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References

1 
P. Verma, S. K, B. Dwivedi, 2023, A Self-Regulating Virtual Synchronous Generator Control of Doubly Fed Induction Generator-Wind Farms, IEEE Canadian Journal of Electrical and Computer Engineering, Vol. 46, No. 1, pp. 35-43DOI
2 
G. -H. Kim, 2013, Design and Characteristic Analysis of a 10 kW Superconducting Synchronous Generator for Wind Turbines, IEEE Trans. Appl. Supercond., Vol. 23, No. 3, pp. 5202405-5202405DOI
3 
S. -H. Lee, Y. -J. Kim, K. -S. Lee, S. -J. Kim, 2016, Multiobjective Optimization Design of Small-Scale Wind Power Generator With Outer Rotor Based on Box-Behnken Design, IEEE Trans. Appl. Supercond., Vol. 26, No. 4, pp. 1-5DOI
4 
Ji-Young Lee, 2012, Design of an Axial Flux Permanent Magnet Generator for a Portable Hand Crank Generating System, IEEE Trans. Magn., Vol. 48, No. 11DOI
5 
M. -F. Hsieh, Y. -H. Yeh, 2013, Rotor Eccentricity Effect on Cogging Torque of PM Generators for Small Wind Turbines, IEEE Trans. Magn., Vol. 49, No. 5, pp. 1897-1900DOI
6 
H. Polinder, J. A. Ferreira, B. B. Jensen, A. B. Abrahamsen, K. Atallah, R. A. McMahon, 2013, Trends in Wind Turbine Generator Systems, IEEE J. Emerg. Sel. Topics Power Electron., Vol. 1, No. 3, pp. 174-185DOI
7 
W. Li, H. Qiu, X. Zhang, R. Yi, 2012, Influence of copper plating on electromagnetic and temperature fields in a high-speed permanent magnet generator, IEEE Trans. Magn., Vol. 48, No. 8, pp. 2247-2253DOI
8 
J. Li, K. T. Chau, J. Jiang, C. Liu, W. Li, 2010, A new efficient permanent magnet Vernier machine for wind power generation, IEEE Trans. Magn., Vol. 46, No. 6, pp. 1475-1478DOI
9 
M. Flankl, A. Tuysuz, J. W. Kolar, 2017, Cogging Torque Shape Optimization of an Integrated Generator for Electromechanical Energy Harvesting, IEEE Trans. Ind. Electron, Vol. 64, No. 12, pp. 9806-9814DOI
10 
R. Nasiri-Zarandi, A. M. Ajamloo, K. Abbaszadeh, 2020, Design Optimization of a Transverse Flux Halbach-Array PM Generator for Direct Drive Wind Turbines, IEEE Trans. Energy Convers., Vol. 35, No. 3, pp. 1485-1493DOI
11 
R. Kumar, 2020, A Review on Transverse Flux Permanent Magnet Machines for Wind Power Applications, IEEE Access, Vol. 8, pp. 216543-216565DOI
12 
A. Selema, 2020, Development of a Three-Phase Dual-Rotor Magnetless Flux Switching Generator for Low Power Wind Turbines, IEEE Trans. Energy Convers., Vol. 35, No. 2, pp. 828-836DOI
13 
W. Gul, Q. Gao, W. Lenwari, 2020, Optimal Design of a 5-MW Double-Stator Single-Rotor PMSG for Offshore Direct Drive Wind Turbines, IEEE Trans. Ind. Appl., Vol. 56, No. 1, pp. 216-225DOI
14 
F. Meier, 2008, Permanent-Magnet Synchronous Machines with Non-Overlapping Concentrated Windings for Low-Speed Direct-Drive Applications, Doctoral Thesis, Vol. royal institute of technology, No. StockholmGoogle Search
15 
Sang-Moon Hwang, 2000, Cogging torque and acoustic noise reduction in permanent magnet motors by teeth pairing, IEEE Trans. Magn., Vol. 36, No. 5, pp. 3144-3146DOI
16 
JAE-Nam Bae, 2010, Permanent Magnet Synchronous Machine Design through an Automatic Selection of the Specific Loadings, Ph.D. Thesis, Dept. Elect. Eng., Vol. hanyang univ., No. seoul, republic of koreaGoogle Search