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A Sensitivity Analysis of a Computer Model-Based Leak Detection System for Oil Pipelines

机译:基于计算机模型的输油管道泄漏检测系统的灵敏度分析

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Improving leak detection capability to eliminate undetected releases is an area of focus for the energy pipeline industry, and the pipeline companies are working to improve existing methods for monitoring their pipelines. Computer model-based leak detection methods that detect leaks by analyzing the pipeline hydraulic state have been widely employed in the industry, but their effectiveness in practical applications is often challenged by real-world uncertainties. This study quantitatively assessed the effects of uncertainties on leak detectability of a commonly used real-time transient model-based leak detection system. Uncertainties in fluid properties, field sensors, and the data acquisition system were evaluated. Errors were introduced into the input variables of the leak detection system individually and collectively, and the changes in leak detectability caused by the uncertainties were quantified using simulated leaks. This study provides valuable quantitative results contributing towards a better understanding of how real-world uncertainties affect leak detection. A general ranking of the importance of the uncertainty sources was obtained: from high to low it is time skew, bulk modulus error, viscosity error, and polling time. It was also shown that inertia-dominated pipeline systems were less sensitive to uncertainties compared to friction-dominated systems.
机译:改善泄漏检测能力以消除未检测到的泄漏是能源管道行业关注的领域,管道公司正在努力改进用于监视其管道的现有方法。通过分析管道的液压状态来检测泄漏的基于计算机模型的泄漏检测方法已在行业中得到广泛应用,但是其在实际应用中的有效性常常受到现实世界中不确定因素的挑战。这项研究定量评估了不确定性对常用实时基于瞬态模型的泄漏检测系统的泄漏检测能力的影响。评估了流体特性,现场传感器和数据采集系统的不确定性。将误差分别和共同地引入到泄漏检测系统的输入变量中,并使用模拟泄漏对由不确定性引起的泄漏检测能力的变化进行量化。这项研究提供了有价值的定量结果,有助于更好地了解现实中的不确定性如何影响泄漏检测。获得了不确定性来源重要性的总体排名:从高到低依次是时间偏斜,体积模量误差,粘度误差和轮询时间。还表明,与摩擦为主的系统相比,惯性为主的管道系统对不确定性的敏感性较低。

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