LPG脱硫装置弯头腐蚀失效分析

Jianwen Z, Guoqing S, Chuansheng W
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引用次数: 0

摘要

弯头在管道系统中起着改变介质流动方向的关键作用,是油气输送中最常用的管道部件之一。对某炼油厂LPG脱硫装置再生塔弯管腐蚀失效机理进行了研究。针对失效弯头,从宏观和微观两个角度,总结和分析了弯头内层的物理规律,包括腐蚀孔分布和壁厚。采用力学性能、金相检验、x射线衍射分析(XRD)、扫描电镜(SEM)和能谱分析(EDS)等进一步表征方法研究了腐蚀机理。以贼洞为中心,将肘部分成4排。结果表明,孔的最大直径为21.1 mm,最小直径为7.76 mm,绝大多数孔的直径为16 ~ 19 mm。中间截面的平均尺寸较大,孔洞大于19 mm的居多。腐蚀厚度沿流动方向先增大后减小,在第1排和第2排完全破坏区达到最大值。腐蚀厚度沿第3排和第4排流动方向逐渐增大。冲蚀腐蚀是弯管失效的主要原因。流体侵蚀在破坏过程中起主导作用,电化学腐蚀在腐蚀孔的形成中起主导作用。此外,热稳定盐(HSS)的存在也加剧了弯头的腐蚀。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Corrosion Failure Analysis of Elbow in LPG Desulfurization Unit
The elbow plays a crucial role in changing the flow direction of the medium in pipeline system and is one of the most commonly used pipeline components in the oil and gas transportation. This paper focuses on the corrosive failure mechanism of the elbow of regeneration tower of LPG desulfurization unit in a refinery. Aiming at the failure elbow, based on the macro and micro perspectives, the physical laws of the inner layer of the elbow, including the distribution of corrosion holes and wall thickness, are summarized and analyzed. The further characterization methods were used to study the corrosion mechanism, including mechanical properties, metallographic examination, X-ray diffraction analysis (XRD), scanning electron microscopy (SEM) and energy spectrum analysis (EDS). Taking the thief hole as center, the elbow was divided into 4 rows. It is found that the maximum diameter was 21.1 mm while the minimum was 7.76 mm, and the vast majority of holes were 16 ~ 19 mm. The average size of the middle section was larger, meanwhile, possessed most holes over 19 mm. The corrosion thickness first increased then decreased along the flow direction and reached the maximum in completely destroyed area of the 1st and 2nd row. The corrosion thickness increased gradually along the flow direction of the 3rd and 4th row. Erosion corrosion is the main cause of elbow failure. Fluid erosion plays a dominant role in the failure process while electrochemical corrosion plays a dominant role in the formation of corrosion holes. Besides, the presence of heat-stable salts (HSS) also aggravates the corrosion of elbow.
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