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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()
新型双转子双定子永磁同步发电机的磁场及耦合效应分析
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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
新型双转子双定子永磁同步发电机的磁场及耦合效应分析
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
付明志1 秦猛1 郭小江1 陈雨菡2 林鹤云2
1华能清洁能源技术研究院, 北京100032; 2东南大学电气工程学院, 南京210096
Keywords:
dual-rotor dual-stator(DRDS) electromagnetic characteristics permanent magnet synchronous generator(PMSG) magnetic field finite element analysis coupling effect
双转子双定子 电磁特性 永磁同步发电机 磁场 有限元分析 耦合效应
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.
为了解决目前海上风力发电机存在的成本高、体积大等问题, 提出一种新型双转子双定子永磁同步发电机(DRDS-PMSG).建立了发电机的等效磁路模型, 采用有限元分析方法评估了发电机的电磁特性及内外电机的耦合效应, 部分仿真结果得到了实验验证.仿真结果表明:随着内、外永磁体相对位置的改变, 电机等效磁路存在3种典型情况, 并可通过耦合系数对耦合区域的等效磁阻进行描述;内、外电机的耦合效应体现在齿槽转矩、电磁转矩等电磁特性上, 内、外电机的齿槽转矩峰峰值分别为0.52和1.64 kN·m, 电磁转矩平均值分别为11.65和27.09 kN·m, 转矩脉动分别为6.02%和4.12%;总体来看, 内、外电机之间存在一定程度的耦合, 但该耦合效应被隔磁环有效削弱.

References:

