• DocumentCode
    1533667
  • Title

    Prediction of Mechanical Shaft Failures Due to Pulsating Torques of Variable-Frequency Drives

  • Author

    Song-Manguelle, Joseph ; Schröder, Stefan ; Geyer, Tobias ; Ekemb, Gabriel ; Nyobe-Yome, Jean-Maurice

  • Author_Institution
    GE Global Res. - Eur., Munich, Germany
  • Volume
    46
  • Issue
    5
  • fYear
    2010
  • Firstpage
    1979
  • Lastpage
    1988
  • Abstract
    Mechanical damage of rotating shafts has been reported for several years from various high-power applications. This paper shows that the variable frequency drive incorporated in a rotating shaft is one of the main root causes of mechanical-shaft failures. Simple analytical relationships show that the frequencies of the motor air-gap torque have a more significant impact on the mechanical-shaft failure than their magnitudes. Effects of mechanical damping are analytically derived and analyzed. Motor air-gap torque is successfully reconstructed using only the motor´s voltage and current, thus avoiding torque sensors, which are subject to failure and errors. Simple relationships between frequencies of current harmonics and frequencies of motor pulsating torques are proposed. For pulsewidth-modulated inverters (two and multilevel), possible drive operating points that might excite the shaft´s eigenmodes are predicted. Simulation results of four interleaved three-level neutral-point-clamped converters are analyzed for validation purposes. Experimental tests up to 35 MW are performed on a compressor test bed. The presented results confirm the accuracy of the proposed approach, which is particularly valuable for multimegawatt drive applications.
  • Keywords
    compressors; damping; eigenvalues and eigenfunctions; failure (mechanical); shafts; torque; variable speed drives; compressor test bed; eigenmodes; interleaved three-level neutral-point-clamped converters; mechanical damage; mechanical damping; mechanical shaft failure prediction; motor air-gap torque; motor pulsating torques; multimegawatt drive application; pulsewidth-modulated inverters; rotating shafts; torque sensors; variable frequency drive; variable-frequency drives; Damping; Failure analysis; Frequency; Mechanical sensors; Pulse inverters; Pulse width modulation inverters; Shafts; Testing; Torque; Voltage; Cement; liquid natural gas (LNG); mechanical resonance; medium voltage; mining; multilevel inverter; oil and gas; pulsating torque; pulsewidth modulator; torque harmonics; torsional vibration;
  • fLanguage
    English
  • Journal_Title
    Industry Applications, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-9994
  • Type

    jour

  • DOI
    10.1109/TIA.2010.2057397
  • Filename
    5508410