加工的轮廓最初在等双轴张力附近相当平坦,但此后急剧膨胀。显然,轮廓的形状随着塑性加工的增加而改变,表现出不同的加工硬化行为。研究了每个滑动系统系列相对活动的变化,以研究不同的加工硬化行为机理。在单轴拉伸过程中,加工硬化一开始主要由基体滑移决定,而在随后的变形中它既由棱柱滑移也由基滑移决定。另一方面,在等双轴拉力作用下,棱柱形滑移系统的相对活动比单轴拉力作用下的活动小得多,而基底滑移系统的相对活动在整个变形过程中在加工硬化中起主要作用。一个简单的分析表明,在轧制镁合金薄板中,对等双轴拉力激活棱柱滑移系统要比单轴拉力更困难,因为两个双轴应力趋于相互抵消,从而随着双轴应力比趋近于1而降低了相对活性。 。另一方面,尽管基部滑动系统的施密特因子很小,但基部滑动系统比棱柱形滑动系统更容易激活,因为激活基部滑动系统所需的剪切应力远低于棱柱形滑动系统。我们得出的结论是,滑移系统活动的这种差异最终导致了塑性加工轮廓的不同加工硬化行为。

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