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Evaluation of Methods for Detecting and Monitoring of Corrosion Damage in Risers

机译:立管腐蚀损伤的检测与监测方法的评价

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摘要

Offshore pipeline failure statistics have been collected for more than 30 years now and illustrate that the riser predominantly fails as a result of corrosion. The consistent wetting and drying in the splash zone combined with defects in the coatings are the usual contributors to the problem. Risers are inspected at some determined frequency and can be done by internal and external methods. Inspecting by either means brings into account caveats and limitations from the technology used as well as human factors. For example, external inspections can be inefficient and inaccurate with some tools missing defects in areas of coating disbondment. In addition, internal inspections sometimes create false positives and can miss defects. These inaccuracies in the technologies or the techniques used may miss defects that eventually lead to failure. On the other hand, using corrosion mapping and fitness-for-service (FFS) assessment from the data collected, along with the inherent conservatism of this data from limited measurement accuracy, may result in the premature replacement of risers. A literature search is being conducted to review existing riser inspection methods and identify candidate nondestructive methods for riser inspection. These methods should be capable of detecting and monitoring general corrosion, localized corrosion pitting, and stress-corrosion cracking (sulfide or hydrogen induced) as external or internal corrosion damage. Thus far, this search has found that assessing the remaining service life of aging risers is largely dependent on the accuracy of analyzing corrosion damage to the riser surface in the atmospheric, splash (tidal), submerged, and buried environmental zones. The accuracy of each technology was analyzed. The capabilities and limitations of each method/technique used for riser inspection are summarized. The investigation is focused on long- and short-range ultrasonic techniques used for initial screening and corrosion mapping. These techniques can be deployed to detect a significant reduction in wall thickness using guided and torsional waves or to map accurately a corrosion damage using single/multiple transducers and phased-array probes in manual or automated mode. A pulsed eddy-current technique that uses a stepped or pulsed input signal for the detection of corrosion areas under insulation (CUI) is also being evaluated. This allows the detection of wall-thinning areas in the riser without removing the outside coatings. In addition, it is found that filmless, real-time, and digital radiography can be used to find internal and external corrosion defects in an insulated splash zone while the riser remains in service. A survey of nondestructive evaluation (NDE) manufacturing companies, NDE inspection companies, and operating companies was completed to collect information about current instrumentation and inspection/operators' experience for riser inspection. Examples of advanced riser inspection instrumentation and field results are included. The ability of the candidate technologies to be adapted to riser variations, the stage of standardization, and costs are also discussed.
机译:迄今已收集了30多年的海上管道故障统计数据,这些统计数据表明,立管主要是由于腐蚀而失效。飞溅区中持续的润湿和干燥以及涂层中的缺陷是导致该问题的常见原因。竖井的检查频率是确定的,可以通过内部和外部方法进行检查。两种方式的检查都会考虑到所使用技术的局限性和局限性以及人为因素。例如,外部检查可能效率低下,并且由于某些工具缺少涂层剥离区域的缺陷而可能不准确。此外,内部检查有时会产生误报,并且可能会漏掉缺陷。这些技术或所用技术的不准确性可能会遗漏最终导致故障的缺陷。另一方面,从收集到的数据中使用腐蚀测绘和服务适合度(FFS)评估,以及由于测量精度有限而固有的保守性,可能会导致立管过早更换。正在进行文献搜索以审查现有的立管检查方法,并确定用于立管检查的候选非破坏性方法。这些方法应能够检测和监视一般腐蚀,局部腐蚀点蚀以及作为外部或内部腐蚀损害的应力腐蚀裂纹(硫化物或氢引起的)。到目前为止,该搜索发现,评估老化的立管的剩余使用寿命在很大程度上取决于分析大气,飞溅(潮汐),淹没和掩埋环境区域中立管表面腐蚀损坏的准确性。分析了每种技术的准确性。总结了用于立管检查的每种方法/技术的功能和局限性。研究重点在于用于初始筛选和腐蚀图的长距离和短距离超声技术。这些技术可以部署为使用导波和扭转波检测壁厚的显着减小,或者使用手动/自动模式下的单个/多个换能器和相控阵探头精确绘制腐蚀损伤图。使用分步或脉冲输入信号检测绝缘下腐蚀区域(CUI)的脉冲涡流技术也正在评估中。这样就可以检测立管中的壁变薄区域,而无需去除外部涂层。此外,发现在提升管保持使用状态时,可以使用无胶片,实时和数字射线照相技术在绝缘飞溅区中查找内部和外部腐蚀缺陷。对非破坏性评估(NDE)制造公司,NDE检查公司和运营公司的调查已完成,以收集有关当前仪器和检查/操作员在立管检查方面的经验的信息。包括高级立管检查仪器和现场结果的示例。还讨论了候选技术适应立管变化的能力,标准化阶段和成本。

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