Open Access
Radial force dynamic current compensation method of single winding bearingless flywheel motor
Author(s) -
Yuan Ye,
Sun Yukun,
Huang Yonghong
Publication year - 2015
Publication title -
iet power electronics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.637
H-Index - 77
eISSN - 1755-4543
pISSN - 1755-4535
DOI - 10.1049/iet-pel.2014.0502
Subject(s) - flywheel , control theory (sociology) , rotor (electric) , stator , torque , switched reluctance motor , flywheel energy storage , compensation (psychology) , electromagnetic coil , power (physics) , engineering , energy storage , computer science , physics , automotive engineering , mechanical engineering , electrical engineering , psychology , control (management) , artificial intelligence , psychoanalysis , quantum mechanics , thermodynamics
The position of rotor and stator in switched reluctance motor is exchanged to obtain the single winding bearingless flywheel motor (SWBFM), which is more useful for flywheel energy storage with outer rotor. Compared with the switched reluctance motor, bearingless flywheel motor has obvious advantages in cost savings and consumption reducing. The radial force and torque are produced by single windings and the outer rotor could directly drive the flywheel with less mechanical transmission. In this study, a mathematical model of SWBFM is established based on Maxwell tensor method, in addition, the correction factor is present to obtain an accurate mathematical model based on finite element. In energy storage keeping state, the flywheel energy storage system could run on rated speed without the power input. Considering the relationship between the angle and the radial force coefficient, and the difference of radial force coefficient with each tooth pole, radial force dynamic current compensation methods of without β direction constraint and β direction constraint are present to ensure the SWBFM stable suspension under the condition of winding open‐circuit fault. The results show that the proposed compensation methods are feasible and have high precision.