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MODELING OF DYNAMIC GROWTH OF A MICRO-SCALED VOID BASED ON STRAIN GRADIENT ELASTO-PLASTICITY

机译:基于应变梯度弹性可塑性的微观空隙动态生长的建模

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摘要

Void initiation and growth serve as an important mechanism in ductile failures in metals. Particularly, on the micron-level, the extra hardening effect associated with strain gradient is accounted for by adopting strain gradient elasto-plasticity instead of the conventional plasticity. Effects of inertial, strain gradient hardening and thermal softening are formulated analytically for the case where a spherical void expands under external hydrostatic stress. As demonstrated by our results, the inertia effect firstly tends to hinder but then promotes the void growth. The threshold stress required for rapid void growth is lifted due to extra hardening of strain gradient so that the growth of a smaller void is delayed more remarkably. A considerable thermal softening phenomenon is observed here, which is caused by plastic work during the deformation process. The final void growth rate is mainly related to the maximum loading, which is consistent with the prediction based on the classical plastic theory.
机译:空隙引发和增长是金属韧性失败中的重要机制。特别是,在微米水平上,通过采用应变梯度弹性塑性而不是传统的可塑性来占与应变梯度相关的额外硬化效果。分析惯性,应变梯度硬化和热软化的影响,用于在外部静压应力下膨胀的球形空隙膨胀的情况下配制。正如我们的结果所证明的那样,惯性效应首先趋于阻碍,但随后促进无效生长。由于应变梯度的额外硬化,提升了快速空隙生长所需的阈值应力,使得更小的空隙的生长更显着。这里观察到具有相当大的热软化现象,这是由变形过程中的塑料工作引起的。最终的空隙生长速率主要与最大负载相关,这与基于古典塑料理论的预测一致。

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