Magnet Slotting Design to Reduce High Order Electromagnetic Force and Vibration of Permanent Magnet Motor
Abstract
:1. Introduction
2. Modulated Vibration Source Analysis
2.1. Analysis of Radial Electromagnetic Force
2.2. Generation of Modulation Vibrations
3. Research on Modulation Vibration Optimization Method
3.1. Principle of Analysis
3.2. Auxiliary Slot Shape Optimization
3.3. Results Analysis
3.4. Comparison of the Proposed and Traditional Methods
4. Experimental Verification
5. Conclusions
- The source of the electromagnetic force may be classified into three parts: the self-interaction of the permanent magnetic field, the self-interaction of the armature magnetic field, and the interaction between the armature magnetic field and the permanent magnetic field.The modulation effect of the electromagnetic force was investigated and the results showed that after adding slots to the motor stator, the higher-order electromagnetic force modulated to a lower-order vibration response, leading to significant vibrations.
- A new method of slotting on the surface of permanent magnets was proposed to reduce the higher order electromagnetic force of PM motors. Further, the principle of permanent magnet slotting to reduce flux density harmonics was qualitatively analyzed. It was found that varying the auxiliary slotting parameters leads to variations of each order of flux density harmonics. Finally, the optimal slotting noise reduction method was found by optimizing the slotting parameters. After slotting, the 70th-order electromagnetic force wave at 10fe was greatly reduced, thus reducing the vibration acceleration at 10fe, which has the greatest influence on the motor noise. In addition, this method ensures that the output torque is not significantly decreased.
- The accuracy of our finite element analysis and the correctness of the noise reduction method were empirically verified.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Items (Unit) | Value |
---|---|
Number of pole-pairs | 7 |
Number of slots | 12 |
Stator outer diameter (mm) | 68 |
Stator inner diameter (mm) | 10 |
Air-gap length (mm) | 1.2 |
PM thickness (mm) | 3.4 |
Core length (mm) | 22 |
PM length(mm) | 24 |
PM | Armature Winding | PM& Armature Winding | |||
---|---|---|---|---|---|
Spatial Order | Frequency | Spatial Order | Frequency | Spatial Order | Frequency |
(vR1 − vR2) p | (vR1 − vR2) fe | (vS1 − vS2) p | 0 | (vR − vS) p | (vR − 1) fe |
(vR1 + vR2) p | (vR1 + vR2) fe | (vS1 + vS2) p | 2fe | (vR + vS) p | (vR + 1) fe |
(vR1 − vR2) p ± 2z | (vR1 − vR2) fe | (vS1 − vS2) p ± 2Z | 0 | (vR − vS) p ± Z | (vR − 1) fe |
(vR1 + vR2) p ± 2z | (vR1 + vR2) fe | (vS1 + vS2) p ± 2Z | 2fe | (vR + vS) p ± Z | (vR + 1) fe |
(vR1 − vR2) p ± z | (vR1 − vR2) fe | (vS1 − vS2) p ± Z | 0 | (vR − vS) p ± 2Z | (vR − 1) fe |
(vR1 + vR2) p ± z | (vR1 + vR2) fe | (vS1 + vS2) p ± Z | 2fe | (vR + vS) p ± 2Z | (vR + 1) fe |
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Wang, Z.; Tian, W.; Zhao, W. Magnet Slotting Design to Reduce High Order Electromagnetic Force and Vibration of Permanent Magnet Motor. Energies 2022, 15, 8684. https://doi.org/10.3390/en15228684
Wang Z, Tian W, Zhao W. Magnet Slotting Design to Reduce High Order Electromagnetic Force and Vibration of Permanent Magnet Motor. Energies. 2022; 15(22):8684. https://doi.org/10.3390/en15228684
Chicago/Turabian StyleWang, Zifei, Wei Tian, and Wenxiang Zhao. 2022. "Magnet Slotting Design to Reduce High Order Electromagnetic Force and Vibration of Permanent Magnet Motor" Energies 15, no. 22: 8684. https://doi.org/10.3390/en15228684
APA StyleWang, Z., Tian, W., & Zhao, W. (2022). Magnet Slotting Design to Reduce High Order Electromagnetic Force and Vibration of Permanent Magnet Motor. Energies, 15(22), 8684. https://doi.org/10.3390/en15228684