Reducing Pipeline Maintenance Costs, Time, and Resources Through Nonintrusive Diagnostics

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Abstract

Maintaining pipelines in optimum condition is a costly and time-consuming process for operators, which requires many resources. To help ensure an asset remains in a good operational state, it is necessary to understand its condition to allow it to be maintained in an efficient and cost-effective manner. Current methods for deposit assessment are limited to intrusive methods, theoretical modeling, or external measurement. This paper details a compressive solution to these challenges using pressure wave analysis. The method is based on analyzing the signal response generated by a pressure wave transiting the system as it is affected by geometrical changes in the system. By capturing high resolution pressure measurement on an ultrahigh speed logger, the generated pressure wave can be recorded for analysis. Applying acoustic velocity gradient modeling in conjunction with the effect of the of the system and the fluid parameters, the profile of the internal bore of the system can be accurately determined without the use of intrusive or localized external tools. Detailed is how the theory behind the method is confirmed by results observed when used during a controlled full-scale field-trial environment in addition to subsequent activities to survey system profiles. A case study is presented, demonstrating that the method allows operators to make decisive asset performance decisions and review deposit buildup in a safe and cost-effective manner without having to stop production. The theoretical method for calculation of acoustic velocity for known system and fluid parameters is shown to be accurate within tolerances compared to the acoustic velocity gained in the field by recording the time of flight between two known points. It is demonstrated that restrictions can be detected to a level of accuracy of plus or minus three millimeters of thickness, verified by comparison with other inspection methods. The described is a unique method for determining the internal profile of systems, which can offer significant advantages from traditional bore determination methods. It can provide information in a repeatable and verified level of accuracy without the requirement for expensive and time consuming intrusive intervention, this allows operators the opportunity to target remediation work in the most efficient and cost effective manner, therefore maximizing production uptime and throughput.
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通过非侵入式诊断减少管道维护成本、时间和资源
对于运营商来说,保持管道处于最佳状态是一个昂贵且耗时的过程,需要大量资源。为了确保资产保持良好的运行状态,有必要了解其状况,以便以有效和经济的方式维护资产。目前的矿床评价方法仅限于侵入式方法、理论建模或外部测量。本文详细介绍了使用压力波分析的压缩解决方案。该方法是基于分析通过系统的压力波受系统几何变化影响时产生的信号响应。通过在超高速记录仪上捕获高分辨率压力测量,可以记录产生的压力波以供分析。将声速梯度建模与系统和流体参数的影响相结合,可以在不使用侵入式或局部外部工具的情况下准确确定系统内孔的轮廓。详细说明了该方法背后的理论是如何通过在受控的全尺寸现场试验环境中使用以及随后调查系统概况的活动中观察到的结果来证实的。一个案例研究表明,该方法可以使作业者在不停止生产的情况下,以安全和经济的方式做出决定性的资产绩效决策,并检查沉积物堆积情况。计算已知系统和流体参数的声速的理论方法与通过记录两个已知点之间的飞行时间在现场获得的声速相比,在公差范围内是准确的。通过与其他检测方法的比较,证明限制可以检测到正负3毫米厚度的精度水平。所描述的是一种确定系统内部轮廓的独特方法,与传统的井径确定方法相比具有显著的优势。它可以提供可重复且经过验证的准确信息,而不需要昂贵且耗时的侵入式干预,这使得作业者有机会以最有效和最具成本效益的方式进行针对性的修复工作,从而最大限度地延长生产正常运行时间和产量。
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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