DocumentCode :
830193
Title :
Computation of magnetic flux density and iron losses by Fourier-Bessel and Fourier-Laurent series in an electromagnetic vibration damper
Author :
Bernot, F. ; Kauffmann, J.M. ; Guichet, M.T.
Author_Institution :
GEC Alsthom, Belfort, France
Volume :
140
Issue :
1
fYear :
1993
fDate :
1/1/1993 12:00:00 AM
Firstpage :
18
Lastpage :
26
Abstract :
A special machine, an electromagnetic vibration damper, is designed to create an attractive rotating force, in synchronism with the rotor. It consists of a laminated slotted stator and a massive, smooth, passive rotor. The aim of the authors is the computation of magnetic-flux density and iron losses by means of Fourier-Bessel and Fourier-Laurent series. The proposed analytical method assumes the stator currents to be surface located on the smooth airgap-stator boundary, and the machine is divided into three areas of constant permeability. Maxwell equations, with vector potential, lead to different solutions, including Fourier-Bessel or Fourier-Laurent series for space unknowns (radius and angle), where time appears as another Fourier series. Magnetic-flux density and iron losses come, respectively, from spatial and time derivatives. Iron losses, due to slot field pulsation losses, are added by means of a classical analytical formula
Keywords :
damping; electromagnetic devices; electromagnetism; losses; magnetic flux; rotors; stators; Fourier-Bessel series; Fourier-Laurent series; Maxwell equations; attractive rotating force; constant permeability; electromagnetic vibration damper; iron losses; laminated slotted stator; magnetic flux density; passive rotor; slot field pulsation losses; smooth airgap-stator boundary; stator currents; vector potential;
fLanguage :
English
Journal_Title :
Electric Power Applications, IEE Proceedings B
Publisher :
iet
ISSN :
0143-7038
Type :
jour
Filename :
182925
Link To Document :
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