High-Frequency Oscillation of the Active-Bridge-Transformer-Based DC/DC Converter
Abstract
:1. Introduction
2. High-Frequency Oscillation of the Active-Bridge-Based DC/DC Converter
2.1. Equivalent Circuit of the Transformers
2.2. General HFO Model with the Asymmetrical Branch Parameters
3. Model Analysis
4. Active Suppression Method for the HFO
4.1. General Description of the Voltage Excitation
4.2. Active SHE PS Suppression Method
4.3. Impact of the System Parameters on the SHE PS Modulation Suppression Method
4.3.1. Inner Phase-Shift Accuracy
4.3.2. Asymmetrical Splitting Inductances
4.4. Comparison with Other Suppression Methods
5. Experimental Validation
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Parameters | DAB Converter | TAB Converter |
---|---|---|
Swithing devices | C3M0075120K(SiC MOSFET) | C3M0075120K (SiC MOSFET) |
Swithing frequency | 20 kHz | 20 kHz |
Transformer turn ratio | N1:N2 = 1:1 | N1:N2:N3 = 4:5:6 |
Transformer capacitances | C1 = C2 = 130 pF, C12 = 55 pF | C1 = 85 pF, C2 = 100 pF, C3 = 140 pF,C12 = 70 pF, C23 = 70 pF, C13 = 70 pF |
Transformer leakage inductance | LS1 = 3 μH, LS2 = 3 μH | LS1 = 3 μH, LS2 = 3.5 μH, LS2 = 4 μH |
Transformer winding resistance | RS = 0.016 Ω | RS1 = 0.03 Ω, RS = 0.035 Ω, RS = 0.05 Ω |
Transformer magnetizing inductance | Lm = 63 mH | Lm = 24 mH |
Transformer magnetizing resistor | Rm = 10 kΩ | Rm = 25 kΩ |
Phase-shift inductance | L1 = 160 μH, L2 = 100 μH | L1 = 140 μH, L2 = 160 μH, L3 = 100 μH |
Equivalent resistance | R1 = 0.016 Ω, R2 = 0.016 Ω | R1 = 0.016 Ω, R2 = 0.016 Ω, R3 = 0.016 Ω |
Methods | Mode | Applicable Topology | Branch Parameters | Implementation Complexity |
---|---|---|---|---|
[8,9] | Passive | DAB | Only symmetrical parameters are considered. | Moderate |
[10] | Passive | DAB | Only asymmetrical parameters are considered with | Moderate |
[11] | Passive | DAB | Only asymmetrical parameters are considered. | Difficult |
[12] | Passive | DAB | Only asymmetrical parameters are considered with | Moderate |
[13] | Active | Modular MAB | Only symmetrical parameters are considered. | Easy |
Proposed method | Active | DAB, MAB | Effective with both the symmetrical and asymmetrical parameters | Easy |
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Wei, S.; Wen, W. High-Frequency Oscillation of the Active-Bridge-Transformer-Based DC/DC Converter. Energies 2022, 15, 3311. https://doi.org/10.3390/en15093311
Wei S, Wen W. High-Frequency Oscillation of the Active-Bridge-Transformer-Based DC/DC Converter. Energies. 2022; 15(9):3311. https://doi.org/10.3390/en15093311
Chicago/Turabian StyleWei, Shusheng, and Wusong Wen. 2022. "High-Frequency Oscillation of the Active-Bridge-Transformer-Based DC/DC Converter" Energies 15, no. 9: 3311. https://doi.org/10.3390/en15093311
APA StyleWei, S., & Wen, W. (2022). High-Frequency Oscillation of the Active-Bridge-Transformer-Based DC/DC Converter. Energies, 15(9), 3311. https://doi.org/10.3390/en15093311