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The dual role of coherent twin boundaries in hydrogen embrittlement

机译:相干孪晶界在氢脆中的双重作用

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Hydrogen embrittlement (HE) causes engineering alloys to fracture unexpectedly, often at considerable economic or environmental cost. Inaccurate predictions of component lifetimes arise from inadequate understanding of how alloy microstructure affects HE. Here we investigate hydrogen-assisted fracture of a Ni-base superalloy and identify coherent twin boundaries (CTBs) as the microstructural features most susceptible to crack initiation. This is a surprising result considering the renowned beneficial effect of CTBs on mechanical strength and corrosion resistance of many engineering alloys. Remarkably, we also find that CTBs are resistant to crack propagation, implying that hydrogen-assisted crack initiation and propagation are governed by distinct physical mechanisms in Ni-base alloys. This finding motivates a re-evaluation of current lifetime models in light of the dual role of CTBs. It also indicates new paths to designing materials with HE-resistant microstructures.
机译:氢脆(HE)会导致工程合金意外断裂,通常会产生相当大的经济或环境成本。由于对合金微观结构如何影响HE的理解不足,因此无法预测组件的寿命。在这里,我们研究镍基高温合金的氢辅助断裂,并将相干孪晶界(CTB)识别为最容易产生裂纹的微观结构特征。考虑到CTB对许多工程合金的机械强度和耐蚀性具有著名的有益作用,这是一个令人惊讶的结果。值得注意的是,我们还发现CTB能够抵抗裂纹扩展,这意味着氢辅助裂纹的萌生和扩展受镍基合金中独特的物理机制支配。鉴于CTB的双重作用,这一发现激发了对当前寿命模型的重新评估。这也标志着设计具有耐HE微观结构的材料的新途径。

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