Breathing New Life to Aging Pipeline Infrastructure Using Unique Wireline Inspection Techniques and Pipe-Lining Technology

C. Goudy, Alex Gutiérrez
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Abstract

Mexico’s Energy Reform has opened up various interesting and unique opportunities for energy infrastructure. A CO2 pipeline project that was recently completed in southern Mexico provides a perfect example of how to breathe new life to deteriorated pipeline infrastructure — infrastructure that would have typically been written off. By coupling a unique pipeline inspection method with a novel lining system, two 28-kilometer (17 mile) pipelines were rehabilitated in record time and in a cost-effective manner. The project consisted of two 12 and 18-inch (300 and 450 millimeters) CO2 transport pipelines that had been out of service for 22 years and that are a central component for a high-profile fertilizer project. Replacing these deteriorated assets with a new transport pipeline was not an option due to time, environmental, permitting and budgetary constraints. The rehabilitated system had to offer a minimum 25-year service life required by the owner. To put this aging infrastructure back into service, it was essential to assess the condition of the pipelines with a high level of accuracy and precision which would allow for the rehabilitation of the pipeline and installation of an interactive liner to extend the system’s serviceable life for a minimum of 25 years. The challenge, however, was that these pipelines were non-piggable by traditional methods. By using a tethered MFL and Caliper ILI solution, the pipelines were each inspected in 13 separate sections with the level of detail necessary to assess the condition and suitability of the rehabilitation strategy selected for the project. Fast-track scheduling constraints required 24-hour data analysis turnaround of reports identifying and discriminating areas of modest and significant corrosion as well as deformations including areas of significant weld slag which could complicate the installation of the liners. Once high-quality data was available, pinpoint repairs were possible with a combination of carbon fiber reinforcement and steel pipe replacement. Afterwards, the pipelines were internally lined with a patented process that effectively provides a double containment system. A grooved liner and the host steel pipe create an annular space that is pressurized with air and remotely monitored. The system is able to detect even a small pressure drop in the annulus that would occur in case the integrity is breached, or a pinhole develops in the steel pipe. With the grooved liner, external repairs can be conducted while the line continues to operate without interrupting CO2 service to the plant. By applying these novel solutions, the rehabilitated pipelines will transport carbon dioxide to a revitalized fertilizer plant in a safe and efficient manner for the next 25 years.
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利用独特的电缆检测技术和管道衬砌技术,为老化的管道基础设施注入新的活力
墨西哥的能源改革为能源基础设施提供了各种有趣而独特的机会。最近在墨西哥南部完成的一个二氧化碳管道项目提供了一个完美的例子,说明了如何为老化的管道基础设施注入新的活力——这些基础设施通常会被注销。通过将独特的管道检查方法与新型衬管系统相结合,以创纪录的时间和经济高效的方式修复了两条28公里(17英里)的管道。该项目包括两条12英寸和18英寸(300毫米和450毫米)的二氧化碳输送管道,这些管道已经停用了22年,是一个备受瞩目的肥料项目的核心组成部分。由于时间、环境、许可和预算的限制,用新的运输管道取代这些老化的资产并不是一种选择。修复后的系统必须提供业主要求的至少25年的使用寿命。为了使这些老化的基础设施重新投入使用,必须以高水平的准确度和精度评估管道的状况,从而允许管道的修复和交互式衬管的安装,将系统的使用寿命延长至少25年。然而,挑战在于这些管道无法用传统方法进行清管。通过使用固定的MFL和Caliper ILI解决方案,对管道进行了13个单独的检查,以评估项目所选择的修复策略的状况和适用性。快速通道调度限制需要24小时的数据分析周转报告,以识别和区分轻微和严重腐蚀以及变形的区域,包括可能使衬管安装复杂化的明显焊渣区域。一旦获得了高质量的数据,就可以通过碳纤维加固和钢管更换相结合的方式进行精确修复。之后,管道内部内衬了一个专利工艺,有效地提供了一个双重密封系统。槽尾管和主钢管形成一个环空空间,通过空气加压并进行远程监控。在完整性被破坏或钢管出现针孔的情况下,该系统能够检测到环空中甚至很小的压降。使用沟槽衬管,可以在管道继续运行的同时进行外部维修,而不会中断工厂的二氧化碳服务。通过应用这些新颖的解决方案,修复后的管道将在未来25年内以安全有效的方式将二氧化碳输送到一个重新焕发活力的化肥厂。
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