A Reliable and Efficient I-f Startup Method of Sensorless Ultra-High-Speed SPMSM for Fuel Cell Air Compressors
Abstract
:1. Introduction
- (1)
- The speed convergence performance can be effectively improved by correcting the frequency of reference current vector adaptively based on not only the instantaneous active power but also the real-time motor torque, which reduces speed fluctuations distinctly.
- (2)
- The amplitude of reference current vector is compensated dynamically during speedup stage instead of during a constant speed stage, which is the basic requirement and distinctiveness for the UHS-SPMSM. Therefore, the reference startup torque can be reduced with improved efficiency under the premise of guaranteeing the startup rapidity.
- (3)
- The transition process to EMF-based sensorless FOC can be enhanced by designing a bandwidth-variable regulating scheme of speed loop PI controller, which achieves low transitional speed fluctuation. Moreover, the designed scheme can ensure high control stability over rated motor speed, compared with fixed-gain speed loop PI controller.
- (4)
- To the best of our knowledge, this is the first time that an innovative closed-loop I-f startup strategy is used for UHS-SPMSM startup, especially for driving fuel cell air compressors.
2. Mathematical UHS-SPMSM Model with I-f Control
3. Conventional I-f Startup Method
3.1. Inherent Speed Oscillation
3.2. Prone Asynchronous Operation
4. Proposed Closed-Loop I–f Startup Method with Transition Enhancement
4.1. Frequency Correction Design
4.2. Amplitude Compensation Design
4.3. Sensorless Transition Enhancement
5. Experimental Results
5.1. Startup Performance Comparison with Conventional I–f Startup Strategy
5.2. Transition Performance Comparison from I–f Startup to Sensorless FOC
6. Conclusions
- (1)
- During the speed up stage, the proposed frequency correction of reference current vector considering the active power and motor torque simultaneously, which reduces the speed oscillation significantly, while decreasing the possibility of startup failure.
- (2)
- The proposed amplitude compensator of reference current vector obviously reduces the current amplitude under the same startup condition, which ensures MTPA operation. This characteristic improves the motor efficiency significantly and prerequisites smoother transition from I-f startup to sensorless FOC due to minimizing the current vector angle.
- (3)
- After the transition to sensorless FOC with an enabling speed PI controller, the proposed variable bandwidth scheme ensures reduction of current amplitude and speed fluctuation, avoiding transition failure.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Symbol | Parameter | Value |
---|---|---|
PN | Rated power | 35 kW |
ωe,rated | Rated speed | 9245 rad/s (90 kr/min) |
ωe,max | Maximum speed | 9948 rad/s (95 kr/min) |
ωe,min | Minimum speed | 3142 rad/s (30 kr/min) |
ωN | Fundamental frequency | 1.583 kHz |
np | Pole pairs | 1 |
Rs | Stator resistance | 0.0085 Ω |
Ld | d-axis inductance | 66.46 μH |
Lq | q-axis inductance | 66.46 μH |
φf | Flux linkage | 0.02387 Wb |
J | Motor inertia | 0.0005672 kg·m2 |
UDC | DC bus voltage | 550 V |
fsw | Switching frequency | 40 kHz |
fc | Control frequency | 20 kHz |
Ts | Sampling period | 0.00005 s |
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Xing, J.; Xu, Y.; Zhang, J.; Li, Y.; Jiang, X. A Reliable and Efficient I-f Startup Method of Sensorless Ultra-High-Speed SPMSM for Fuel Cell Air Compressors. Actuators 2024, 13, 203. https://doi.org/10.3390/act13060203
Xing J, Xu Y, Zhang J, Li Y, Jiang X. A Reliable and Efficient I-f Startup Method of Sensorless Ultra-High-Speed SPMSM for Fuel Cell Air Compressors. Actuators. 2024; 13(6):203. https://doi.org/10.3390/act13060203
Chicago/Turabian StyleXing, Jilei, Yao Xu, Junzhi Zhang, Yongshen Li, and Xiongwei Jiang. 2024. "A Reliable and Efficient I-f Startup Method of Sensorless Ultra-High-Speed SPMSM for Fuel Cell Air Compressors" Actuators 13, no. 6: 203. https://doi.org/10.3390/act13060203
APA StyleXing, J., Xu, Y., Zhang, J., Li, Y., & Jiang, X. (2024). A Reliable and Efficient I-f Startup Method of Sensorless Ultra-High-Speed SPMSM for Fuel Cell Air Compressors. Actuators, 13(6), 203. https://doi.org/10.3390/act13060203