• DocumentCode
    1905687
  • Title

    Use of adaptive model-based reasoning for embedded diagnostics and redundancy management for fault tolerant systems

  • Author

    Nolan, Mary ; Giordano, John Paul

  • Author_Institution
    Giordano Autom. Corp., Sparta, NJ, USA
  • fYear
    1997
  • fDate
    22-25 Sep 1997
  • Firstpage
    455
  • Lastpage
    466
  • Abstract
    Safety, sustainability and mission criticality considerations often predicate the requirement for built-in fault tolerance in aerospace systems. Existing approaches to accomplishing fault tolerance typically focus on “brute-force” hardware redundancy and extensive, complex control logic developed as a “point solution” to effect reconfiguration actions. This paper describes the principal concepts and design implementation of an innovative approach for embedding an adaptive model-based diagnostic reasoning capability into a Fault Tolerant Remote Power Controller (FTRPC) to provide rapid fault diagnostics and reconfiguration of powerflow to critical users. A key aspect of this approach is that a systems engineering process was used to develop the reasoning capability that could be embedded in the system to accomplish fault detection, isolation, reconfiguration and recovery. The system engineering process, applied through an automated tool set, is generic in nature and can be applied to any system, as opposed to a “point solution” developed by intensive engineering efforts. The extensibility and applicability of the overall approach is a key technology accomplishment of the program. This paper describes the underlying concepts and implementation of embedding Diagnostician-on-a-Chip technology into a state-of-the-art remote power controller. This design was recently implemented in an Integrated Product Development environment under a NASA Phase II SBIR Program conducted under the auspices of Marshall Space Flight Center (MSFC). This new approach can revolutionize the implementation of health management for fault tolerant systems by developing a deterministic model-based diagnostic capability that is adaptive to a vast number of dynamic reconfiguration states
  • Keywords
    adaptive systems; aerospace control; automatic test equipment; built-in self test; concurrent engineering; diagnostic reasoning; fault diagnosis; knowledge based systems; power control; software engineering; space vehicle power plants; telecontrol; Marshall Space Flight Center; NASA; NASA Phase II SBIR Program; adaptive model-based diagnostic reasoning; aerospace systems; automated tool set; built-in fault tolerance; embedded diagnostics; fault detection; fault diagnostics; fault isolation; fault tolerant systems; health management; mission criticality; reconfiguration; recovery; redundancy management; remote power controller; safety; sustainability; systems engineering; Aerospace safety; Fault tolerance; Fault tolerant systems; Hardware; Inference mechanisms; Mission critical systems; Power engineering and energy; Power system modeling; Space technology; Systems engineering and theory;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    AUTOTESTCON, 97. 1997 IEEE Autotestcon Proceedings
  • Conference_Location
    Anaheim, CA
  • Print_ISBN
    0-7803-4162-7
  • Type

    conf

  • DOI
    10.1109/AUTEST.1997.633659
  • Filename
    633659