DocumentCode :
1071454
Title :
Model-Based Intelligent Fault Detection and Diagnosis for Mating Electric Connectors in Robotic Wiring Harness Assembly Systems
Author :
Huang, Jian ; Fukuda, Toshio ; Matsuno, Takayuki
Author_Institution :
Nagoya Univ., Nagoya
Volume :
13
Issue :
1
fYear :
2008
Firstpage :
86
Lastpage :
94
Abstract :
Mating a pair of electric connectors is one of the most important steps in a robotic wiring harness assembly system. A class of piecewise linear force models is proposed to describe both the successful and the faulty mating processes of connectors via an elaborate analysis of forces during different phases. The corresponding parameter estimation method of this model is also presented by adapting regular least-square estimation methods. A hierarchical fuzzy pattern matching multidensity classifier is proposed to realize fault detection and diagnosis for the mating process. This classifier shows good performance in diagnosis. A typical type of connectors is investigated in this paper. The results can easily be extended to other types. The effectiveness of proposed methods is finally confirmed through experiments.
Keywords :
electric connectors; fault diagnosis; fuzzy set theory; least mean squares methods; piecewise linear techniques; robotic assembly; electric connector mating process; fuzzy pattern matching multidensity classifier; least-square estimation; model-based intelligent fault detection; piecewise linear force model; robotic wiring harness assembly system; Assembly systems; Connectors; Electrical fault detection; Fault diagnosis; Intelligent robots; Parameter estimation; Pattern matching; Piecewise linear techniques; Robotic assembly; Wiring; Fault detection and diagnosis; fuzzy pattern matching; modeling; robotic wiring harness assembly;
fLanguage :
English
Journal_Title :
Mechatronics, IEEE/ASME Transactions on
Publisher :
ieee
ISSN :
1083-4435
Type :
jour
DOI :
10.1109/TMECH.2007.915063
Filename :
4453924
Link To Document :
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