DocumentCode
1316226
Title
Vibration modes and acoustic noise in a four-phase switched reluctance motor
Author
Colby, Roy S. ; Mottier, François M. ; Miller, Timothy J E
Author_Institution
United Technol. Res. Center, East Hartford, CT, USA
Volume
32
Issue
6
fYear
1996
Firstpage
1357
Lastpage
1364
Abstract
Acoustic noise in the switched reluctance motor (SRM) is caused primarily by the deformation of the stator lamination stack. Acoustic noise is most severe when the periodic excitation of the SRM phases excites a natural vibration mode of the stack. The natural vibration modes and frequencies of a four-phase, 8/6 SRM are examined. Structural finite element analysis is used to compute the natural modes and frequencies. Impulse tests on the stator stack verify the calculations and show which modes are excited. Heuristic arguments are developed to predict the operating conditions that will excite the natural modes. Measurement of vibration while the machine is under load shows which operating conditions excite the natural modes and verifies the predictions. An approximate formula is derived to predict the frequency of the fundamental vibration mode in terms of lamination dimensions and material properties. The formula is validated by comparison with finite element calculations for several laminations, and hence is shown to be useful in design trade-off studies
Keywords
acoustic noise; approximation theory; finite element analysis; laminations; machine testing; machine theory; reluctance motors; stators; switching circuits; vibration measurement; vibrations; acoustic noise; approximate formula; design trade-off studies; four-phase switched reluctance motor; fundamental vibration mode frequency; heuristic arguments; impulse tests; natural vibration mode; operating conditions; stator lamination stack deformation; structural finite element analysis; vibration measurements; vibration modes; Acoustic noise; Acoustic testing; Finite element methods; Frequency; Impulse testing; Lamination; Reluctance machines; Reluctance motors; Stators; Vibration measurement;
fLanguage
English
Journal_Title
Industry Applications, IEEE Transactions on
Publisher
ieee
ISSN
0093-9994
Type
jour
DOI
10.1109/28.556639
Filename
556639
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