Impact of the Delay Period between Electrochemical Hydrogen Charging and Tensile Testing on the Mechanical Properties of Mild Steel

Igor A. Chaves, Peter J. Richardson, Sam Lynch, Jessica A. Allen
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Abstract

With escalating global regulatory pressure for countries to adhere to emission laws, repurposing existing natural gas pipelines for hydrogen-based commodities stands to be an economical solution. However, the effects of hydrogen embrittlement must be thoroughly considered for this application to avoid the unexpected catastrophic failure of these pipelines. The literature proposes several physicochemical embrittlement models. This paper reports one aspect of hydrogen embrittlement that remains to be quantified: the recovery of ductility (embrittlement) of mild steel specimens subjected to artificially accelerated hydrogen absorption via electrochemical charging as a function of time. The effects of charging duration and particularly the delay period between charging and mechanical tensile testing were investigated. Unsurprisingly, longer charging time shows a greater loss of elongation; however, a more extensive recovery of ductility correlated with longer charging time in the first few days after charging. The data also show that while the uncharged mild steel met all minimum required values for strength and elongation for the specified grade, there was a substantial variability in the elongation to failure. The same trends in variability of elongation translated to the hydrogen-charged specimens. Due to this extensive variability, failure to meet the elongation specification of the grade is reported based on the worst-case scenario obtained for a given set of samples for each exposure condition. These results have practical implications for the monitoring and testing of infrastructure exposed to hydrogen, particularly as this relates to industry planned operational shutdown schedules.
电化学充氢和拉伸测试之间的延迟期对低碳钢机械性能的影响
随着各国遵守排放法规的全球监管压力不断增加,将现有天然气管道重新用于氢基商品是一种经济的解决方案。然而,在这种应用中必须全面考虑氢脆的影响,以避免这些管道发生意想不到的灾难性故障。文献中提出了几种物理化学脆化模型。本文报告了氢脆的一个尚待量化的方面:通过电化学充电人为加速氢吸收的低碳钢试样的延展性恢复(脆化)与时间的函数关系。研究了充电持续时间的影响,特别是充电和机械拉伸测试之间的延迟时间。不出所料,充电时间越长,伸长率损失越大;然而,在充电后的头几天,延展性的恢复与充电时间越长越相关。数据还显示,虽然未加料低碳钢的强度和伸长率达到了指定等级的所有最低要求值,但失效伸长率的变化很大。伸长率的变化趋势与充氢试样相同。由于这种广泛的变异性,未能达到等级伸长率规范的报告是基于每种暴露条件下一组给定试样所获得的最坏情况。这些结果对监测和测试暴露在氢气中的基础设施具有实际意义,特别是与工业计划的运行停机时间表有关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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4.50
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