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Fault Diagnosis for the Heat Exchanger of the Aircraft Environmental Control System Based on the Strong Tracking Filter

机译:基于强跟踪滤波器的飞机环境控制系统换热器故障诊断

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摘要

The aircraft environmental control system (ECS) is a critical aircraft system, which provides the appropriate environmental conditions to ensure the safe transport of air passengers and equipment. The functionality and reliability of ECS have received increasing attention in recent years. The heat exchanger is a particularly significant component of the ECS, because its failure decreases the system’s efficiency, which can lead to catastrophic consequences. Fault diagnosis of the heat exchanger is necessary to prevent risks. However, two problems hinder the implementation of the heat exchanger fault diagnosis in practice. First, the actual measured parameter of the heat exchanger cannot effectively reflect the fault occurrence, whereas the heat exchanger faults are usually depicted by utilizing the corresponding fault-related state parameters that cannot be measured directly. Second, both the traditional Extended Kalman Filter (EKF) and the EKF-based Double Model Filter have certain disadvantages, such as sensitivity to modeling errors and difficulties in selection of initialization values. To solve the aforementioned problems, this paper presents a fault-related parameter adaptive estimation method based on strong tracking filter (STF) and Modified Bayes classification algorithm for fault detection and failure mode classification of the heat exchanger, respectively. Heat exchanger fault simulation is conducted to generate fault data, through which the proposed methods are validated. The results demonstrate that the proposed methods are capable of providing accurate, stable, and rapid fault diagnosis of the heat exchanger.
机译:飞机环境控制系统(ECS)是至关重要的飞机系统,可提供适当的环境条件,以确保航空旅客和设备的安全运输。近年来,ECS的功能和可靠性日益受到关注。热交换器是ECS的一个特别重要的组成部分,因为它的故障会降低系统的效率,这可能导致灾难性的后果。为了防止风险,必须对热交换器进行故障诊断。但是,实际上有两个问题阻碍了热交换器故障诊断的实施。首先,换热器的实际测量参数不能有效地反映故障的发生,而换热器的故障通常通过利用不能直接测量的相应的故障相关状态参数来描述。其次,传统的扩展卡尔曼滤波器(EKF)和基于EKF的双模型滤波器都具有某些缺点,例如对建模错误的敏感性和初始化值选择的困难。针对上述问题,本文提出了一种基于强跟踪滤波器(STF)和改进贝叶斯分类算法的故障相关参数自适应估计方法,分别用于换热器的故障检测和故障模式分类。进行换热器故障仿真以生成故障数据,通过该数据验证所提出的方法。结果表明,所提出的方法能够为热交换器提供准确,稳定和快速的故障诊断。

著录项

  • 期刊名称 other
  • 作者

    Jian Ma; Chen Lu; Hongmei Liu;

  • 作者单位
  • 年(卷),期 -1(10),3
  • 年度 -1
  • 页码 e0122829
  • 总页数 11
  • 原文格式 PDF
  • 正文语种
  • 中图分类
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