Development of Non-destructive Testing Method for Tube Inspection in Fin-Fan Coolers in Kazakhstan’s Oil/Gas, Chemical and Power Industries.

John P. Hansen, J V Hansen, Jonathan Hansen, Sarken D. Kapayeva, Marek J Bergander
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Abstract

Many oil/gas fields in Kazakhstan contain high levels of highly corrosive H2S and CO2, sometimes at very high pressures. The management of corrosion is essential in maintaining plant safety and integrity of the processing facility. This paper describes the development of a non-destructive testing (NDT) method that improves the reliability of air-cooled heat exchangers by reducing down-time related to corrosive and erosive failure of fin-fan tubes. The project goal was to maximize the output of oil and gas plants and refineries while reducing the plant operating cost. The work first identified those NDT requirements for air-cooled heat exchangers damage assessment that would provide the greatest economic benefit for Kazakhstan industry. The main objective was to develop a state-of-an-art NDT method for air-cooled heat exchanger tubes, capable to: a) detect any damage mechanism while testing from tube internal diameter, b) accurately determine the damage in terms of wall loss, c) perform inspection quickly and expediently, d) requires minimum tube cleaning. Consequently, the method specially adapted for Kazakhstan conditions was developed based on a combination of Magnetic Flux Leakage (MFL) technique for flaw detection and with Hall effect measurement of wall thickness and gradual corrosion in tubes. The method has been tested in both laboratory and field conditions and the results were compared with accurate but slow ultrasonic IRIS method. High correlation was obtained, which proved that the developed technology is capable to deliver similar results at the speed almost 10 times faster and less than half the cost.
哈萨克斯坦石油/天然气、化工和电力工业翅片风机冷却器管材无损检测方法的发展
哈萨克斯坦的许多油气田都含有高浓度的高腐蚀性H2S和CO2,有时压力非常高。腐蚀管理对于维护工厂安全和加工设施的完整性至关重要。本文介绍了一种无损检测(NDT)方法的发展,该方法通过减少与翅片风扇管腐蚀和侵蚀故障相关的停机时间来提高风冷换热器的可靠性。该项目的目标是最大限度地提高石油和天然气工厂和炼油厂的产量,同时降低工厂的运营成本。这项工作首先确定了风冷热交换器损坏评估的无损检测要求,这将为哈萨克斯坦工业提供最大的经济效益。主要目标是为风冷热交换器管开发一种最先进的无损检测方法,能够:a)在测试管道内径时检测任何损坏机制,b)根据壁损失准确确定损坏情况,c)快速方便地执行检查,d)需要最少的管道清洁。因此,基于漏磁(MFL)探伤技术和管道壁厚和逐渐腐蚀的霍尔效应测量相结合,开发了一种专门适用于哈萨克斯坦条件的方法。该方法在实验室和现场条件下进行了测试,并与精确但缓慢的超声IRIS方法进行了比较。获得了高相关性,这证明所开发的技术能够以快近10倍的速度和不到一半的成本提供类似的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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