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A COMPARATIVE ASSESSMENT ON STATIC AND DYNAMIC PCA FOR FAULT DETECTION IN NATURAL GAS TRANSMISSION SYSTEMS

机译:天然气传输系统故障检测静态和动态PCA的比较评估

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Sustainability of natural gas transmission infrastructure is highly related to the system's ability to decrease emissions due to ruptures or leaks. Although traditionally such detection relies in alarm management system and operator's expertise, given the system's nature as large-scale, complex, and with vast amount of information available, such alarm generation is better suited for a fault detection system based on data-driven techniques. This would allow operators and engineers to have a better framework to address the online data being gathered. This paper presents an assessment on multiple fault-case scenarios in critical infrastructure using two different data-driven based fault detection algorithms: Principal component analysis (PCA) and its dynamic variation (DPCA). Both strategies are assessed under fault scenarios related to natural gas transmission systems including pipeline leakage due to structural failure and flow interruption due to emergency valve shut down. Performance evaluation of fault detection algorithms is carried out based on false alarm rate, detection time and misdetection rate. The development of modern alarm management frameworks would have a significant contribution in natural gas transmission systems' safety, reliability and sustainability.
机译:天然气传输基础设施的可持续性与系统减少由于破裂或泄漏引起的排放的能力高度相关。虽然传统上,这种检测依赖于报警管理系统和操作员的专业知识,但是,鉴于系统的性质为大规模,复杂,并且具有大量可用信息,这种报警一代更适合基于数据驱动技术的故障检测系统。这将允许运营商和工程师有更好的框架来解决正在收集的在线数据。本文对使用两个不同的数据驱动的故障检测算法提供了关于关键基础设施中的多个故障情况方案的评估:主成分分析(PCA)及其动态变化(DPCA)。两种策略在与天然气传输系统相关的故障场景下评估,包括管道泄漏由于结构故障和由于紧急阀关闭而导致的流量中断。故障检测算法的性能评估基于误报率,检测时间和误差率进行。现代警报管理框架的发展将对天然气传输系统的安全性,可靠性和可持续性具有重要贡献。

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