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Vibration-Based Fault-Diagnosis of Rotating Machinery Relying on Frequency Transforms Time -

Moradi, Davood | 2011

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  1. Type of Document: M.Sc. Thesis
  2. Language: Farsi
  3. Document No: 42050 (08)
  4. University: Sharif University of Technology
  5. Department: Mechanical Engineering
  6. Advisor(s): Manzuri, Mohammad Taghi
  7. Abstract:
  8. This thesis presents several methods time-frequency based approach for classifying the vibration signals of rotatery machine. It uses the features extracted from the time-frequency distribution (TFD) of the vibration signal segments. Results of applying the method to a database of real signals reveal that, for the given classification task, the selected features consistently exhibit a high degree of discrimination between the vibration signals collected from healthy and fault machine. A comparison between the performances of the features extracted from several TFDs shows that the STFT slightly outperforms other reduced interference TFDs.


  9. Keywords:
  10. Diagnosis ; Neural Network ; Vibration ; Support Vector Machine (SVM) ; Time Frequency Transform

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