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Hydrogen emhrittlement of austenitic steels: electron approach

机译:奥氏体钢的氢脆化:电子方法

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摘要

A review of available hypotheses for hydrogen embrittlement (HE) in its relation to austenitic steels is presented. It is shown that the hydrogen-enhanced localized plasticity theory adequately describes the features of HE. Nevertheless, being developed within the frame of continuum mechanics, it overestimates the hydrogen-induced shielding of the elastic interaction between dislocations and does not take into account the hydrogen-induced change in the electron structure of austenitic steels. Ab initio calculations and experimental studies of the electron structure show that the hydrogen in austenitic steels increases the concentration of free electrons, n_f, and the interpretation of available experimental data shows that when designing steel, alloying the steel with elements that decrease n_f improves hydrogen resistance. Experimental tests are carried out, and their results are discussed. Based on the hydrogen-increased concentration of thermodynamic equilibrium vacancies in the interstitial solid solutions, a new model for hydrogen-induced shear localization is proposed.
机译:本文介绍了有关氢脆性(HE)与奥氏体钢的关系的可用假设。结果表明,氢增强局部可塑性理论充分描述了HE的特征。然而,由于是在连续力学的框架内发展的,它高估了氢诱导的位错之间的弹性相互作用的屏蔽作用,并且没有考虑到氢诱导的奥氏体钢的电子结构变化。从头算和电子结构的实验研究表明,奥氏体钢中的氢会增加自由电子的浓度n_f,对现有实验数据的解释表明,在设计钢时,将钢与降低n_f的元素合金化会提高耐氢性。进行了实验测试,并讨论了其结果。基于间隙固溶体中热力学平衡空位的氢浓度增加,提出了一种新的氢致剪切局部化模型。

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