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Origin of micrometer-scale dislocation motion during hydrogen desorption

机译:氢解吸过程中微米级脱位运动的起源

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Hydrogen, while being a potential energy solution, creates arguably the most important embrittlement problem in high-strength metals. However, the underlying hydrogen-defect interactions leading to embrittlement are challenging to unravel. Here, we investigate an intriguing hydrogen effect to shed more light on these interactions. By designing an in situ electron channeling contrast imaging experiment of samples under no external stresses, we show that dislocations (atomic-scale line defects) can move distances reaching 1.5 μm during hydrogen desorption. Combining molecular dynamics and grand canonical Monte Carlo simulations, we reveal that grain boundary hydrogen segregation can cause the required long-range resolved shear stresses, as well as short-range atomic stress fluctuations. Thus, such segregation effects should be considered widely in hydrogen research.
机译:氢气,同时成为潜在的能源解决方案,可以说是高强度金属中最重要的脆化问题。然而,导致脆化的潜在的氢缺陷相互作用是挑战到解开。在这里,我们研究了一种有趣的氢气效应,在这些相互作用上缩小了更多的光。通过在没有外部应力下设计样品的原位电子通道对比度成像试验,我们表明位错(原子尺度线缺陷)可以在氢解吸期间移动距离达到1.5μm的距离。组合分子动力学和大规范蒙特卡罗模拟,我们揭示了晶界氢偏析会导致所需的远程分辨剪切应力,以及短程原子应力波动。因此,这种分离效应应被广泛被认为是氢研究。

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