Mechanistic investigation of weak magnetic internal detection for hydrogen-induced stress damage in pipelines at the atomic scale

IF 5.6 2区 工程技术 Q1 ENGINEERING, MULTIDISCIPLINARY Measurement Pub Date : 2025-03-26 DOI:10.1016/j.measurement.2025.117417
Bin Liu, Zi han Wu, Hui Yu, Zheng Lian, Lu yao He, Lijian Yang
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Abstract

Localized hydrogen enrichment within pipeline materials under stress can readily induce the initiation and propagation of internal cracks, which constitutes a major cause of abrupt pipeline failure. Weak magnetic internal detection technology, recognized as an effective method for evaluating early damage in ferromagnetic materials, demonstrates considerable potential for identifying hydrogen-induced damage. This study aimed to explore the formation of hydrogen-induced damage by investigating its underlying mechanism. The critical stress required for atomic slip in the α-Fe-H system was analyzed utilizing the first-principle, and the correlation between stress and magnetization intensity at hydrogen-damaged sites was assessed using magnetoelastic effect. Based on magnetic charge theory, an analysis model for hydrogen adsorption-induced dislocation (AID) magnetic signal was developed. The model facilitated a multi-dimensional analysis of the mechanisms through which hydrogen intensified local stress concentration within the pipeline, leading to abnormal variations in magnetic signals. Relevant evaluation metrics were proposed to effectively characterize hydrogen-induced damage in the pipeline, and conducted systematic experimental verification. The results indicate that the energy barrier required to overcome hydrogen-induced damage varies under different influencing factors. The weak magnetic signal calculated using the AID magnetic signal model can effectively characterize hydrogen-induced damage. Compared to other vacancies, hydrogen located on the slip plane at FractionalXYZ (1.000, 0.500, 0.417) had the most significant impact on the weak magnetic signal, with the signal mean variation (Caverage) of 74 %. Among different hydrogen concentrations, high hydrogen concentration exhibited to have a relatively higher impact on the magnetic signal, with an average (Daverage) change rate of 65 %.

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原子尺度管道氢应力损伤弱磁内部检测机理研究
管道材料在应力作用下的局部富氢容易诱发内部裂纹的萌生和扩展,这是管道突然失效的主要原因。弱磁内部检测技术被认为是铁磁性材料早期损伤评估的有效方法,在氢致损伤识别方面具有相当大的潜力。本研究旨在探讨氢致损伤的形成机制。利用第一性原理分析了α-Fe-H体系中原子滑移所需的临界应力,并利用磁弹性效应评价了氢损伤部位的应力与磁化强度的相关性。基于磁荷理论,建立了氢吸附诱发位错(AID)磁信号的分析模型。该模型有助于对氢气加剧管道内局部应力集中、导致磁信号异常变化的机制进行多维分析。提出了相应的评价指标,有效表征管道氢致损伤,并进行了系统的实验验证。结果表明,在不同的影响因素下,克服氢损伤所需的能垒是不同的。利用AID磁信号模型计算的弱磁信号能有效表征氢致损伤。与其他空位相比,位于分数xyz(1.000, 0.500, 0.417)位置的氢对弱磁信号的影响最为显著,信号平均变化(平均值)为74%。在不同氢浓度中,高氢浓度对磁信号的影响相对较大,平均(平均)变化率为65%。
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来源期刊
Measurement
Measurement 工程技术-工程:综合
CiteScore
10.20
自引率
12.50%
发文量
1589
审稿时长
12.1 months
期刊介绍: Contributions are invited on novel achievements in all fields of measurement and instrumentation science and technology. Authors are encouraged to submit novel material, whose ultimate goal is an advancement in the state of the art of: measurement and metrology fundamentals, sensors, measurement instruments, measurement and estimation techniques, measurement data processing and fusion algorithms, evaluation procedures and methodologies for plants and industrial processes, performance analysis of systems, processes and algorithms, mathematical models for measurement-oriented purposes, distributed measurement systems in a connected world.
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