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[1] Fu Mingzhi, Qin Meng, Guo Xiaojiang, Chen Yuhan, et al. Magnetic field and coupling effect analysis of a novel dual-rotor dual-stator permanent magnet synchronous generator [J]. Journal of Southeast University (English Edition), 2024, 40 (1): 89-96. [doi:10.3969/j.issn.1003-7985.2024.01.010]
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Magnetic field and coupling effect analysis of a novel dual-rotor dual-stator permanent magnet synchronous generator()
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Journal of Southeast University (English Edition)[ISSN:1003-7985/CN:32-1325/N]

Volumn:
40
Issue:
2024 1
Page:
89-96
Research Field:
Electrical Engineering
Publishing date:
2024-03-20

Info

Title:
Magnetic field and coupling effect analysis of a novel dual-rotor dual-stator permanent magnet synchronous generator
Author(s):
Fu Mingzhi1 Qin Meng1 Guo Xiaojiang1 Chen Yuhan2 Lin Heyun2
1Huaneng Clean Energy Research Institute, Beijing 100032, China
2School of Electrical Engineering, Southeast University, Nanjing 210096, China
Keywords:
dual-rotor dual-stator(DRDS) electromagnetic characteristics permanent magnet synchronous generator(PMSG) magnetic field finite element analysis coupling effect
PACS:
TM315
DOI:
10.3969/j.issn.1003-7985.2024.01.010
Abstract:
To tackle the issue of high cost and large volume for offshore wind power generators, a novel dual-rotor dual-stator permanent magnet synchronous generator(DRDS-PMSG)is proposed. The equivalent magnetic circuit model of the generator is established, finite element analysis is performed to evaluate the electromagnetic characteristics and coupling effect, and some simulation results are verified through experiment. The simulation analysis results show that three typical equivalent magnetic circuits exist with changed relative positions between the inner and outer magnets, and the equivalent reluctance of the coupling region can be described using a coupling coefficient. The coupling effect of inner and outer machines is revealed by electromagnetic characteristics, including cogging torque and electromagnetic torque. The peak-to-peak values of the cogging torque of inner and outer machines are 0.52 and 1.64 kN·m, the average values of electromagnetic torque are 11.65 and 27.09 kN·m, and the torque ripples are 6.02% and 4.12%, respectively. In general, a coupling effect exists between the inner and outer machines; however, the coupling effect is effectively reduced by the flux barrier.

References:

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Memo

Memo:
Biography: Fu Mingzhi(1979—), male, master, senior engineer, mz_fu@qny.chng.com.cn.
Foundation item: National Key Research and Development Plan of China(No. 2020YFB1506603).
Citation: Fu Mingzhi, Qin Meng, Guo Xiaojiang, et al.Magnetic field and coupling effect analysis of a novel dual-rotor dual-stator permanent magnet synchronous generator[J].Journal of Southeast University(English Edition), 2024, 40(1):89-96.DOI:10.3969/j.issn.1003-7985.2024.01.010.
Last Update: 2024-03-20