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杂质气体对高压氢环境中管线钢氢脆行为的影响

The Impact of Impurity Gases on the Hydrogen Embrittlement Behavior of Pipeline Steel in High-Pressure H Environments.

作者信息

Zhou Chengshuang, Zhou Hongbin, Zhang Lin

机构信息

College of Materials Science and Engineering, Zhejiang University of Technology, Hangzhou 310014, China.

出版信息

Materials (Basel). 2024 May 5;17(9):2157. doi: 10.3390/ma17092157.

Abstract

The use of hydrogen-blended natural gas presents an efficacious pathway toward the rapid, large-scale implementation of hydrogen energy, with pipeline transportation being the principal method of conveyance. However, pipeline materials are susceptible to hydrogen embrittlement in high-pressure hydrogen environments. Natural gas contains various impurity gases that can either exacerbate or mitigate sensitivity to hydrogen embrittlement. In this study, we analyzed the mechanisms through which multiple impurity gases could affect the hydrogen embrittlement behavior of pipeline steel. We examined the effects of O and CO on the hydrogen embrittlement behavior of L360 pipeline steel through a series of fatigue crack growth tests conducted in various environments. We analyzed the fracture surfaces and assessed the fracture mechanisms involved. We discovered that CO promoted the hydrogen embrittlement of the material, whereas O inhibited it. O mitigated the enhancing effect of CO when both gases were mixed with hydrogen. As the fatigue crack growth rate increased, the influence of impurity gases on the hydrogen embrittlement of the material diminished.

摘要

使用掺氢天然气为氢能的快速大规模应用提供了一条有效途径,管道运输是主要的输送方式。然而,在高压氢环境中,管道材料易发生氢脆现象。天然气含有各种杂质气体,这些杂质气体可能会加剧或减轻对氢脆的敏感性。在本研究中,我们分析了多种杂质气体影响管道钢氢脆行为的机制。通过在不同环境中进行的一系列疲劳裂纹扩展试验,研究了O和CO对L360管道钢氢脆行为的影响。我们分析了断口表面并评估了其中涉及的断裂机制。我们发现,CO促进了材料的氢脆,而O则起到抑制作用。当两种气体都与氢气混合时,O减轻了CO的增强作用。随着疲劳裂纹扩展速率的增加,杂质气体对材料氢脆的影响减小。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c36e/11085601/fd0ce2e87bfa/materials-17-02157-g001.jpg

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