Compensation-Voltage-Injection-Based Neutral-Point Voltage Fluctuation Suppression Method for NPC Converters †
Abstract
:1. Introduction
2. Analysis and Modeling of Neutral-Point Voltage Fluctuation
2.1. Principle of Modulation Strategy for NPC Inverter
2.2. Modeling of Neutral-Point Voltage Fluctuation
3. Proposed Voltage Fluctuation Suppression Method
3.1. Switching-Cycle-Based Compensation Voltage Injection Method
3.2. Influence of Modulation Rate and Power Factor
4. Simulation and Experimental Results
4.1. Simulation Results
4.2. Experimental Results
5. Conclusions
- (1)
- The proposed average model can accurately calculate the voltage fluctuation of the neutral point. There are only very few discretization errors.
- (2)
- The proposed method can effectively suppress the voltage fluctuation of the neutral point. In the condition of high-power factor and low-modulation ratio, the voltage variation in each switching cycle can be self-balanced. The amplitude of the voltage fluctuation of the neutral point is much lower than that without compensation.
- (3)
- The power factor and modulation ratio have a great influence on the suppression ability of the proposed method. Usually, the higher the power factor and the lower the modulation ratio, the better the suppression effect. However, even the proposed method cannot achieve completed compensation in the condition of low-power factor and high-modulation ratio. The amplitude of the neutral-point voltage fluctuation is still much lower than without compensation.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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/2 | ON | ON | OFF | OFF | 1 |
0 | OFF | ON | ON | OFF | 0 |
/2 | OFF | OFF | ON | ON | −1 |
Vector | Vector | Vector | |||
---|---|---|---|---|---|
ONN | POO | ONP | |||
POP | ONO | PON | |||
NNO | OOP | PNO | |||
OPP | NOO | OPN | |||
NON | OPO | NOP | |||
PPO | OON | NPO |
Parameters | Value |
---|---|
DC voltage /V | 50 |
Switching frequency/kHz | 10 |
DC capacitor /μF | 300 |
DC capacitor /μF | 300 |
Inductor L/mH | 5 |
Resistor R/Ω | 10 |
Inductor L/mH | 7 |
Resistor R/Ω | 2.5 |
THD of iabc under Different Cases | THD, Amp of 2nd, Amp of 5th |
---|---|
Case1: m = 1, (SPWM without compensation) Case2: m = 1, | 1.90%, 0.32%, 1.60% 1.32%, 0%, 0.007% |
Case3: m = 1, | 0.69%, 0.12%, 0.49% |
Case4: m = 0.9, | 0.45%, 0.16%, 0.12% |
Case5: m = 0.8, | 0.45%, 0.01%, 0% |
Parameters | Value |
---|---|
DC voltage /V | 50 |
Switching frequency/kHz | 10 |
DC capacitor /μF | 300 |
DC capacitor /μF | 300 |
Inductor L/mH | 5 |
Resistor R/Ω | 10 |
Inductor L/mH | 7 |
Resistor R/Ω | 2.5 |
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Chen, G.; Gong, C.; Bao, J.; Zhu, L.; Wang, Z. Compensation-Voltage-Injection-Based Neutral-Point Voltage Fluctuation Suppression Method for NPC Converters. Energies 2023, 16, 4409. https://doi.org/10.3390/en16114409
Chen G, Gong C, Bao J, Zhu L, Wang Z. Compensation-Voltage-Injection-Based Neutral-Point Voltage Fluctuation Suppression Method for NPC Converters. Energies. 2023; 16(11):4409. https://doi.org/10.3390/en16114409
Chicago/Turabian StyleChen, Guo, Chunyang Gong, Jun Bao, Lihua Zhu, and Zhixin Wang. 2023. "Compensation-Voltage-Injection-Based Neutral-Point Voltage Fluctuation Suppression Method for NPC Converters" Energies 16, no. 11: 4409. https://doi.org/10.3390/en16114409
APA StyleChen, G., Gong, C., Bao, J., Zhu, L., & Wang, Z. (2023). Compensation-Voltage-Injection-Based Neutral-Point Voltage Fluctuation Suppression Method for NPC Converters. Energies, 16(11), 4409. https://doi.org/10.3390/en16114409