[1]
Williamson S, Ferreira A C, Wallace A K. Generalized theory of the brushless doubly-fed machine Part1: analysis, J. IEE Proceedings on Electric Power Applications. 144 (1997) 111-122.
DOI: 10.1049/ip-epa:19971051
Google Scholar
[2]
Wang Xuefan. A new brushless doubly-fed machine with a wound-rotor changing-pole winding, J. Proceedings of the CSEE. 236 (2003) 108-127.
Google Scholar
[3]
Roberts P C, Mc Mahon R A, Tavner P J, etal. Performance of rotors for the brushless doubly-fed (induction) machine (BDFM), C. The 16th International Conference on Electrical Machines, Cracow, Poland, 1 (2004) 450-455.
DOI: 10.1109/icelmach.2010.5607908
Google Scholar
[4]
Yang Shunchang. Feature of electromagnetic design for brushless doubly-fed machines, J. Proceedings of the CSEE. 21 (2001) 107-110.
Google Scholar
[5]
Xiong Fei, Wang Xuefan, Zhang Jingwei, Kan Chaohao. Chain Equivalent Circuit Model of Wound-Rotor Brushless Doubly-Fed Machine, J. Transactions of China Electrotechnical Society. 25 (2010) 15-21.
Google Scholar
[6]
R. Li, A.K. Wallaee, R. Spee and Y. Wang. TWo-axis Model Develppment of Cage-Rotor Brushless Doubly-Fed Maehines, J. IEEE Transaction on Energy Conversion. 6 (1991) 453-460.
DOI: 10.1109/60.84321
Google Scholar
[7]
Wang Fengxiang, Zhang Fengge. Air-GaP Magnetic Field Analysis and Design Features of a Reluctance Maehine with Doubly-Fed Stator, J. Transactions of China Electrotechnical Society. 11 (1996) 6-10.
Google Scholar
[8]
M.S. Boger, A.K. Wallace, R. Spee, etal. General Pole Number Model of the Brushless Doubly-Fed Maehine, J. IEEE Transaetion on Industry APPlieation. 31 (1995) 1022-1028.
DOI: 10.1109/28.464515
Google Scholar
[9]
PENG Ling, LI Yongdong, CHAI Jianyun, YUAN Guofeng. Vector control of a doubly fed induction generator for stand-alone shaft generator systems, J. Tsinghua Univ (Sci &Tech). 49 (2009) 922-926.
DOI: 10.1109/icems12746.2007.4411960
Google Scholar