LBB在炼化厂高温敏感无应力碳钢环焊缝上应用的初步进展

G. Wilkowski, Y. Hioe, E. Kurth, E. Punch, M. Uddin, F. Brust, K. Bagnoli, Greger L. Pioszak
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引用次数: 1

摘要

先漏后破(LBB)技术已经在各行各业应用了几十年,本文探讨了将其应用于新的领域。在炼油工业中,各种工艺装置在高温下含有氢气,高温氢侵蚀(HTHA)可能发生。这一机理包括氢与碳化物反应生成甲烷,但也包括氢在钢中的扩散。在一定的温度和氢分压下,甲烷的形成会引起晶界空化,导致裂纹,最终形成宏观开裂。一般来说,按照API RP 941中所谓的“纳尔逊曲线”进行设计,以避免这种开裂的发生;然而,近年来发现,在原始API 941曲线以下,未去应力的碳钢容易受到HTHA的影响。因此,炼油行业经历了管道和容器的多次泄漏。本文介绍了在炼油厂易开裂的无应力无缝碳钢管道环焊缝上应用LBB的一些发展努力。这种方法在很大程度上建立在过去30年商业核工业LBB工作的分析、结果和经验的基础上。本文将讨论机械测试的结果以及详细的建模工作,以评估LBB技术在圆周裂纹中的新应用,迄今为止,这意味着LBB可能适用于无缝管环焊缝。三通或其他部件的裂缝在这项工作中没有得到解决。接缝焊缝的轴向裂纹在本工作中未得到解决。
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Initial Developments for LBB Application to HTHA Sensitive Non-Stress Relieved Carbon Steel Girth Welds in Refinery Plants
Leak-Before-Break (LBB) has been applied in various industries for decades, and this paper explores using it for a new application. In the refining industry, various process units contain hydrogen at elevated temperatures where high temperature hydrogen attack (HTHA) can occur. This mechanism involves the reaction between hydrogen and carbides to form methane, but also the diffusion of hydrogen occurs in the steel. Under certain temperature and hydrogen partial pressures, the methane formation can cause grain boundary cavitation which leads to fissuring and eventually macroscopic cracking. Generally one designs to avoid such cracking from occurring following the so-called “Nelson Curves” contained in API RP 941; however, in recent years it has been found that non-stress relieved carbon steels are susceptible to HTHA below the original API 941 curve. As a result, the refining industry has experienced a number of leaks in piping and vessels. This paper presents some developmental efforts to apply LBB to non-stress relieved seamless carbon steel piping girth welds susceptible to (HTHA) cracking in refinery applications. Much of this approach builds on analyses, results, and experience from the commercial nuclear industry LBB efforts over the last 30 years. This paper will discuss the results of both mechanical testing as well as detailed modelling efforts to evaluate LBB technology to this new application for circumferential cracks, which to date implies that LBB may be applicable to seamless pipe girth welds. Cracks in tees or other components were not addressed in this work. Axial cracks in seam welds are not addressed in this work.
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