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Locating Sensors in Large-Scale Engineering Systems for Fault Isolation Based on Fault Feature Reduction

机译:基于故障特征减少的大规模工程系统中的大型工程系统定位传感器

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Fault detection and diagnosis (FDD) modules in a modern control system are effective in detecting and identifying abnormal process behaviours in a timely manner, ensuring the high-performance of large-scale engineering systems. The detection and isolation of faults is essentially built on the characterisation of the observed behaviour of a system. However, due to the large number of technical indicators available for measurement, as well as the various constraints of sensor installation, monitoring all the operating parameters of a large-scale engineering system is not feasible. Therefore, locating sensors optimally in a large-scale system, to achieve a comprehensive description of an abnormality, becomes a key issue to successfully apply diagnostic technologies to real world situations. In this paper, a fault feature reduction (FFR) based sensor location approach is proposed for optimal sensor placement so as to achieve the desired performance of fault detection and isolation. The behaviour of faults is firstly analysed using a fault tree to obtain a comprehensive understanding of the multi-dimensional relationships between faults and symptoms. A Boolean matrix is then constructed to represent the corresponding relations around faults and potential sensors. All the alternative configurations of sensors, for a desired diagnosis of a system, are obtained by eliminating the redundant fault features. The trade-off without a certain sensor is also attained using the following proposed approach. Three large-scale systems, including, a diesel engine system and two chemical systems, are used to illustrate the proposed approach. Comparisons to existing competitive techniques indicate the enhanced abilities of the proposed approach to meet the varying requirements of a real-world monitoring network. The analysis of sensor placement can be performed at the design phase of a large-scale engineering system, to locate the preset measured hole, or, during the life-cycle, to perfect an incomplete or redundant monitoring system. (C) 2020 The Franklin Institute. Published by Elsevier Ltd. All rights reserved.
机译:现代控制系统中的故障检测和诊断(FDD)模块在及时检测和识别异常过程行为方面是有效的,确保大规模工程系统的高性能。故障的检测和隔离基本上基于对系统观察到的行为的表征。但是,由于大量可用于测量的技术指标,以及传感器安装的各种约束,监控大型工程系统的所有操作参数是不可行的。因此,在大规模系统中最佳地定位传感器,以实现异常的全面描述,成为成功应用于现实世界情况的诊断技术的关键问题。本文提出了基于故障特征减少(FFR)的传感器定位方法,以实现最佳传感器放置,以达到故障检测和隔离的所需性能。首先使用故障树分析故障的行为,以便全面了解故障和症状之间的多维关系。然后构造布尔矩阵以表示故障和电位传感器周围的相应关系。通过消除冗余故障特征来获得传感器的所有替代配置,用于系统的期望诊断。使用以下提出的方法也获得了没有某种传感器的折衷。三种大型系统,包括柴油发动机系统和两个化学系统,用于说明所提出的方法。对现有竞争技术的比较表明,提高了拟议方法的增强能力,以满足现实世界监测网络的不同要求。传感器放置的分析可以在大规模工程系统的设计阶段执行,以定位预设测量孔,或在生命周期期间,以完善不完整或冗余的监控系统。 (c)2020富兰克林学院。 elsevier有限公司出版。保留所有权利。

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  • 来源
    《Journal of the Franklin Institute》 |2020年第12期|8181-8202|共22页
  • 作者单位

    Harbin Engn Univ Coll Power & Energy Engn Harbin 150001 Peoples R China;

    Harbin Engn Univ Coll Power & Energy Engn Harbin 150001 Peoples R China;

    Harbin Engn Univ Coll Power & Energy Engn Harbin 150001 Peoples R China;

    Univ Huddersfield Ctr Efficiency & Performance Engn Huddersfield HD1 3DH W Yorkshire England;

    Univ Huddersfield Ctr Efficiency & Performance Engn Huddersfield HD1 3DH W Yorkshire England;

    Harbin Engn Univ Coll Power & Energy Engn Harbin 150001 Peoples R China;

    Univ Huddersfield Ctr Efficiency & Performance Engn Huddersfield HD1 3DH W Yorkshire England;

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  • 入库时间 2022-08-18 21:04:31

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