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Simulating hydrogen in fcc materials with discrete dislocation plasticity

机译:采用离散位错可塑性模拟FCC材料中的氢气

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We have performed discrete dislocation plasticity simulations of hydrogen charged microcantilever bend tests on an fcc material at realistic hydrogen concentrations. This was achieved by accounting for the near-core solute-solute interactions which was found to reduce the dislocation nucleation time and stress. Dislocation pile-ups were observed at the neutral mid plane of the cantilever, and hydrogen was found to increase the number of dislocations in the pile-ups. Meanwhile, hydrogen was observed to decrease the flow stress due to the reduced dislocation core force. This was in contrast to the first-order hydrogen elastic shielding mechanism which was found to be negligible at realistic concentrations. Local stress elevation was observed in the presence of hydrogen in simulations which included an obstacle close to the free surface of the microcantilever, indicating how hydrogen might induce premature stress controlled failure. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:我们在现实氢浓度下对FCC材料进行了离散位错塑性模拟氢气电压弯曲试验。这是通过算用于近核溶质溶质相互作用来实现的,该相互作用是减少脱位成核时间和压力的溶性相互作用。在悬臂的中性中间平面观察到位错堆积,发现氢气增加堆积中的脱位数。同时,观察到氢以降低由于减小的脱位核心力而降低流量应力。这与一阶氢弹性屏蔽机构相反,发现在现实浓度下可以忽略不计。在氢气存在下观察到局部应力升高在模拟中,其中包括靠近微导流器的自由表面的障碍物,表明氢气如何诱导过早应力控制失效。 (c)2020氢能源出版物LLC。 elsevier有限公司出版。保留所有权利。

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