TY - GEN
T1 - Instantaneous torque ripple control and maximum power extraction in a permanent magnet reluctance generator driven wind energy conversion system
AU - Sunan, Erkan
AU - Raza, Kazmi Syed Muhammad
AU - Goto, Hiroki
AU - Guo, Hai Jiao
AU - Ichinokura, Osamu
PY - 2010/12/6
Y1 - 2010/12/6
N2 - A usual wind energy conversion system (WECS) suffers from significant amount of torque ripples even if the wind velocity remains constant. These torque ripples propagate mechanical stress in the turbine-generator drive train and may eventually lead to the failure of its various components. This research paper presents a unified control strategy which yields maximum power from WECS while minimizing the torque ripple through the instantaneous torque control. The permanent magnet reluctance generator (PMRG) employed in this research has a substantial advantage over a switched reluctance generator (SRG) that it does not require an external source for excitation. However similar to SRG, PMRG also exhibits large torque ripples. The torque ripple minimization in this research work has been achieved by controlling the torque distribution in the commuting phases of the generator. The generator torque is estimated through the pre-calculated phase reluctances obtained from the finite element analysis. The reference torque is generated by a maximum power point tracking (MPPT) algorithm in order to operate at the maximum efficiency. The effectiveness and superiority of the proposed unified control system has been established by comparing the results with the conventional controller that provides only MPPT.
AB - A usual wind energy conversion system (WECS) suffers from significant amount of torque ripples even if the wind velocity remains constant. These torque ripples propagate mechanical stress in the turbine-generator drive train and may eventually lead to the failure of its various components. This research paper presents a unified control strategy which yields maximum power from WECS while minimizing the torque ripple through the instantaneous torque control. The permanent magnet reluctance generator (PMRG) employed in this research has a substantial advantage over a switched reluctance generator (SRG) that it does not require an external source for excitation. However similar to SRG, PMRG also exhibits large torque ripples. The torque ripple minimization in this research work has been achieved by controlling the torque distribution in the commuting phases of the generator. The generator torque is estimated through the pre-calculated phase reluctances obtained from the finite element analysis. The reference torque is generated by a maximum power point tracking (MPPT) algorithm in order to operate at the maximum efficiency. The effectiveness and superiority of the proposed unified control system has been established by comparing the results with the conventional controller that provides only MPPT.
KW - Maximum power point tracking (MPPT)
KW - Permanent magnet reluctance generator (PMRG)
KW - Phase torque distribution
KW - Torque ripple control
UR - http://www.scopus.com/inward/record.url?scp=78649594393&partnerID=8YFLogxK
UR - http://www.scopus.com/inward/citedby.url?scp=78649594393&partnerID=8YFLogxK
U2 - 10.1109/ICELMACH.2010.5607896
DO - 10.1109/ICELMACH.2010.5607896
M3 - Conference contribution
AN - SCOPUS:78649594393
SN - 9781424441754
T3 - 19th International Conference on Electrical Machines, ICEM 2010
BT - 19th International Conference on Electrical Machines, ICEM 2010
T2 - 19th International Conference on Electrical Machines, ICEM 2010
Y2 - 6 September 2010 through 8 September 2010
ER -