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Fault diagnosis of sensor networked structures with multiple faults using a virtual beam based approach

  • H. Wang
  • , X.J. Jing*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

This paper presents a virtual beam based approach suitable for conducting diagnosis of multiple faults in complex structures with limited prior knowledge of the faults involved. The “virtual beam”, a recently-proposed concept for fault detection in complex structures, is applied, which consists of a chain of sensors representing a vibration energy transmission path embedded in the complex structure. Statistical tests and adaptive threshold are particularly adopted for fault detection due to limited prior knowledge of normal operational conditions and fault conditions. To isolate the multiple faults within a specific structure or substructure of a more complex one, a ‘biased running’ strategy is developed and embedded within the bacterial-based optimization method to construct effective virtual beams and thus to improve the accuracy of localization. The proposed method is easy and efficient to implement for multiple fault localization with limited prior knowledge of normal conditions and faults. With extensive experimental results, it is validated that the proposed method can localize both single fault and multiple faults more effectively than the classical trust index subtract on negative add on positive (TI-SNAP) method.
Original languageEnglish
Pages (from-to)308-329
Number of pages22
JournalJournal of Sound and Vibration
Volume399
Online published27 Mar 2017
DOIs
Publication statusPublished - 7 Jul 2017
Externally publishedYes

Funding

This work was supported in part by the GRF project (15206514) of Hong Kong RGC, the NSFC Project (61374041) of China, and a grant from the Innovation and Technology Commission of the HKSAR Government to the Hong Kong Branch of National Rail Transit Electrification and Automation Engineering Technology Research Center(1-BBYA), and internal Research Grants of Hong Kong Polytechnic University.

Research Keywords

  • Fault detection
  • Multiple faults
  • Feature characterization
  • KOLMOGOROV-SMIRNOV TEST
  • ORBIT MODAL IDENTIFICATION
  • EXTENDED KALMAN FILTERS
  • BINARY DATA
  • EVENT LOCALIZATION
  • ASSEMBLY PROCESS
  • PLACEMENT
  • WSNS
  • ALGORITHM
  • TRACKING

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