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Random distributions of initial porosity trigger regular necking patterns at high strain rates

机译:初始孔隙率的随机分布会在高应变速率下触发规则的颈缩模式

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摘要

At high strain rates, the fragmentation of expanding structures of ductile materials, in general, starts by the localization of plastic deformation in multiple necks. Two distinct mechanisms have been proposed to explain multiple necking and fragmentation process in ductile materials. One view is that the necking pattern is related to the distribution of material properties and defects. The second view is that it is due to the activation of specific instability modes of the structure. Following this, we investigate the emergence of necking patterns in porous ductile bars subjected to dynamic stretching at strain rates varying from 103 s−1 to 0.5×105 s−1 using finite-element calculations and linear stability analysis. In the calculations, the initial porosity (representative of the material defects) varies randomly along the bar. The computations revealed that, while the random distribution of initial porosity triggers the necking pattern, it barely affects the average neck spacing, especially, at higher strain rates. The average neck spacings obtained from the calculations are in close agreement with the predictions of the linear stability analysis. Our results also reveal that the necking pattern does not begin when the Considère condition is reached but is significantly delayed due to the stabilizing effect of inertia.
机译:通常,在高应变率下,韧性材料膨胀结构的破碎始于多个颈部塑性变形的局部化。已经提出了两种不同的机理来解释韧性材料中的多颈缩和破碎过程。一种观点认为,颈缩图案与材料性能和缺陷的分布有关。第二种观点是这是由于结构的特定不稳定性模式的激活所致。此后,我们研究了应变速率从10 3 s -1 到0.5×10 5的动态拉伸下多孔延性棒材颈缩模式的出现 s −1 使用有限元计算和线性稳定性分析。在计算中,初始孔隙率(代表材料缺陷)沿钢筋随机变化。计算表明,尽管初始孔隙度的随机分布触发了颈缩模式,但几乎没有影响平均颈距,特别是在较高应变速率下。从计算中获得的平均颈部间距与线性稳定性分析的预测非常吻合。我们的结果还表明,在达到Considère条件时,缩颈模式不会开始,但由于惯性的稳定作用而明显延迟。

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