Axial-Flux Permanent-Magnet Generator Design for Hybrid Electric Propulsion Drone Applications
Abstract
:1. Introduction
2. AFPM Generator Design
2.1. Design Specifications
2.2. Rotor Design of the AFPM Generator
2.3. Stator Design of the AFPM Generator
- The change of magnetic flux density over time is sine, and the harmonic component is negligible;
- Since the change in magnetic flux density from point P4 to point P7, which is the straight side of the coil, is similar, it can be represented by one value. The magnetic flux density variation between the layers of the coil is negligible;
- The magnetization directions of the rotor permanent magnets facing each other are opposite to each other as shown in Figure 3a, and the axial length of the coil is short. Therefore, it can be seen that the magnetic flux passing between points P4 to P7 of the coil has only the axial component.
3. Mechanical and Thermal Analysis
3.1. Mechanical Analysis
3.2. Thermal Analysis
4. Experimental Validation and Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Parameter | Value | Unit |
---|---|---|
Max speed | ≤7000 | rpm |
Output power | ≥3000 | W |
No-load voltage constant | ≤11 | mV/rpm |
Efficiency | ≥93 | % |
Power density | ≤2.3 | W/kg |
Cooling condition | Natural cooling |
Parameter | Value | Unit |
---|---|---|
No. of phases | 6 | |
No. of poles/slots | 14 poles/12 slots | |
Outer diameter of rotor | 162 | mm |
Air-gap length (one-side) | 0.5 | mm |
Total axial thickness | 17 | mm |
PM material | NdFeB(Br = 1.3T) |
Parameter | Type-I | Type-II | NA |
---|---|---|---|
Rated output power (W) | 3982.4 (139.6%) | 3583.9 (125.6%) | 2853.6 (100%) |
Phase voltage (V) | 37.4 (138.5%) | 33.7 (124.8%) | 27 (100%) |
Core loss (W) | 1.5 | 1.3 | 3.7 |
Copper loss (W) | 112.0 | 89.8 | 57.8 |
Efficiency (%) | 97.2 | 97.5 | 97.9 |
Weight (kg) | 1.34 | 1.34 | 1.34 |
Power density (W/kg) | 2.97 (139.6%) | 2.67 (125.6%) | 2.13 (100%) |
Rated speed (rpm) | 6500 | 6500 | 6500 |
Phase current (A) | 18.1 | 16.2 | 13 |
Current density (A/mm2) | 15.9 | 14.3 | 11.5 |
No. of parallel circuits | 2 | 2 | 2 |
No. of turns per coil | 42 | 42 | 42 |
No. of strands of wire | 70 | 70 | 70 |
Conductor diameter (mm) | 0.1 | 0.1 | 0.1 |
Rotor avg. flux density (T) | 1.3 | 1.2 | 1.4 |
Rotor max. flux density (T) | 2.3 | 2.3 | 2.8 |
Parameter | Coil-I | Coil-II | Coil-III |
---|---|---|---|
Rotating speed (rpm) | 5000 | 5000 | 5000 |
No. of parallel circuits | 2 | 1 | 1 |
No. of turns per coil | 72 | 36 | 36 |
No. of serial turns per phase | 72 | 72 | 36 |
No. of strands | 1 | 1 | 70 |
Conductor diameter (mm) | 0.85 | 1.2 | 0.1 |
Slot fill factor (%) | 62 | 62 | 31 |
Phase resistance (Ohm) | 0.084 | 0.081 | 0.04 |
Calculated eddy-current loss power of coils (W) | 110.6 (100%) | 219.7 (199%) | 0.74 (0.7%) |
Measured loss power of each prototype (W) | 122 (100%) | 242 (198%) | 39 (32%) |
Max temperature (°C) | 72.6 | 103.7 | 31.3 |
Parameter | Value |
---|---|
Output power (W) | 3000 |
Speed (rpm) | 7000 |
Current (A) | 15.5 |
Copper loss (W) | 96.6 |
Core loss (W) | 1.5 |
Mechanical loss (W) | 200 |
Room temperature (°C) | 28 |
Convection coefficient on rotor yoke (inner/outer) (W/m2K) | 100/200 |
Convection coefficient on jig (W/m2K) | 10/Infinite |
Parameter | Value |
---|---|
Coil temperature range (°C) | 65–66 |
Rotor yoke temperature range (°C) | 39–51 |
PM temperature range (°C) | 42–47 |
Bearing temperature range (°C) | 56–67 |
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Lee, J.-Y.; Lee, J.-H.; Nguyen, T.K. Axial-Flux Permanent-Magnet Generator Design for Hybrid Electric Propulsion Drone Applications. Energies 2021, 14, 8509. https://doi.org/10.3390/en14248509
Lee J-Y, Lee J-H, Nguyen TK. Axial-Flux Permanent-Magnet Generator Design for Hybrid Electric Propulsion Drone Applications. Energies. 2021; 14(24):8509. https://doi.org/10.3390/en14248509
Chicago/Turabian StyleLee, Ji-Young, Ji-Heon Lee, and Tung Khanh Nguyen. 2021. "Axial-Flux Permanent-Magnet Generator Design for Hybrid Electric Propulsion Drone Applications" Energies 14, no. 24: 8509. https://doi.org/10.3390/en14248509
APA StyleLee, J. -Y., Lee, J. -H., & Nguyen, T. K. (2021). Axial-Flux Permanent-Magnet Generator Design for Hybrid Electric Propulsion Drone Applications. Energies, 14(24), 8509. https://doi.org/10.3390/en14248509