Optimization Design and Performance Evaluation of a Hybrid Excitation Claw Pole Machine
Abstract
:1. Introduction
2. Machine Configuration and Flux Path
2.1. Machine Configuration
- (1)
- The size of the slot formed by the two claw-pole rotors exactly matches the size of PM. Therefore, no glue is needed when assembling the rotor, which is more environmentally friendly. The noise when the rotor moves is also reduced.
- (2)
- The field winding is placed at the end cover of the proposed HE-CPM. Compared with the hybrid excitation machine with the field winding placed on the stator, placing the field winding at the end cover can reduce the complexity of machine configuration.
2.2. Hybrid Flux Path
3. MEC Model
4. Optimization of Dimension Parameters
4.1. Machine Parameters Definition and Selection
4.2. Machine Parameters Optimization
5. Machine Performance Evaluation
5.1. Flux Density Distribution
5.2. Electromagnetic Characteristics
5.3. Loss and Efficiency
5.4. Temperature Field Simulation
5.5. Mechanical Stress
6. Experimental Validation
7. Discussion
8. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Conflicts of Interest
References
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Item | Symbol |
---|---|
Equivalent reluctance of stator yoke | |
Equivalent reluctance of stator tooth | |
Equivalent reluctance of stator shoe | |
Equivalent reluctance of rotor yoke | |
Equivalent reluctance of axial magnetic bridge | |
Equivalent reluctance of claw-pole rotor finger | |
Equivalent reluctance of enclosure | |
Equivalent reluctance of front and back ending cover | |
Equivalent reluctance of claw-pole rotor finger yoke | |
PM equivalent internal reluctance | |
Main air gap reluctance | |
Auxiliary air gap reluctance | |
Flux leakage reluctance in stator slot | |
Flux leakage reluctance between adjacent stator shoes | |
Phase A armature reactive MMF | |
PM equivalent MMF source | |
Field excitation equivalent MMF source |
Parameter | Value | Parameter | Value |
---|---|---|---|
PM width | wPM | Main air gap thickness | gmain |
Stator notch width | wnot | Auxiliary air gap thickness | gaux |
Stator tooth width | wst | Stator length | lst |
PM thickness | dPM | Enclosure length | len |
Rotor yoke thickness | dry | Rotor length | lrot |
Stator tooth height | dst | Ending cover length | lec |
Nonmagnetic ring thickness | dno | Axial magnetic bridge length | lamb |
Design Variable | ||||
---|---|---|---|---|
wPM | 0.716 | −0.054 | 0.537 | 0.512 |
wnot | −0.533 | −0.41 | −0.451 | 0.4174 |
wst | 0.134 | 0.409 | 0.127 | 0.1862 |
dPM | 0.226 | 0.037 | 0.3 | 0.2178 |
dry | −0.091 | 0.096 | −0.393 | 0.2128 |
dst | −0.004 | 0.074 | 0.028 | 0.0276 |
gmain | 0.249 | −0.119 | 0.25 | 0.2234 |
Design Variable | Initial Value | Optimized Value |
---|---|---|
wPM | 22 | 23.1 |
wnot | 26 | 28.6 |
gmain | 1 | 0.6 |
dPM | 3.2 | 4.4 |
dry | 6 | 6.4 |
Before Optimization | After Optimization | |
---|---|---|
Maximum value | 29.8 Nm | 31.5 Nm |
Minimum value | 22.4 Nm | 25.1 Nm |
Average value | 26.1 Nm | 28.3 Nm |
Torque ripple | 28.4% | 22.6% |
Elastic Modulus | Density | Poisson’s Ratio v | Allowable Stress |
---|---|---|---|
2.06 × 1011 | 7850 | 0.31 | 800 |
Parameters | Value |
---|---|
Stator outer diameter | 312 mm |
Stator inner diameter | 200 mm |
Effective core length | 52 mm |
Rotor outer diameter | 198.8 mm |
Rotor inner diameter | 120 mm |
Winding factor | 0.966 |
Number of slots | 12 |
Stacking factor | 0.9 |
Armature winding turns | 210 |
Stator yoke width | 17 mm |
Stator tooth width | 28.28 mm |
PM length | 53 mm |
Rated Power | Rated Torque | Rated Voltage | Rated Speed |
---|---|---|---|
10.28 kW | 32.72 Nm | 543.1 V | 3000 rpm |
Proposed HE-CPM | Electrically Excited Claw Pole Generator Reported in [11] | Hybrid Excited Claw Pole Synchronous Machine Reported in [17] | Hybrid Excited Claw Pole Electric Machine Reported in [25] | Hybrid Excitation Claw Pole Synchronous Generator Reported in [26] | Hybrid Excitation Claw Pole Machine Reported in [27] | |
---|---|---|---|---|---|---|
Rated power | 10.28 kW | 7.2 kW | 0.73 kW | - | 0.65 kW | 5 kW |
Rated voltage | 543.1 V | 48 V | 120 V | 14 V | 135.5 V | 108 V |
Rated speed | 3000 rpm | 900 rpm | 1200 rpm | 1300 rpm | 1500 rpm | 3000 rpm |
Efficiency | 89% | 92% | - | 81% | - | - |
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Cao, Y.; Zhu, S.; Yu, J.; Liu, C. Optimization Design and Performance Evaluation of a Hybrid Excitation Claw Pole Machine. Processes 2022, 10, 541. https://doi.org/10.3390/pr10030541
Cao Y, Zhu S, Yu J, Liu C. Optimization Design and Performance Evaluation of a Hybrid Excitation Claw Pole Machine. Processes. 2022; 10(3):541. https://doi.org/10.3390/pr10030541
Chicago/Turabian StyleCao, Yu, Shushu Zhu, Junyue Yu, and Chuang Liu. 2022. "Optimization Design and Performance Evaluation of a Hybrid Excitation Claw Pole Machine" Processes 10, no. 3: 541. https://doi.org/10.3390/pr10030541
APA StyleCao, Y., Zhu, S., Yu, J., & Liu, C. (2022). Optimization Design and Performance Evaluation of a Hybrid Excitation Claw Pole Machine. Processes, 10(3), 541. https://doi.org/10.3390/pr10030541