[1] Wang X P, Zhao J, Wang B H, et al. Predictive current control system of PMSM based on LADRC[J].Journal of Southeast University(English Edition), 2022, 38(3): 227-234. DOI:10.3969/j.issn. 1003-7985.2022.03.003.
[2] Lin H Y, Guo Y J, Sun B B, et al. Overview of offshore wind power key technologies[J]. Journal of Southeast University(Natural Science Edition), 2011, 41(4): 882-888. DOI:10.3969/j.issn.1001-0505.2011.04.042. (in Chinese)
[3] Zhang P Y, Ding H Y, Le C H, et al. Towing characteristics of large-scale composite bucket foundation for offshore wind turbines[J].Journal of Southeast University(English Edition), 2013, 29(3): 300-304. DOI:10.3969/j.issn.1003-7985.2013.03.013.
[4] Kumar R R, Devi P, Chetri C, et al. Design and characteristics investigation of novel dual stator pseudo-pole five-phase permanent magnet synchronous generator for wind power application[J].IEEE Access, 2020, 8: 175788-175804. DOI: 10.1109/ACCESS.2020.3025842.
[5] Kim G H, Jung T U. Stator teeth pairing design for reduction of cogging torque of dual RFPM generator[C]//2020 IEEE 19th Biennial Conference on Electromagnetic Field Computation(CEFC). Pisa, Italy, 2020: 1-4. DOI: 10.1109/CEFC46938.2020.9451318.
[6] Pramurti A R, Firmansyah E, Suharyanto. Reduction on cogging torque in dual stator radial flux permanent magnet generator for low speed wind turbine[C]//2016 3rd International Conference on Information Technology, Computer, and Electrical Engineering(ICITACEE). Semarang, Indonesia, 2017: 1-4. DOI: 10.1109/ICITACEE.2016.7892434.
[7] Wei S H, Xu Y L, Tian X. Presentation of a double-stator axial-flux permanent-magnet disk motor with soft magnetic composite cores and its cogging torque reduction[C]//2019 22nd International Conference on Electrical Machines and Systems(ICEMS). Harbin, China, 2019: 1-4. DOI: 10.1109/ICEMS.2019.8921831.
[8] Yu J C, Liu C H. Multi-objective optimization of a double-stator hybrid-excited flux-switching permanent-magnet machine[J].IEEE Transactions on Energy Conversion, 2020, 35(1): 312-323. DOI: 10.1109/TEC.2019.2932953.
[9] Zhang K H, Fang Y T, Huang X Y, et al. Design of a dual-stator superconducting permanent magnet wind power generator with different rotor configuration[C]//2016 IEEE Conference on Electromagnetic Field Computation(CEFC). Miami, FL, USA, 2016: 1. DOI: 10.1109/CEFC.2016.7816300.
[10] Allahyari A, Torkaman H. A novel high-performance consequent pole dual rotor permanent magnet vernier machine[J].IEEE Transactions on Energy Conversion, 2020, 35(3): 1238-1246. DOI: 10.1109/TEC.2020.2980146.
[11] Jia Z, Lin H Y, Fang S H, et al. Cogging torque optimization of novel transverse flux permanent magnet generator with double C-hoop stator[J].IEEE Transactions on Magnetics, 2015, 51(11): 8208104. DOI: 10.1109/TMAG.2015.2453052.
[12] Asefi T, Faiz J, Khan M A. Design of dual rotor axial flux permanent magnet generators with ferrite and rare-earth magnets[C]//2018 IEEE 18th International Power Electronics and Motion Control Conference(PEMC). Budapest, Hungary, 2018: 531-538. DOI: 10.1109/EPEPEMC.2018.8522004.
[13] Ali Noroozi M, Milimonfared J, Yazdanpanah R. Novel double-sided disk-shaped passive-rotor transverse-flux permanent magnet generators for wind turbine applications[C]//2020 11th Power Electronics, Drive Systems, and Technologies Conference(PEDSTC). Tehran, Iran, 2020: 1-4. DOI: 10.1109/PEDSTC49159.2020.9088467.
[14] Hassannia A. Conceptual design of fractional slot concentrated winding dual-rotor double-speed synchronous motor[J].IEEE Transactions on Energy Conversion, 2020, 35(2): 986-993. DOI: 10.1109/TEC.2019.2956073.
[15] Xu P F, Shi K, Sun Y X, et al. Effect of pole number and slot number on performance of dual rotor permanent magnet wind power generator using ferrite magnets[J].AIP Advances, 2017, 7(5): 056631. DOI: 10.1063/1.4974497.
[16] Wang Q S, Niu S X, Yang L. Design optimization of a novel scale-down hybrid-excited dual permanent magnet generator for direct-drive wind power application[J].IEEE Transactions on Magnetics, 2018, 54(3): 8100904. DOI: 10.1109/TMAG.2017.2758021.
[17] Kumar P, Reza M M, Srivastava R K. Analytical method for calculation of cogging torque reduction due to slot shifting in a dual stator dual rotor permanent magnet machine with semi-closed slots[J].Progress In Electromagnetics Research M, 2018, 70: 99-108. DOI: 10.2528/pierm18050506.
[18] Akinci R, Polat M. Design and optimization with genetic algorithm of double rotor axial flux permanent magnet synchronous motor(TORUS type)for electrical vehicles[C]//2019 4th International Conference on Power Electronics and their Applications(ICPEA). Elazig, Turkey, 2019: 1-5. DOI: 10.1109/ICPEA1.2019.8911175.
[19] Yang K, Zhao F, Wang Q L, et al. Optimization design of a dual-rotor axial-flux permanent magnet vernier machine based on genetic algorithm[C]//2019 22nd International Conference on Electrical Machines and Systems(ICEMS). Harbin, China, 2019: 1-5. DOI: 10.1109/ICEMS.2019.8922135.
[20] Ullah W, Khan F, Hussain S. Dual mechanical port power distribution in dual rotor permanent magnet flux switching generator for counter-rotating wind turbine applications[J].IET Renewable Power Generation, 2022, 16(6): 1087-1278. DOI: 10.1049/rpg2.12447.
[21] Luo X, Niu S X. A novel contra-rotating power split transmission system for wind power generation and its dual MPPT control strategy[J].IEEE Transactions on Power Electronics, 2017, 32(9): 6924-6935. DOI: 10.1109/TPEL.2016.2629021.
[22] Muteba M. Dual stator dual rotor interior permanent magnet synchronous motor for hybrid electric vehicles[C]//2020 IEEE Transportation Electrification Conference & Expo(ITEC). Chicago, IL, USA, 2020: 462-465. DOI: 10.1109/ITEC48692.2020.9161707.
[23] Ullah W, Khan F, Hussain S. A comparative study of dual stator with novel dual rotor permanent magnet flux switching generator for counter rotating wind turbine applications[J].IEEE Access, 2022, 10: 8243-8261. DOI: 10.1109/ACCESS.2022.3143166.
[24] Kumar R R, Kumari A, Dutta S, et al. Design and comparative analysis of halbach array and surface mounted magnetic pole dual rotor de-coupled stator six-phase permanent magnet synchronous generator for wind power application[C]//2020 IEEE International Conference on Power Electronics, Drives and Energy Systems(PEDES). Jaipur, India, 2020: 1-6. DOI:10.1109/PEDES49360.2020.9379803.

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