DocumentCode :
62011
Title :
Physics-Based Precursor Wiring Diagnostics for Shielded-Twisted-Pair Cable
Author :
Schuet, Stefan ; Timucin, Dogan ; Wheeler, Kevin
Author_Institution :
NASA Ames Res. Center, Mountain View, CA, USA
Volume :
64
Issue :
2
fYear :
2015
fDate :
Feb. 2015
Firstpage :
378
Lastpage :
391
Abstract :
The capability to locate and characterize precursor wiring faults, such as chafing or pinching potentially enables preventive maintenance well before hard failures occur, thus maximizing system functionality and safety while minimizing out-of-service time. Toward this goal, results are presented on the application of a deterministic Bayesian inference procedure well suited for detecting chafing and pinch faults through the use of a newly developed physics-based model for shielded-twisted-pair cable. This method is significantly faster than more traditional nondeterministic Bayesian methods, such as Markov chain Monte Carlo, and retains many of the desirable features inherent to the Bayesian approach. These include the ability to quantify estimation uncertainty and model evidence in probabilistic terms, which then enables the study and design of noise-tolerant fault detection algorithms capable of classifying different types of faults. The fault parameter estimation results from both laboratory and field measurements on a C17 jet engine are shown to demonstrate the achievable model fidelity and the overall viability of the approach.
Keywords :
Bayes methods; belief networks; cable sheathing; computational electromagnetics; electrical safety; electromagnetic shielding; fault diagnosis; inference mechanisms; jet engines; measurement uncertainty; minimax techniques; preventive maintenance; twisted pair cables; wiring; C17 jet engine; chafing fault detection; deterministic Bayesian inference procedure; fault classification; fault parameter estimation; measurement uncertainty; model evidence; noise tolerant fault detection algorithm; nondeterministic Bayesian method; out-of-service time minimization; physics-based model; physics-based precursor wiring diagnostics; pinch fault detection; precursor wiring faults; preventive maintenance; safety maximization; shielded twisted pair cable; system functionality maximization; Bayes methods; Cable shielding; Fault detection; Impedance; Mathematical model; Uncertainty; Wiring; Bayesian methods; electromagnetic modeling; fault diagnosis; measurement uncertainty; optimization methods; probability; scattering parameters; wiring; wiring.;
fLanguage :
English
Journal_Title :
Instrumentation and Measurement, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9456
Type :
jour
DOI :
10.1109/TIM.2014.2347216
Filename :
6894570
Link To Document :
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