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Hydrogen enhanced cracking studies on Fe–3wtSi single and bi-crystal microcantilevers

机译:氢增强Fe–3wt%Si单晶和双晶微悬臂梁的开裂研究

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摘要

Hydrogen (H) enhanced cracking was studied in Fe–3wt%Si by means of in situ electrochemical microcantilever bending test. It was clearly shown that the presence of H causes hydrogen embrittlement (HE) by triggering crack initiation and propagation at the notch where stress concentration is existing. Additionally, the effect of carbon content and the presence of a grain boundary (GB) in the cantilever were studied. It was shown that in the presence of H the effect of carbon atom on pinning the dislocations is reduced. On the other hand, the presence of a GB, while the chemical composition of material kept constant, will promote the HE. Crack initiation and propagation occur in the presence of H, while the notch blunting was observed for both single and bi-crystalline beams bent in air. Post-mortem analysis of the crack propagation path showed that a transition from transgranular fracture to intragranular fracture mechanism is highly dependent on the position of the stress concentration relative to the GB.This article is part of the themed issue ‘The challenges of hydrogen and metals’.
机译:通过原位电化学微悬臂梁弯曲试验研究了在Fe–3wt%Si中氢(H)增强的开裂。清楚地表明,H的存在通过在存在应力集中的缺口处触发裂纹萌生和扩展而引起氢脆(HE)。此外,研究了碳含量的影响以及悬臂中晶界(GB)的存在。结果表明,在氢的存在下,碳原子对位错钉扎的影响降低了。另一方面,GB的存在,同时材料的化学组成保持恒定,将促进HE。裂纹的萌生和扩展在H的存在下发生,而在空气中弯曲的单晶和双晶光束都观察到缺口钝化。裂纹传播路径的事后分析表明,从跨晶断裂到晶内断裂机制的转变高度依赖于应力集中相对于GB的位置。本文是主题问题“氢和金属的挑战”的一部分'。

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