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Crystallographic character of grain boundaries resistant to hydrogen-assisted fracture in Ni-base alloy 725

机译:镍基合金725耐氢断裂的晶界的晶体学特征

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Hydrogen embrittlement (HE) causes sudden, costly failures of metal components across a wide range of industries. Yet, despite over a century of research, the physical mechanisms of HE are too poorly understood to predict HE-induced failures with confidence. We use non-destructive, synchrotron-based techniques to investigate the relationship between the crystallographic character of grain boundaries and their susceptibility to hydrogen-assisted fracture in a nickel superalloy. Our data lead us to identify a class of grain boundaries with striking resistance to hydrogen-assisted crack propagation: boundaries with low-index planes (BLIPs). BLIPs are boundaries where at least one of the neighboring grains has a low Miller index facet—{001}, {011}, or {111}—along the grain boundary plane. These boundaries deflect propagating cracks, toughening the material and improving its HE resistance. Our finding paves the way to improved predictions of HE based on the density and distribution of BLIPs in metal microstructures.
机译:氢脆(HE)会导致各行各业的金属零件突然损坏,代价高昂。然而,尽管进行了一个多世纪的研究,但对HE的物理机制了解甚少,无法自信地预测HE引起的故障。我们使用基于同步加速器的无损技术研究了镍合金中晶界的结晶学特征与其对氢辅助断裂的敏感性之间的关系。我们的数据使我们确定了对氢辅助裂纹扩展具有显着抵抗力的一类晶界:具有低折射率平面(BLIP)的晶界。 BLIP是边界,其中至少一个相邻的晶粒沿晶粒边界平面具有较低的米勒指数面-{001},{011}或{111}。这些边界使扩展的裂纹偏转,使材料增韧并提高其耐高温性能。我们的发现为基于金属微结构中BLIP的密度和分布改进HE的预测铺平了道路。

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