New control strategy of stand-alone brushless doubly-fed induction generator for supplying unbalanced loads in ship shaft power generation system

Author(s):  
Yi Liu ◽  
Wei Xu ◽  
Fei Xiong ◽  
Frede Blaabjerg
2013 ◽  
Vol 732-733 ◽  
pp. 1005-1009
Author(s):  
Ya Deng ◽  
Shu Ju Hu ◽  
Yan Feng Meng ◽  
Hong Hua Xu

This paper proposes a cooperated control of the grid side converter (GSC) and rotor side converter (RSC) in doubly-fed induction generator (DFIG) wind power generation system under unbalanced grid condition. Mathematical model of doubly-fed induction generator (DFIG) and GSC under unbalanced grid voltage condition are investigated. Dual-dq current control strategies of the RSC and GSC under unbalanced grid condition are detailed studied. A cooperated control strategy of the GSC and RSC under unbalanced grid condition is proposed to provide enhance operation of DFIG system. The GSC is controlled to remove the total active power fluctuation of the system and RSC is controlled to eliminate the DFIG electromagnetic torque oscillation. Simulation based on Matlab/Simulink of a 1.5 MW DFIG prototype was carried out to validate the proposed cooperated control strategy.


2012 ◽  
Vol 542-543 ◽  
pp. 204-207 ◽  
Author(s):  
Mei Hua Zhao ◽  
Min Fan ◽  
Xiao Xin Wu

This paper proposed a control strategy for rotor side PWM converter based on the stator voltage orientation. First, the mathematical models of Doubly-fed Induction Generator (DFIG) in a synchronous rotating coordinate system is derived .Then designed the control scheme for rotor side PWM converter. Finally, experimental platform for double-fed wind power generation system based on Infineon's XC2785 microcontrollers is established. The experimental results verify the feasibility and correctness of the control strategy.


2014 ◽  
Vol 1070-1072 ◽  
pp. 264-269
Author(s):  
Bo Zhou ◽  
Heng Nian ◽  
Gan Li ◽  
Hua Bo Shi

If a doubly fed induction generator (DFIG) were to penetrate into a distributed generation system successfully, it should be able to adapt to autonomous and unbalanced conditions. To dealing with this situation, an indirect stator flux orientation (ISFO) control strategy with the droop method is introduced to cope with the positive sequence components of DFIG and provide the system with a solid voltage and frequency support. Meanwhile, a negative sequence droop is also proposed for DFIG so as to achieve a reasonable sharing of unbalanced loads and ensure the power supply quality at the point of common coupling (PCC). Finally, simulation results are provided to demonstrate the correctness of the suggested control strategy under autonomous and unbalanced conditions when DFIG is connected in parallel with a converter.


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