Rotor Investigation of High-Speed Permanent Magnet Motor with Roundness Error and CFD-Thermal Distribution Analysis
Abstract
:1. Introduction
2. Motor Structure
3. Rotor Sleeve Analysis
3.1. Theoretical Analysis of Eddy Current Loss with Sleeve
3.2. Eddy Current Loss Calculation with Different Sleeve Conductivity
3.3. Eddy Current Loss Calculation at Different Rotational Speed
3.4. Calculation of Mechanical Stress at Different Sleeve Thicknesses
4. Analysis of Air Friction Loss of HSPMSM
4.1. The Effect of Rotational Speed on the Air Friction Loss
4.2. The Effect of Roundness Error on Air Friction Loss
4.2.1. Mathematical Model of Motor Air Gap Considering Sleeve Roundness Error
- (1)
- The airflow in the air gap of the motor is an incompressible fluid;
- (2)
- The effect of air gravity is not considered;
- (3)
- The airflow in the air gap is turbulent;
4.2.2. The Variation Law of Air Friction Loss on the Outer Surface of the Rotor
4.2.3. Analysis of the Effect of Forced Air-Cooling Inlet Velocity on the Air Friction Loss
5. Analysis of Overall Motor Loss
6. HSPMSM Thermal Analysis
7. Experimental Verification
8. Conclusions
- (1)
- The influence of sleeve material conductivity, rotating speed and sleeve thickness on the eddy current loss can be summarized, providing some reference of the research for the rotor sleeve of high-speed motor, especially for titanium alloy sleeve. The eddy current loss of the sleeve is expressed as followings.
- (2)
- By analyzing the relationship between rotor sleeve material, thickness and rotor eddy current loss and mechanical stress, it is concluded that in this thesis, the sleeve made of titanium alloy material with a thickness of 3.5 mm is chosen to effectively suppress the rotor eddy current loss in high-speed motors.
- (3)
- The air friction loss becomes significant at the high-speed motor. It will rapidly increase to high-speed rotational rotors. The influences of the roundness error, the rational speed and the axial forced-air velocity on air-friction loss are analyzed in detail, which provide a reference of calculate the air friction loss of HSPMM.
- (4)
- By analyzing the roundness error, it can be concluded that the overall maximum motor temperature tends to decrease, and the air gap pressure tends to increase with the increase of the motor forced air cooling inlet velocity for a fixed roundness error. Through comprehensive analysis of the relationship between the flow rate of forced air cooling and rotor temperature, air friction loss and air pressure, the optimal air inlet velocity is 10 m/s. Furthermore, the air friction loss is concluded with roundness error (AErr) as following, providing some reference for the rotor design of HSPMM.
- (5)
- The influence of stator temperature on the rotor was analyzed by coupled magnetic-thermal multi-physical field calculations. The forced-air inlet velocity of 10 m/s is adopted by studying the air friction loss due to the roundness error, avoiding rotor overheating, in the paper.
- (6)
- The loss separation method is used to obtain the air friction loss measurement results. The accuracy of the finite element calculation results of air friction loss is verified through the experimental data. Under load testing, the stator winding temperature in FEA calculation is verified by experiment on the basis of resistance change method. The temperature maximal difference is 5.5%, which is acceptable.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Appendix A
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Parameter | Value | Unit |
---|---|---|
Rated Power | 105 | kW |
Rated speed | 36,000 | r/min |
Number of poles | 2 | |
Frequency | 600 | Hz |
Efficiency | 95 | % |
Power factor | 0.94 | |
Inner and outer slot area ratio | 2/5 | |
Outer diameter of stator core | 180 | mm |
Stator Core length | 140 | mm |
Phases resistance | 1785 | Ω |
Slot fill factor | 60 | % |
Air gap length | 2.5 | mm |
Rotor outer diameter | 65 | mm |
PM grade | N33EH | |
Remanent flux density of PM/Br | 1.15 | T |
Intrinsic coercivity of PM/Hcj | 30 | kOe |
Material | Heat Conduction Coefficient (W/m·K) | Density (g/cm3) | Specific Heat Capacity (J/g·°C) |
---|---|---|---|
Titanium alloy | 7.955 | 4.51 | 0.612 |
Stainless steel | 16.3 | 7.9 | 0.46 |
Carbon fiber | 0.7 | 1.8 | 0.170 |
Geometric Parameters | Value (mm) |
---|---|
Rotor outer diameter | 65 |
Stator inner diameter | 70 |
Core length | 140 |
Roundness error amplitude | 0; 0.1; 0.2 0.3; 0.4; 0.5 |
Roundness Error Type | Magnitude (mm) | Tangential Stress (N) | Rotor Surface Air Friction Loss (W) |
---|---|---|---|
ellipsoidal | 0 | 5.18 | 1152.7 |
0.1 | 5.38 | 1162.8 | |
0.2 | 5.51 | 1187.9 | |
0.3 | 5.67 | 1227.3 | |
0.4 | 5.89 | 1297.1 | |
0.5 | 6.01 | 1397.5 |
Loss | Value/W |
---|---|
Stator copper loss | 500 |
Stator iron loss–Eddy current loss | 503 |
Stator iron loss–Hysteresis loss | 211 |
Rotor eddy current loss of sleeve | 310 |
Rotor PM loss | 151 |
Shaft loss | 56 |
Air friction loss | 2150 |
Mechanical additional loss | 1120 |
Total loss | 5001 |
n (r/min) | f (Hz) | PFe (W) | Pfric (W) | Padd0 (W) | Measured P0 (W) |
---|---|---|---|---|---|
12,000 | 200 | 129 | 40 | 78 | 247 |
24,000 | 400 | 374 | 317 | 78 | 769 |
36,000 | 600 | 697 | 1107 | 78 | 1844 |
Part | FEA Result | Experiment Result | Unit | Tolerance |
---|---|---|---|---|
Winding | 123 | 117.5 | °C | 4.7% |
Shell | 52 | 49.3 | °C | 5.5% |
Inlet right Shaft | 64.5 | 61.2 | °C | 5.4% |
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Du, J.; Li, C.; Zhao, J.; Huang, X.; Liu, Y.; Lv, H. Rotor Investigation of High-Speed Permanent Magnet Motor with Roundness Error and CFD-Thermal Distribution Analysis. Energies 2022, 15, 4606. https://doi.org/10.3390/en15134606
Du J, Li C, Zhao J, Huang X, Liu Y, Lv H. Rotor Investigation of High-Speed Permanent Magnet Motor with Roundness Error and CFD-Thermal Distribution Analysis. Energies. 2022; 15(13):4606. https://doi.org/10.3390/en15134606
Chicago/Turabian StyleDu, Jingjuan, Chaojiang Li, Jian Zhao, Xinyu Huang, Yupeng Liu, and Haiying Lv. 2022. "Rotor Investigation of High-Speed Permanent Magnet Motor with Roundness Error and CFD-Thermal Distribution Analysis" Energies 15, no. 13: 4606. https://doi.org/10.3390/en15134606
APA StyleDu, J., Li, C., Zhao, J., Huang, X., Liu, Y., & Lv, H. (2022). Rotor Investigation of High-Speed Permanent Magnet Motor with Roundness Error and CFD-Thermal Distribution Analysis. Energies, 15(13), 4606. https://doi.org/10.3390/en15134606