• DocumentCode
    700684
  • Title

    Robust H/μ fault diagnosis observer design

  • Author

    Sadrnia, M.A. ; Patton, R.J. ; Chen, J.

  • Author_Institution
    Dept. of Electron. Eng., Univ. of Hull, Kingston upon Hull, UK
  • fYear
    1997
  • fDate
    1-7 July 1997
  • Firstpage
    1502
  • Lastpage
    1507
  • Abstract
    This paper presents a new approach to the design of a robust observer-based fault detection scheme for diagnosing incipient faults, called the H/ μ robust fault detection observer (RFDO) which takes into account of the robustness against disturbances and sensitivity to faults simultaneously. The approach has originated from the robust H/ μ estimator which minimises the effect of disturbance on the estimation error and subsequently on the diagnostic residual. The effect of faults on the diagnostic residual is maximised by the proper selection of the performance bound and the estimation weighting matrix of the H robust estimator. Depending on the class of uncertainty modelling considered, one or two Riccati equations are required for the H estimator design. The H estimator can be designed to be robust against; disturbance only, disturbance and parameter uncertainty only, and disturbance and a large variety of modelling errors. The μ robust estimator assumes a block diagonal structure for uncertainty and can produce less conservative design. The approach has been applied to a third-order system example chosen to demonstrate special design features. The results show that the fault detection scheme can detect incipient faults effectively even in the presence of disturbances and modelling errors.
  • Keywords
    H control; Riccati equations; fault diagnosis; fault tolerant control; matrix algebra; observers; robust control; uncertain systems; H robust estimator design; RFDO; Riccati equations; block diagonal structure; conservative design; diagnostic residual; disturbance effect minimisation; estimation error; fault disturbance robustness; fault sensitivity robustness; incipient fault diagnosis; modelling errors; parameter uncertainty robustness; performance bound selection; robust H/μ fault diagnosis observer design; robust observer-based fault detection scheme design; third-order system; uncertainty modelling; weighting matrix estimation; Fault detection; Mathematical model; Observers; Radio frequency; Robustness; Uncertainty; Fault detection observer; modelling uncertainty; robust H estimation;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Control Conference (ECC), 1997 European
  • Conference_Location
    Brussels
  • Print_ISBN
    978-3-9524269-0-6
  • Type

    conf

  • Filename
    7082314