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A control-theoretic fault prognostics and accommodation framework for a class of nonlinear discrete-time systems.

机译:一类非线性离散时间系统的控制理论故障预测和适应框架。

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摘要

Fault diagnostics and prognostics schemes (FDP) are necessary for complex industrial systems to prevent unscheduled downtime resulting from component failures. Existing schemes in continuous-time are useful for diagnosing complex industrial systems and no work has been done for prognostics. Therefore, in this dissertation, a systematic design methodology for model-based fault prognostics and accommodation is undertaken for a class of nonlinear discrete-time systems. This design methodology, which does not require any failure data, is introduced in six papers.;In Paper I, a fault detection and prediction (FDP) scheme is developed for a class of nonlinear system with state faults by assuming that all the states are measurable. A novel estimator is utilized for detecting a fault. Upon detection, an online approximator in discrete-time (OLAD) and a robust adaptive term are activated online in the estimator wherein the OLAD learns the unknown fault dynamics while the robust adaptive term ensures asymptotic performance guarantee. A novel update law is proposed for tuning the OLAD parameters. Additionally, by using the parameter update law, time to reach an a priori selected failure threshold is derived for prognostics. Subsequently, the FDP scheme is used to estimate the states and detect faults in nonlinear input-output systems in Paper II and to nonlinear discrete-time systems with both state and sensor faults in Paper III.;Upon detection, a novel fault isolation estimator is used to identify the faults in Paper IV. It was shown that certain faults can be accommodated via controller reconfiguration in Paper V. Finally, the performance of the FDP framework is demonstrated via Lyapunov stability analysis and experimentally on the Caterpillar hydraulics test-bed in Paper VI by using an artificial immune system as an OLAD.
机译:故障诊断和诊断方案(FDP)对于复杂的工业系统是必需的,以防止由于组件故障而导致的计划外停机。连续时间的现有方案可用于诊断复杂的工业系统,并且尚未进行预测工作。因此,本文针对一类非线性离散时间系统进行了基于模型的故障预测和适应的系统设计方法。在六篇论文中介绍了这种不需要任何故障数据的设计方法。在第一篇论文中,通过假设所有状态都为零,针对一类具有状态故障的非线性系统开发了一种故障检测和预测(FDP)方案。可测量的。一种新颖的估计器用于检测故障。检测到后,在估计器中在线激活离散时间在线逼近器(OLAD)和鲁棒自适应项,其中OLAD学习未知的故障动态,而鲁棒自适应项可确保渐近性能保证。提出了一种新颖的更新定律来调整OLAD参数。另外,通过使用参数更新定律,可以得出达到先验选择的故障阈值的时间,以进行预测。随后,在论文II中使用FDP方案估计非线性输入-输出系统的状态并检测故障,在论文III中将FDP方案用于具有状态和传感器故障的非线性离散时间系统中;基于检测,一种新颖的故障隔离估计器是用于识别论文IV中的故障。结果表明,可以通过在Paper V中重新配置控制器来解决某些故障。最后,通过Lyapunov稳定性分析以及在Paper VI上的Caterpillar液压试验台上通过使用人工免疫系统作为实验来证明FDP框架的性能。奥拉德。

著录项

  • 作者

    Thumati, Balaje T.;

  • 作者单位

    Missouri University of Science and Technology.;

  • 授予单位 Missouri University of Science and Technology.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 310 p.
  • 总页数 310
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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