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Some Technology Gaps in the Detection and Prediction of Hydrogen-Induced Degradation of Metals and Alloys

机译:检测和预测金属和合金氢诱导降解中的一些技术空白

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摘要

One hundred years of study and thousands of individual investigations have led to some understanding of the deleterious effects of hydrogen on the mechanical behavior of metals and alloys. This understanding includes a technical basis to: (a) evaluate the potential for hydrogen-induced degradation through mechanistic, phenomenological, and/or empirical models of the embrittlement process(es), (b) categorize the type of damage in terms of the active or dominant degradation mechanism, (c) select materials to minimize the susceptibility to hydrogen-induced degradation, and (d) avoid the potentially adverse effects of hydrogen exposure through processing and service. The emergence of understanding has not been accompanied by the emanation of nondestructive evaluation technologies to detect the early stages of degradation. Moreover, the ability to predict the susceptibility of new engineering alloys to hydrogen embrittlement is very limited. Data and/or analyses to describe the effects of hydrogen on welds and other as-cast structures are also lacking. This paper provides a brief description of the various hydrogen embrittlement processes and discusses the technology gaps in the development of nondestructive evaluation technologies to predict and/or monitor hydrogen-induced degradation of metals and alloys.
机译:一百年来的研究和成千上万的个人研究已经使人们对氢对金属和合金的机械行为的有害影响有了一定的了解。这种理解包括以下技术基础:(a)通过脆化过程的力学,现象学和/或经验模型评估氢诱导的降解的可能性,(b)根据活性成分对损伤的类型进行分类或主要的降解机理,(c)选择材料以使对氢引起的降解的敏感性最小,并且(d)避免通过加工和使用而暴露于氢的潜在不利影响。理解的出现并没有伴随着非破坏性评估技术的出现,以检测退化的早期阶段。而且,预测新型工程合金对氢脆敏感性的能力非常有限。也缺乏描述氢对焊缝和其他铸态结构影响的数据和/或分析。本文简要介绍了各种氢脆化过程,并讨论了预测和/或监测氢诱导的金属和合金降解的无损评估技术发展中的技术空白。

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