李加庆,梁辉龙,冯智雨,等. 水和氧杂质作用下管线钢的液氨应力腐蚀行为[J]. 油气储运,2025,44(4):1−8.
引用本文: 李加庆,梁辉龙,冯智雨,等. 水和氧杂质作用下管线钢的液氨应力腐蚀行为[J]. 油气储运,2025,44(4):1−8.
LI Jiaqing, LIANG Huilong, FENG Zhiyu, et al. Liquid ammonia stress corrosion behavior of pipeline steel under water and oxygen impurities[J]. Oil & Gas Storage and Transportation, 2025, 44(4): 1−8.
Citation: LI Jiaqing, LIANG Huilong, FENG Zhiyu, et al. Liquid ammonia stress corrosion behavior of pipeline steel under water and oxygen impurities[J]. Oil & Gas Storage and Transportation, 2025, 44(4): 1−8.

水和氧杂质作用下管线钢的液氨应力腐蚀行为

Liquid ammonia stress corrosion behavior of pipeline steel under water and oxygen impurities

  • 摘要:
    目的 管线钢作为一种高强度低合金钢,可用于液氨资源大规模长距离管道运输。然而液氨储运环境复杂,当液氨中混入空气、水等杂质后,管线钢将面临液氨应力腐蚀问题,严重威胁管道服役安全。因此,探究复杂输送环境下的液氨应力腐蚀规律对保障液氨管道储运安全至关重要。
    方法 为测试管线钢的液氨应力腐蚀行为,开展不同杂质影响下的液氨腐蚀实验和慢应变速率拉伸实验,并结合断口形貌表征分析及硬度测试情况,分别从腐蚀速率、力学性能减损、应力腐蚀敏感性指数及微观形貌演化特征等方面对管线钢液氨应力腐蚀进行定量分析与探究。
    结果 管线钢在纯液氨环境中的腐蚀速率和应力腐蚀倾向最小,应力腐蚀敏感性指数为75.914%;随着水含量的增加,应力腐蚀倾向略微增大,应力腐蚀敏感性指数轻微减少。氧的混入可使管道表面形成硬而脆的腐蚀产物,降低应力腐蚀敏感性指数,增大管线钢断口处的硬度,诱使断口出现解理面与二次裂纹,断裂行为逐渐趋向脆性断裂。
    结论 在液氨管道设计和运行中,应严格控制氧和水杂质含量,考虑应力腐蚀敏感性指数下限,减少液氨应力腐蚀开裂风险,确保液氨管道运行的本质安全。

     

    Abstract:
    Purpose Pipeline steel is a high-strength low-alloy steel capable of meeting the demands of large-scale, long-distance pipeline transportation of liquid ammonia. However, the storage and transportation environment of liquid ammonia is complex. When impurities such as air and water mix with liquid ammonia, the stress corrosion problem of pipeline steel becomes particularly prominent. Therefore, exploring the stress corrosion behavior of liquid ammonia under complex transportation conditions is crucial for ensuring the safety of pipeline storage and transportation.
    Methods To investigate the stress corrosion behavior of pipeline steel in liquid ammonia, corrosion tests under different impurity conditions and slow strain rate tensile tests were conducted. By combining fracture morphology characterization and hardness testing, a quantitative analysis was performed on the stress corrosion of pipeline steel in liquid ammonia. This analysis considered corrosion rate, mechanical performance degradation, stress corrosion sensitivity index, and the evolution characteristics of micro-morphology.
    Results The corrosion rate and stress corrosion tendency of pipeline steel were minimal in a pure liquid ammonia environment, with a stress corrosion sensitivity index of 75.914%. As the water content increased, the stress corrosion tendency slightly increased, and the stress corrosion sensitivity index slightly decreased. The introduction of oxygen impurities led to the formation of hard and brittle corrosion products, which reduced the stress corrosion sensitivity index, increased the hardness at the fracture site of the pipeline steel, and induced the fracture morphology to gradually exhibit cleavage facets and secondary cracks characteristic of brittle fractures.
    Conclusion In the design and operation of liquid ammonia pipelines, it is essential to strictly control the oxygen impurity content, consider the lower limit of the stress corrosion sensitivity index, reduce the risk of liquid ammonia stress corrosion cracking, and ensure the intrinsic safety of liquid ammonia pipeline operations.

     

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