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Prediction Charpy impact energy of bcc and fcc functionally graded steels in crack divider configuration by strain gradient plasticity theory

机译:基于应变梯度可塑性理论预测裂纹分配器中bcc和fcc功能梯度钢的夏比冲击能

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In the present study, the Charpy impact energy of bcc ferritic and fcc austenitic functionally graded steels produced by electroslag remelting process has been investigated. To produce functionally graded steels, an electrode consists of two different spot welded slices from plain carbon and austenitic stainless steels were utilized. Functionally graded steel containing graded layers of ferrite or austenite may be fabricated via diffusion of alloying elements during remelting stage. Charpy impact energy of the specimens has been obtained experimentally in crack divider configuration and modeled with mechanism-based strain gradient plasticity theory. In this regard, the density of the statistically stored dislocations and that of geometrically necessary dislocations was related to the Vickers hardness of each layer. Afterwards, the predicted Vickers hardness of each layer was related to its Charpy impact energy. Finally, Charpy impact energy of each specimen was calculated by using the rule of mixtures. The predicted Charpy impact energies are in good agreement with those obtained from the experiments.
机译:在本研究中,已经研究了通过电渣重熔工艺生产的bcc铁素体和fcc奥氏体功能梯度钢的夏比冲击能。为了生产功能梯度钢,使用了由两种不同的由普通碳和奥氏体不锈钢制成的点焊焊条组成的焊条。可以在重熔阶段通过合金元素的扩散来制造包含梯度铁素体或奥氏体层的功能梯度钢。实验获得了夏比冲击能在裂纹分配器结构中的实验结果,并利用基于机理的应变梯度可塑性理论进行了建模。在这方面,统计存储的位错的密度和几何上必要的位错的密度与每一层的维氏硬度有关。之后,每层的维氏硬度预测值与其夏比冲击能有关。最后,利用混合法则计算出每个试样的夏比冲击能。预测的夏比冲击能与从实验中获得的能量非常吻合。

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