Applying ZCT to Two-Phase Boost Converter with IGBT Switches Used
Abstract
:1. Introduction
2. Proposed Converter
3. Proposed Current Sharing Strategy
3.1. Design of Current Sensing Resistor Rc
3.1.1. Maximum Input Inductor Current
3.1.2. Current Sensing Resistance
3.1.3. Current Sharing Controller
4. Design of Resonant Components
5. System Configuration
6. Simulated and Experimental Results and Discussions
6.1. Simulated and Measured Waveforms
6.2. Waveform Comments
6.3. Light-Load Efficiency Improvement
6.4. Efficiency Measurement
6.5. Comparison between the Existing and the Proposed
7. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Specification | Value or Condition |
---|---|
Input Voltage (Vi) | 250 V |
Output Voltage (Vo) | 400 V |
Rated Output Current (Io,rated)/Rated Output Power (Po,rated) | 2.5 A/1 kW |
Min. Output Current (Io,min)/Min. Output Power (Po,min) | 0.625 A/0.25 kW |
Switching Frequency (fs)/Switching Period (Ts) | 50 kHz/20 μs |
Operating Mode | Continuous Current Mode (CCM) |
Input Inductance | 1.66 mH |
Output Voltage Ripple | Smaller than 0.15% of Vo |
Switch and Diode | Part Number | |
---|---|---|
Simulation | Main Switches Sm1 and Sm2 | STGP10NC60H |
Aux. Switches Sa1 and Sa2 | STGP10NC60HD | |
Output Diodes Do1 and Do2 | IN3903 | |
Aux. Diodes Da1 and Da2 | IN3903 | |
Experiment | Main Switches Sm1 and Sm2 | MGM5N50 |
Aux. Switches Sa1 and Sa2 | SKM25GB | |
Output Diodes Do1 and Do2 | BYV29 | |
Aux. Diodes Da1 and Da2 | BYV29 |
Ref. | Switch | Main Switch | Aux. Switch | Output Diode | Aux. Diode | Max. Eff. | ||||
---|---|---|---|---|---|---|---|---|---|---|
On | Off | On | Off | On | Off | On | Off | |||
[9] | 4 | Hard | ZCS | Near ZCS | ZVS ZCS | ZVS | ZCS ZVS | ZVS ZCS | Near ZCS | 96.7% |
[13] | 4 | Hard | ZCS | Near ZCS | ZCS | ZCS | Hard | Hard | Near ZCS | 98.5% |
[14] | 3 | Hard | ZCS | Near ZCS | ZCS | ZVS | ZCS | - | - | 92.2% |
[15] | 4 | Hard | ZCS | Near ZCS | ZCS | Near ZCS | Near ZCS | ZCS | ZVS | 95.5% |
[16] | 6 | Hard | ZCS | Near ZCS | ZCS | Near ZCS | Near ZCS | Near ZVSNear ZCS | Hard | 97.6% |
[17] | 4 | Hard | ZCS | Near ZCS | ZCS | Near ZCS | Near ZCS | ZVS ZCS | ZCS ZVS | 98% |
Proposed | 4 | Hard | ZCS | Near ZCS | ZCS | Near ZCS | Hard | ZVS | Near ZCS | 96.4% |
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Hwu, K.-I.; Tseng, P.-C. Applying ZCT to Two-Phase Boost Converter with IGBT Switches Used. Micromachines 2022, 13, 2055. https://doi.org/10.3390/mi13122055
Hwu K-I, Tseng P-C. Applying ZCT to Two-Phase Boost Converter with IGBT Switches Used. Micromachines. 2022; 13(12):2055. https://doi.org/10.3390/mi13122055
Chicago/Turabian StyleHwu, Kuo-Ing, and Pei-Ching Tseng. 2022. "Applying ZCT to Two-Phase Boost Converter with IGBT Switches Used" Micromachines 13, no. 12: 2055. https://doi.org/10.3390/mi13122055
APA StyleHwu, K.-I., & Tseng, P.-C. (2022). Applying ZCT to Two-Phase Boost Converter with IGBT Switches Used. Micromachines, 13(12), 2055. https://doi.org/10.3390/mi13122055