DocumentCode :
2759586
Title :
PCA and Local-Wave Method Analysis on Fault Diagnosis of Diesel
Author :
Yuan Yu ; Baoliang, Li ; Jingshan, Shang
Author_Institution :
Sch. of Mech. Eng., Dalian JiaoTong Univ., Dalian, China
Volume :
2
fYear :
2009
fDate :
25-26 July 2009
Firstpage :
317
Lastpage :
321
Abstract :
Extracting features from the vibration signals has been recognized to be a difficult issue, essentially because of the strong nonlinearity and nonstationary of the signals. In this paper, local wave method is combined with principal component analysis (PCA) and nonlinear dynamics as a model of feature extraction. In this model, reconstruction theory was used to extract dynamic space from time series, PCA was applied to reduce the dimension of the space and make the fault information clearly. In the end, an example of practical application shows that the dimension of the space of the vibration signal of 6BB1 diesel engine is reduced and the fault information is made clear by using the model above, the practicality is explained in reason. The example prove that this integrated method is feasible.
Keywords :
diesel engines; fault diagnosis; feature extraction; mechanical engineering computing; principal component analysis; signal reconstruction; time series; vibrations; 6BB1 diesel engine; PCA; dimensionality reduction; fault diagnosis; feature extraction; local-wave method analysis; nonlinear dynamics; phase-space reconstruction theory; principal component analysis; time series; vibration signal nonlinearity; vibration signal nonstationary; Computer science; Data mining; Delay effects; Fault diagnosis; Feature extraction; Information analysis; Information technology; Nonlinear dynamical systems; Principal component analysis; Vibrations; PCA; diesel; extract feature; local wave; nonlinear;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Information Technology and Computer Science, 2009. ITCS 2009. International Conference on
Conference_Location :
Kiev
Print_ISBN :
978-0-7695-3688-0
Type :
conf
DOI :
10.1109/ITCS.2009.201
Filename :
5190243
Link To Document :
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