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首页> 外文期刊>International journal of hydrogen energy >Hydrogen migration and hydrogen-dislocation interaction in austenitic steels and titanium alloy in relation to hydrogen embrittlement
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Hydrogen migration and hydrogen-dislocation interaction in austenitic steels and titanium alloy in relation to hydrogen embrittlement

机译:奥氏体钢和钛合金中的氢迁移和氢位错相互作用与氢脆化的关系

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摘要

CrNi austenitic steels and titanium alloy Ti-10V-2Fe-3Al are studied aiming to clarify a reason for difference between two classes of engineering materials in their sensitivity to hydrogen brittleness. Using ab initio calculations, it is found that hydrogen increases density of electron states at the Fermi level in both materials except for its decrease in the titanium alloy at extremely high hydrogen contents. Migration of hydrogen atoms and their interaction with dislocations are studied using mechanical spectroscopy. The enthalpies of hydrogen atoms migration and their binding to dislocations, as well as temperature for condensation of hydrogen clouds around dislocations, are shown to be significantly larger in austenitic steels in comparison with the beta titanium alloy. This is a reason for lower temperature range of hydrogen embrittlement in the titanium alloys. The different hydrogen effect in the studied materials and usage of hydrogen as temporary alloying element increasing plasticity of titanium alloys in the course of their processing are interpreted within the frame of HELP theory. (C) 2016 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:研究了CrNi奥氏体钢和钛合金Ti-10V-2Fe-3Al,以阐明两类工程材料对氢脆性的敏感性差异的原因。使用从头算计算,发现氢在两种材料中均能在费米能级上提高电子态密度,但在极高氢含量下钛合金中的氢能降低。使用机械光谱学研究了氢原子的迁移及其与位错的相互作用。与β钛合金相比,在奥氏体钢中,氢原子迁移的焓及其与位错的结合以及位错周围的氢云凝结的温度明显更高。这是钛合金中氢脆的温度范围较低的原因。在HELP理论的框架内,解释了所研究材料中不同的氢效应以及氢作为临时合金元素的使用在钛合金加工过程中增加了可塑性。 (C)2016氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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