Assessing Hydrogen Embrittlement in Pipeline Steels for Natural Gas-Hydrogen Blends: Implications for Existing Infrastructure

Solids Pub Date : 2024-07-16 DOI:10.3390/solids5030025
Hesamedin Ghadiani, Zoheir Farhat, T. Alam, Md. Aminul Islam
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Abstract

Governments worldwide are actively committed to achieving their carbon emission reduction targets, and one avenue under exploration is harnessing the potential of hydrogen. Blending hydrogen with natural gas is emerging as a promising strategy to reduce carbon emissions, as it burns cleanly without emitting carbon dioxide. This blending could significantly contribute to emissions reduction in both residential and commercial settings. However, a critical challenge associated with this approach is the potential for Hydrogen Embrittlement (HE), a phenomenon wherein the mechanical properties of pipe steels degrade due to the infiltration of hydrogen atoms into the metal lattice structure. This can result in sudden and sever failures when the steel is subjected to mechanical stress. To effectively implement hydrogen-natural gas blending, it is imperative to gain a comprehensive understanding of how hydrogen affects the integrity of pipe steel. This necessitates the development of robust experimental methodologies capable of monitoring the presence and impact of hydrogen within the microstructures of steel. Key techniques employed for this assessment include microscopic observation, hydrogen permeation tests, and tensile and fatigue testing. In this study, samples from two distinct types of pipeline steels used in the natural gas distribution network underwent rigorous examination. The findings from this research indicate that charged samples exhibit a discernible decline in fatigue and tensile properties. This deterioration is attributed to embrittlement and reduced ductility stemming from the infiltration of hydrogen into the steel matrix. The extent of degradation in fatigue properties is correlated not only to the hydrogen content but also to the hydrogen permeability and diffusion rate influenced by steel’s microstructural features, with higher charging current densities indicating a more significant presence of hydrogen in the natural gas pipeline blend.
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评估天然气-氢气混合物管道钢中的脆氢现象:对现有基础设施的影响
世界各国政府都在积极致力于实现碳减排目标,其中一个正在探索的途径就是利用氢的潜力。将氢气与天然气混合正在成为一种很有前景的减少碳排放的战略,因为氢气燃烧清洁,不会排放二氧化碳。这种混合可极大地促进住宅和商业环境的减排。然而,与这种方法相关的一个关键挑战是氢脆(HE)的可能性,这是一种由于氢原子渗入金属晶格结构而导致管道钢机械性能下降的现象。当钢材受到机械应力时,这种现象会导致钢材突然发生严重故障。要有效实施氢-天然气混合,就必须全面了解氢如何影响钢管的完整性。这就需要开发能够监测钢材微结构中氢的存在和影响的可靠实验方法。评估所采用的关键技术包括显微镜观察、氢渗透测试以及拉伸和疲劳测试。在这项研究中,对天然气输送网络中使用的两种不同类型的管线钢样本进行了严格检查。研究结果表明,带电样品的疲劳和拉伸性能明显下降。这种劣化归因于氢渗入钢基体导致的脆化和延展性降低。疲劳性能下降的程度不仅与氢含量有关,还与受钢材微观结构特征影响的氢渗透率和扩散率有关,充电电流密度越高,表明天然气管道混合物中的氢含量越高。
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