An Inductor-Based and Capacitor-Free Bipolar Pulse Converter with Overvoltage Protection
Abstract
:1. Introduction
2. Converter Circuit Topology and Overvoltage Protection
2.1. The Circuit Topology and Working Process
- (1)
- The switches are ideal MOSFETs except for the constant on-resistance.
- (2)
- The freewheeling diode is ideal except for the constant threshold voltage.
- (3)
- The power inductor is ideal except for the constant ESR.
- (1)
- Charging stage: (t0 − t1)
- (2)
- Discharging stage: (t1 − t5)
- (a)
- Positive pulse: (t1 − t2)
- (b)
- Deadtime: (t2 − t3) and (t4 − t5)
- (c)
- Negative pulse: (t3 − t4)
2.2. Overvoltage Protection Scheme
3. Results Simulation of the Converter and Overvoltage Protection
3.1. Simulation of the Converter
3.2. Simulation of the Overvoltage Protection
4. Experiments and Results
4.1. Output under Normal Conditions
4.2. Output When Overvoltage Protection Takes Effect
4.3. Model and Calculation of the Power Loss on MOSFETs
4.3.1. Switching Loss
4.3.2. Conduction Loss
- (1)
- Charging stage
- (2)
- Discharging stage
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
Appendix A
Parameter | Value |
---|---|
Power inductor | L = 1 mH, ESR = 50 mΩ |
Input dc voltage | Ud = 48 V |
Load impedance | RL = 30 Ω |
Reference current | Ic = 10 A |
Positive pulse width | tp_pulse = 5000 ns |
Negative pulse width | tn_pulse = 400 ns |
deadtime | tdead = 300 ns |
Number of bipolar pulses in discharge stage | n = 5 |
Appendix B
References
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Parameter | Value |
---|---|
Power inductor | L = 1 mH, ESR = 50 mΩ |
Input dc voltage | Ud = 48 V |
Load impedance | RL = 30 Ω |
Reference current | Ic = 10 A |
Pulse width | tpulse = 800 ns |
deadtime | tdead = 300 ns |
Number of bipolar pulses in discharge stage | n = 15 |
Parameter | Value |
---|---|
Power inductor | L = 1 mH, ESR = 50 mΩ |
Input dc voltage | Ud = 48 V |
Load impedance | RL = 60 Ω |
Reference current | Ic = 10 A |
Pulse width | tpulse = 800 ns |
deadtime | tdead = 300 ns |
Breakdown voltage of TVS | UBR = 350 V |
Number of bipolar pulses in discharge stage | n = 15 |
Parameter | Value |
---|---|
Power inductor | L = 1 mH, ESR = 50 mΩ |
Input dc voltage | Ud = 48 V |
Reference current | Ic = 10 A |
Pulse width | tpulse = 800 ns |
deadtime | tdead = 300 ns |
Number of bipolar pulses in discharge stage | n = 15 |
MOSFET Q1~Q5 | SPP21N50C3 |
Drivers for Q1~Q4 | IR2110STRPBF |
Driver for Q5 | TLP250H(F) |
TVS DZ | 1.5KE350A |
Breakdown voltage of TVS DZ | UBR = 350 V |
Controller (FPGA) | EP1C3T100C8N |
Parameter | Value |
---|---|
Pulse width | tpulse = 800 ns |
Time of turn-on process | tturnon = 136 ns |
Time of turn-off process | tturnoff = 112 ns |
Time of charging stage | tcharge = 123 μs |
Inductor current when the charging stage starts | IL0 = 5.10 A |
Energy of switching loss | Esw(total) = 545.27 μJ |
Energy of conduction loss | Econ(total) = 503.47 μJ |
Average power loss of Q1~Q4 | Ploss = 6.72 W |
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Xu, J.; Yang, X.; Zhao, H.; Qiu, J.; Liu, K. An Inductor-Based and Capacitor-Free Bipolar Pulse Converter with Overvoltage Protection. World Electr. Veh. J. 2022, 13, 91. https://doi.org/10.3390/wevj13050091
Xu J, Yang X, Zhao H, Qiu J, Liu K. An Inductor-Based and Capacitor-Free Bipolar Pulse Converter with Overvoltage Protection. World Electric Vehicle Journal. 2022; 13(5):91. https://doi.org/10.3390/wevj13050091
Chicago/Turabian StyleXu, Jianzhi, Xingjian Yang, Hui Zhao, Jian Qiu, and Kefu Liu. 2022. "An Inductor-Based and Capacitor-Free Bipolar Pulse Converter with Overvoltage Protection" World Electric Vehicle Journal 13, no. 5: 91. https://doi.org/10.3390/wevj13050091
APA StyleXu, J., Yang, X., Zhao, H., Qiu, J., & Liu, K. (2022). An Inductor-Based and Capacitor-Free Bipolar Pulse Converter with Overvoltage Protection. World Electric Vehicle Journal, 13(5), 91. https://doi.org/10.3390/wevj13050091