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Hydrogen embrittlement of single-phase strain-hardened nickel-based UNS N08830 alloy

机译:单相菌株硬化镍的非NO8830合金氢脆

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This work evaluated the hydrogen embrittlement resistance of the nickel-based UNS N08830 alloy through a hydrogen charging study, slow strain rate (SSR), and fracture toughness tests. The microstructure evaluation showed large-size austenitic grains with no evidence of second phase precipitation, a high fraction of low-angle grain boundaries, and texture of {100} and {111} planes in the rolling direction. From SSR tests results, strain to fracture and reduction of area embrittlement indexes of 25.3 and 42.1% were found, respectively. A modest drop in fracture toughness of approximately 20% was observed. From fractography, it was observed a prevailing mixed micromechanism of fracture comprised of microvoids coalescence and quasi-cleavage flat facets in secondary cracks aligned with the rolling direction. The quasi-cleavage flat facets showed nanovoids at the slip line intersections, which in turn confirmed Hydrogen-Enhanced Localized Plasticity (HELP) as the prominent embrittlement mechanism. Because of the material's crystallographic texture, a good part of hydrogen was not transported to a direction normal to the applied stress as it would happen for pure diffusion but instead followed the dislocations in the rolling direction. That effect caused that less hydrogen was concentrated in the main crack tip, which inevitably increased the overall energy for fracture.
机译:这项工作通过氢气收集研究,慢应变率(SSR)和断裂韧性试验评估了基于镍的非NO8830合金的氢脆性抗性。微观结构评估显示大尺寸的奥氏体晶粒,没有证据表明第二相沉淀,高分数的低角度晶界,以及滚动方向上的{100}和{111}平面的纹理。从SSR测试结果中,分别发现裂缝和降低25.3和42.1%的面积脆性指标的菌株。观察到骨折韧性的温度下降约2​​0%。从断片中,观察到由横向对准的次裂纹组成的骨折和准切割扁平平面的骨折的常规混合微机器。准切割的扁平平面在滑线交叉点处显示纳米型,这反过来证实了氢增强的局部塑性(帮助)作为突出的脆化机制。由于材料的晶体纹理,氢的良好部分未被运输到正常的方向上,因为它将发生纯扩散,而是在滚动方向上沿脱位遵循脱位。这种效果导致较少的氢气浓缩在主裂纹尖端,这不可避免地增加了骨折的整体能量。

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