Enhancing Power Quality in Distributed Energy Resource Systems Through Permanent Magnet Retrofitting of Single-Phase Induction Motors
Abstract
1. Introduction
2. A Permanent Magnetization Design Method for the Single-Phase Induction Motor
2.1. The Principle of the Single-Phase Permanent Magnet Motor
2.2. The Permanent Magnetization Design Process of the Single-Phase Induction Motor
3. Finite Element Simulation of the Single-Phase Permanent Magnet Motor
4. Research on the Starting Performance of the Single-Phase Permanent Magnet Motors
4.1. Analysis of Torque Characteristics During the Starting Process of Single-Phase Permanent Magnet Motors
4.2. Starting Performance Factors in Single-Phase Permanent Magnet Motors
4.2.1. Effect of Back-EMF on Starting Performance
4.2.2. Influence of Auxiliary Winding Series Capacitance on Starting Performance
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Parameter | Value |
---|---|
rated voltage (V) | 220 |
rated power (W) | 300 |
rated speed (rpm) | 1500 |
stator outer diameter (mm) | 110 |
width of PM (mm) | 28 |
thickness of PM (mm) | 3 |
Speed of Rotor Field | Speed of Stator Field | ||||
---|---|---|---|---|---|
n1 | −n1 | (1 − 2 s)n1 | (3 − 2 s)n1 | (1 − s)n1 | |
n1 | positive sequence asynchronous torque | torque ripple | torque ripple | torque ripple | torque ripple |
-n1 | torque ripple | negative sequence asynchronous torque | torque ripple | torque ripple | torque ripple |
(1 − 2 s)n1 | torque ripple | torque ripple | positive sequence reluctance torque | torque ripple | torque ripple |
(3 − 2 s)n1 | torque ripple | torque ripple | torque ripple | negative sequence reluctance torque | torque ripple |
(1 − s)n1 | torque ripple | torque ripple | torque ripple | torque ripple | generative braking torque |
Capacitor Values | Maximum Load Starting Torque |
---|---|
15 μF | 0.8 Nm |
20 μF | 1.2 Nm |
25 μF | 1.3 Nm |
35 μF | 1.5 Nm |
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Wang, H.; Han, F.; Fu, R.; Zhang, B. Enhancing Power Quality in Distributed Energy Resource Systems Through Permanent Magnet Retrofitting of Single-Phase Induction Motors. Energies 2025, 18, 3998. https://doi.org/10.3390/en18153998
Wang H, Han F, Fu R, Zhang B. Enhancing Power Quality in Distributed Energy Resource Systems Through Permanent Magnet Retrofitting of Single-Phase Induction Motors. Energies. 2025; 18(15):3998. https://doi.org/10.3390/en18153998
Chicago/Turabian StyleWang, Huan, Fangxu Han, Renjie Fu, and Bo Zhang. 2025. "Enhancing Power Quality in Distributed Energy Resource Systems Through Permanent Magnet Retrofitting of Single-Phase Induction Motors" Energies 18, no. 15: 3998. https://doi.org/10.3390/en18153998
APA StyleWang, H., Han, F., Fu, R., & Zhang, B. (2025). Enhancing Power Quality in Distributed Energy Resource Systems Through Permanent Magnet Retrofitting of Single-Phase Induction Motors. Energies, 18(15), 3998. https://doi.org/10.3390/en18153998