Influence of Magnetic Pole Stepping Combined with Auxiliary Stator Slots on the Stability of Dual-Rotor Disc Motors
Abstract
:1. Introduction
2. Methods
2.1. No-Load Back EMF Waveform Characteristics
2.2. Cogging Torque Characteristics
3. Results and Discussion
3.1. No-Load Back EMF Waveform Optimization
3.2. Cogging Torque Optimization
3.3. Comparison of Motor Performance before and after Optimization
4. Conclusions
- When the permanent magnet is the second-order magnetic pole, the no-load back EMF distortion rate of the motor is minimized from the previous 4.69% to 1.9%.
- Two rectangular auxiliary slots opened by the stator teeth are studied after the improvement in the magnetic pole structure. When the slot width is 2 mm, the slot depth is 0.8 mm, and the angle between the centerline of the auxiliary slots is at an angle of 3° with the centerline of the stator teeth, the peak motor cogging torque is reduced to 0.75 N·m, and the cogging torque is obviously weakened; the is reduced to 1.87%, and the no-load back electromotive force fundamental content rises obviously, and the multiple harmonic content is reduced.
- After the simultaneous improvement in the rotor pole structure and stator tooth structure, the motor output torque pulsation of the motor is reduced, the pulsation coefficient is reduced from 25.27% to 9.79%, and the average value of the torque is reduced from 10 N·m to 9.5 N·m; this is related to the fact that the stepped magnet structure reduces the volume of the permanent magnets on the basis of the original magnets structure.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Nomenclature
Total harmonic distortion | EMF | Electromotive force | |
The fundamental component of the no-load back electromotive force | The odd-order harmonic components of the no-load back electromotive force | ||
The magnetic field energy | The position angle | ||
The distribution function of air-gap magnetic flux density | The magnetic permeability of the air gap | ||
The mechanical angle of rotation of the motor | The number of pole pairs in the rotor | ||
The remanent magnetization of the permanent magnet | The pole arc coefficient of the permanent magnet | ||
The number of stator slots | The Fourier coefficient of the magnetic conductivity function | ||
The outer radius of the armature | The inner radius of the stator yoke | ||
The axial length of the armature core | The average diameter of the motor | ||
The effective length of the armature | The effective air-gap length of the motor | ||
Number of cycles of the fundamental wave of the cogging torque | Air-gap length distribution function before stator slotting | ||
The air-gap length between the stator and rotor | The depth of the stator slot | ||
The width of the stator tooth | The distance between the centerlines of two adjacent stator teeth | ||
a | The width of the auxiliary slot | b | The depth of the auxiliary slot |
c | The distance between the outer edge of the auxiliary slot and the corresponding stator tooth edge | d | The distance between the inner edges of the two auxiliary slots |
The angle between the centerline of the stator tooth and the centerline of one of the auxiliary slots | The number of pole steps |
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Motor Parameters | Value |
---|---|
Speed/(r/min) | 300 |
Magnetic pole outer diameter/mm | 240 |
Magnetic pole inner diameter/mm | 140 |
Air-gap length/mm | 1 |
Magnet thickness/mm | 5 |
Polar arc coefficient | 0.7 |
Number of poles | 20 |
Number of slots | 24 |
Motor Parameters | Before Optimization | After Optimization |
---|---|---|
No-load back EMF/V | 20.4 | 19.6 |
THD | 4.69% | 1.87% |
Cogging torque peak/N·m | 2.8 | 0.75 |
Output torque peak/N·m | 12.74 | 10.49 |
Average output torque/N·m | 10 | 9.50 |
Torque ripple coefficient | 25.27% | 9.79% |
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Guo, T.; Cao, Y.; Qian, Z.; Xia, J.; Kang, X.; Xia, G.; Yang, Y.; Zhang, W.; Wang, Y.; Wu, G. Influence of Magnetic Pole Stepping Combined with Auxiliary Stator Slots on the Stability of Dual-Rotor Disc Motors. Energies 2023, 16, 7512. https://doi.org/10.3390/en16227512
Guo T, Cao Y, Qian Z, Xia J, Kang X, Xia G, Yang Y, Zhang W, Wang Y, Wu G. Influence of Magnetic Pole Stepping Combined with Auxiliary Stator Slots on the Stability of Dual-Rotor Disc Motors. Energies. 2023; 16(22):7512. https://doi.org/10.3390/en16227512
Chicago/Turabian StyleGuo, Tong, Yang Cao, Zhong Qian, Jianping Xia, Xuhong Kang, Guanben Xia, Yanan Yang, Wendong Zhang, Yujie Wang, and Guoqing Wu. 2023. "Influence of Magnetic Pole Stepping Combined with Auxiliary Stator Slots on the Stability of Dual-Rotor Disc Motors" Energies 16, no. 22: 7512. https://doi.org/10.3390/en16227512
APA StyleGuo, T., Cao, Y., Qian, Z., Xia, J., Kang, X., Xia, G., Yang, Y., Zhang, W., Wang, Y., & Wu, G. (2023). Influence of Magnetic Pole Stepping Combined with Auxiliary Stator Slots on the Stability of Dual-Rotor Disc Motors. Energies, 16(22), 7512. https://doi.org/10.3390/en16227512