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A mechanistic study on the hydrogen trapping property and the subsequent electrochemical corrosion behavior of quenched and tempered steel

机译:调质钢的氢捕获性能及随后的电化学腐蚀行为的机理研究

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The hydrogen-facilitated anodic dissolution of steel is an interesting experimental phenomenon, but the persistent gaps in this knowledge area are great. The changes in the Tafel slopes and the reaction rates of steel that has been cathodically charged with hydrogen are interpreted mainly in the context of hydrogen trapping and de-trapping behaviors of steel using a variety of electrochemical methods. This study reveals that the increase in the anodic current density and the decrease in the polarization resistance are attributed primarily to the hydrogen-induced lattice expansion. Based on the Tafel-slope change, the oxidation of hydrogen cation partly contributed to the increase in the total anodic current density together with the dominant anodic reaction of the steel dissolution. The electrochemical permeation measurements showed much slower effusion kinetics of the hydrogen that has been trapped at the epsilon-carbide particles, and the trapping and de-trapping behavior at the fine particles are one of the controlling factors of the hydrogen-enhanced anodic dissolution of steel. From an engineering aspect, it is believed that the current study will provide an important insight into future perspectives on stress corrosion cracking failure occurring in various high-strength steels. (C) 2018 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:氢促进钢的阳极溶解是一个有趣的实验现象,但是在该知识领域中存在的持续差距很大。 Tafel斜率的变化和阴极上已充氢的钢的反应速率的变化主要是通过使用多种电化学方法在钢的氢俘获和去俘获行为中进行的。这项研究表明,阳极电流密度的增加和极化电阻的降低主要归因于氢诱导的晶格膨胀。基于塔菲尔斜率的变化,氢阳离子的氧化部分地促进了总阳极电流密度的增加以及钢溶解的主要阳极反应。电化学渗透测量表明,滞留在ε-碳化物颗粒上的氢的渗出动力学要慢得多,细颗粒处的俘获和去俘获行为是钢氢增强阳极溶解的控制因素之一。 。从工程学的角度来看,相信当前的研究将对各种高强度钢中发生的应力腐蚀开裂失效的未来观点提供重要的见解。 (C)2018氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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