液体管道应力腐蚀裂纹向锐边腐蚀过渡的研究

Jiajun Liang, Ziqiang Dong, Mengshan Yu, Mariko Dela Rosa, Gurwinder Nagra
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摘要

虽然应力腐蚀裂纹(SCC)的扩展归因于应力和腐蚀的协同作用,但这两个因素也很容易成为相互竞争的机制,应力循环驱动扩展(氢,腐蚀的副产物,可能促进扩展),而腐蚀则钝化裂纹尖端并阻止扩展。因此,降低最大压力和循环强度可以减缓甚至停止裂纹的扩展,而侵略性腐蚀可以进一步钝化尖锐的裂纹尖端。作者观察到,在一个特定的聚乙烯(PE)带涂层管道上,SCC表现出腐蚀倾向,并转化为锋利的边缘腐蚀。这是由于有限的腐蚀防护和低应力的综合作用。本文的重点是帮助作业者认识到这一现象,并将经验教训整合到管道完整性管理策略中。
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Study on Transition of Stress Corrosion Cracking to Sharp Edge Corrosion for a Liquids Pipeline
Although stress corrosion cracking (SCC) growth is attributed to the synergistic effects of stress and corrosion, these two factors can just as easily become competing mechanisms, with stress cycles driving growth (hydrogen, the by-product of corrosion, may facilitate the growth), and corrosion working to blunt the crack tip and arrest growth. It follows that reducing the maximum pressure and cycling severity can slow down the crack growth or even stop it, and aggressive corrosion can further blunt the sharp crack tip. The Authors have observed, on a particular Polyethylene (PE) tape coated pipeline, instances where SCC has exhibited a propensity to corrode and convert into sharp edge corrosion. This is attributed to the combined effects of limited corrosion protection and low stresses. The focus of the paper is to assist operators in recognizing this phenomenon and integrate lessons learned into pipeline integrity management strategies.
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