TY - JOUR
T1 - Flux Modulation Principles of DC-Biased Sinusoidal Current Vernier Reluctance Machines
AU - Jia, Shaofeng
AU - Qu, Ronghai
AU - Kong, Wubin
AU - Li, Dawei
AU - Li, Jian
N1 - Publisher Copyright:
© 1972-2012 IEEE.
PY - 2018/7/1
Y1 - 2018/7/1
N2 - DC-biased sinusoidal current vernier reluctance machines (dc-biased VRMs) have a doubly salient structure, and their phase currents contain an alternating current (ac) component and a direct current (dc) component. Hence, their main features are one set of concentrated windings compared with variable flux reluctance machines, low vibration and noise due to smooth current, compared with switched reluctance machines, and robust rotor structure. Besides, its achievable high slot fill factor can improve the torque density further. In this paper, based on the flux modulation principles, the torque production mechanism of dc-biased VRMs is analyzed, and two slot combinations of 12/8 and 12/10 are proposed. First, the machine topology and inverter main circuit are illustrated. Second, the torque production mechanism is explained. Furthermore, the inductance characteristic, optimal current configuration for maximum torque and lowest torque ripple are analyzed theoretically and by the finite-element analysis. Finally, one prototype was designed and built, and the proposed analysis is validated by the experimental results.
AB - DC-biased sinusoidal current vernier reluctance machines (dc-biased VRMs) have a doubly salient structure, and their phase currents contain an alternating current (ac) component and a direct current (dc) component. Hence, their main features are one set of concentrated windings compared with variable flux reluctance machines, low vibration and noise due to smooth current, compared with switched reluctance machines, and robust rotor structure. Besides, its achievable high slot fill factor can improve the torque density further. In this paper, based on the flux modulation principles, the torque production mechanism of dc-biased VRMs is analyzed, and two slot combinations of 12/8 and 12/10 are proposed. First, the machine topology and inverter main circuit are illustrated. Second, the torque production mechanism is explained. Furthermore, the inductance characteristic, optimal current configuration for maximum torque and lowest torque ripple are analyzed theoretically and by the finite-element analysis. Finally, one prototype was designed and built, and the proposed analysis is validated by the experimental results.
KW - Concentrated winding
KW - direct current (dc)-biased sinusoidal current
KW - reluctance machines
KW - torque ripple
KW - vernier reluctance machines
UR - https://www.scopus.com/pages/publications/85043403322
U2 - 10.1109/TIA.2018.2811719
DO - 10.1109/TIA.2018.2811719
M3 - 文章
AN - SCOPUS:85043403322
SN - 0093-9994
VL - 54
SP - 3187
EP - 3196
JO - IEEE Transactions on Industry Applications
JF - IEEE Transactions on Industry Applications
IS - 4
ER -