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ROLE OF DEFECT INTERACTIONS DURING HYDROGEN EMBRITTLEMENT IN IRON: A MULTISCALE PERSPECTIVE

机译:氢相互作用在铁中缺陷相互作用的作用:多尺度视角

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摘要

Hydrogen embrittlement (HE) is a phenomenon that affects both the physical and chemical properties of several intrinsically ductile metals. Consequently, understanding the mechanisms behind HE has been of particular interest in both experimental and modeling research. Discrepancies between experimental observations and modeling results have led to various proposals for HE mechanisms. Therefore, in this work we systematically examined the effect of hydrogen on two fundamental HE mechanisms in iron, namely, adsorption induced dislocation emission (AIDE) and hydrogen-enhanced decohesion (HED). In this work, we used density functional theory, atomistic simulations, and continuum Rice-Thompson criterion to systematically investigate: a) the incipient event ahead of a crack tip in single crystals subjected to mode-l loading conditions; b) the cohesive strength of grain boundaries; and c) the energy barrier for a slip transmission across the grain boundary. We observed that the presence of hydrogen 1) reduces the stress intensity factor required for both the dislocation nucleation and the cleavage response for different crack orientations, and 2) increases the energy barrier for slip transmission. Most importantly it was found that the AIDE and HED mechanisms are acting together to cause HE.
机译:氢脆(HE)是一种现象,会同时影响几种固有韧性金属的物理和化学性质。因此,在实验和模型研究中,对HE背后的机理的理解尤为重要。实验观察结果与建模结果之间的差异导致了针对HE机制的各种建议。因此,在这项工作中,我们系统地研究了氢对铁中两个基本HE机理的影响,即吸附诱导位错发射(AIDE)和氢增强解聚(HED)。在这项工作中,我们使用密度泛函理论,原子模拟和连续的莱斯-汤普森准则来系统地研究:a)处于模式l加载条件下的单晶裂纹尖端之前的初期事件; b)晶界的内聚强度; c)穿过晶界滑动传递的能垒。我们观察到氢的存在1)降低了位错成核和不同裂纹取向的劈裂响应所需的应力强度因子,并且2)增加了滑动传递的能垒。最重要的是,发现AIDE和HED机制共同作用导致HE。

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