A Novel Process for the Design, Analysis, and Control of a Dual-Phase Motors with Independent Drive for a High Power Density
Abstract
:1. Introduction
2. Definition and Design Process of the DPM
2.1. Definition of a DPM
2.2. Phase Difference of the 6-Phase Current
2.3. Winding Connection Method That Enables Independent Drive
2.3.1. Basic Explanation of the Winding Factor
2.3.2. Selection of the Winding Method for the Independent Operation of the Inner Rotor and Outer Rotor
2.3.3. Analysis of Independent Operation in a DPM
3. Defining the Combined Current and Selecting the Best Ratio of Currents
3.1. Current Features in DPM Subsections
3.2. Current Ratio
3.3. Determining the Combined Current and Matching with BEMF
4. Drive and Control of the DPM
4.1. Rated Speed and High Speed of the DPM
4.2. Control Method for the DPM
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
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Pole | 3-Phase Winding Factor | 6-Phase Winding Factor |
---|---|---|
7 | Kp = 0.97 | Kp = 0.97 |
Kd = 0.97 | Kd = 0 | |
Kw = 0.94 | Kw = 0 | |
8 | Kp = 0.87 | Kp = 0.87 |
Kd = 0 | Kd = 0.87 | |
Kw = 0 | Kw = 0.75 |
Parameter | Data | Unit |
---|---|---|
Core | 20JNHF1300 | - |
Magnet | N45SH | - |
Outer rotor diameter | 200/133.66 | mm |
Inner rotor diameter | 78/50 | mm |
Air gap thickness | 1 | mm |
Stack length | 148 | mm |
Current density | 33 | A/mm2 |
Wire diameter | 2.9 | mm |
Number of parallel | 1 | - |
Turns | 12 | - |
Current | 212 | Arms |
Voltage limit | 970 (at high speed) 795 (at base speed) | VPeak |
Resistance | 21.7 | mΩ |
Ratio | NRatio |
---|---|
9 | 1.0123 |
8 | 1.062 |
7 | 1.183 |
6 | 1.444 |
Ratio | Data | Equation (14) | |||||
---|---|---|---|---|---|---|---|
In EMF | Out EMF | In Ratio | Out Ratio | In | Out | ||
Phases A/U | 73.7 | 163.5 | 31.07 | 68.93 | Kw | 0.75 | 0.94 |
Phases B/V * | 59.8 | 160.9 | 27.08 | 72.92 | |||
Phases C/W | 60.68 | 160.8 | 27.39 | 72.61 | 2piR | 245.04 | 502.65 |
Phases D/U * | 73.71 | 163.5 | 31.07 | 68.93 | |||
Phases E/V | 59.8 | 160.9 | 27.09 | 72.91 | Ratio | 28.01 | 71.99 |
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Han, H.-S.; Song, S.-W.; Lee, S.-H.; Jeon, S.-B.; Kim, W.-H. A Novel Process for the Design, Analysis, and Control of a Dual-Phase Motors with Independent Drive for a High Power Density. Processes 2025, 13, 930. https://doi.org/10.3390/pr13040930
Han H-S, Song S-W, Lee S-H, Jeon S-B, Kim W-H. A Novel Process for the Design, Analysis, and Control of a Dual-Phase Motors with Independent Drive for a High Power Density. Processes. 2025; 13(4):930. https://doi.org/10.3390/pr13040930
Chicago/Turabian StyleHan, Hyung-Sub, Si-Woo Song, Seung-Heon Lee, Su-Bin Jeon, and Won-Ho Kim. 2025. "A Novel Process for the Design, Analysis, and Control of a Dual-Phase Motors with Independent Drive for a High Power Density" Processes 13, no. 4: 930. https://doi.org/10.3390/pr13040930
APA StyleHan, H.-S., Song, S.-W., Lee, S.-H., Jeon, S.-B., & Kim, W.-H. (2025). A Novel Process for the Design, Analysis, and Control of a Dual-Phase Motors with Independent Drive for a High Power Density. Processes, 13(4), 930. https://doi.org/10.3390/pr13040930