Cascaded-like High-Step-Down Converter with Single Switch and Leakage Energy Recycling in Single-Stage Structure
Abstract
:1. Introduction
2. Converter Structure and Operation Principle
- All the capacitors are large enough so that the voltages across them are regarded as constant and ripple-free;
- All semiconductor devices and diodes are ideal. That is, parasitic parameters can be neglected;
- The Lk1 and Lk2 represent the leakage inductances at the primary side and secondary side of the high-frequency transformer, respectively, values of which both are much smaller than the magnetizing inductance Lm1;
- The duty ratio of the switch SW will be less than 0.5;
- The turns ratio of the coupled inductor n is equal to ;
- The inductors L1 and L2 in the buck-boost circuits and the inductor Lo in the forward circuit all operate in continuous conduction mode (CCM).
- Mode 1 [t0~t1]:
- Mode 2 [t1~t2]:
- Mode 3 [t2~t3]:
- Mode 4 [t3~t4]:
- Mode 5 [t4~t5]:
3. Steady-State Analysis
3.1. Voltage Gain
3.2. Voltage Stresses of Semiconductors
3.3. Current Stresses of Semiconductors
3.4. Inductance Design
3.5. Capacitance Design
3.6. Performance Comparison
4. Experimental Results
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Ref. | [3] | [10] | [14] | [25] | Proposed |
---|---|---|---|---|---|
Voltage gain | |||||
MOSFETs | 2 | 6 | 1 | 3 | 1 |
Diodes | 2 | 0 | 3 | 3 | 6 |
Capacitors | 3 | 3 | 2 | 3 | 3 |
Magnetic elements | 3 | 2 | 2 | 3 | 4 |
Galvanic isolation | No | Yes | No | Yes | Yes |
Leakage energy recycling | – | Yes | – | Yes | Yes |
Parameters | Values & Specifications |
---|---|
Vin (Input voltage) | 400 V |
Vo (Output voltage) | 12 V |
fs (Switch frequency) | 50 kHz |
Power rating | 200 W |
Lm1 (Magnetizing inductance) | 366 μH |
Lk1 (Leakage inductance) | 2.3 μH |
L1 (Inductor) | 648 μH |
L2 (Inductor) | 636 μH |
Lo (Inductor) | 366 μH |
SW (Power MOSFET) | IXFN60N80P (800 V/53 A), Leiden, Netherlands |
D1 (Diode) | DSEP29-06A (600 V/30 A), Leiden, Netherlands |
D2 and D3 (Diode) | BYC8-600 (600 V/8 A), Eindhoven, Netherlands |
D4 (Diode) | SDP30S120 (1200 V/30 A), Starkville, MS, USA |
D5 and D6 (Diode) | DSSK 60-02A (200 V/2 × 30 A), Leiden, Netherlands |
C1 (Electrolytic capacitor) | 47 μF |
C2 (Electrolytic capacitor) | 4.7 μF |
Co (Electrolytic capacitor) | 470 μF |
n (Transformer turns ratio) | 3:1 |
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Shen, C.-L.; Chen, L.-Z.; Chuang, T.-Y.; Liang, Y.-S. Cascaded-like High-Step-Down Converter with Single Switch and Leakage Energy Recycling in Single-Stage Structure. Electronics 2022, 11, 352. https://doi.org/10.3390/electronics11030352
Shen C-L, Chen L-Z, Chuang T-Y, Liang Y-S. Cascaded-like High-Step-Down Converter with Single Switch and Leakage Energy Recycling in Single-Stage Structure. Electronics. 2022; 11(3):352. https://doi.org/10.3390/electronics11030352
Chicago/Turabian StyleShen, Chih-Lung, Li-Zhong Chen, Tsung-Yung Chuang, and Yu-Shan Liang. 2022. "Cascaded-like High-Step-Down Converter with Single Switch and Leakage Energy Recycling in Single-Stage Structure" Electronics 11, no. 3: 352. https://doi.org/10.3390/electronics11030352
APA StyleShen, C. -L., Chen, L. -Z., Chuang, T. -Y., & Liang, Y. -S. (2022). Cascaded-like High-Step-Down Converter with Single Switch and Leakage Energy Recycling in Single-Stage Structure. Electronics, 11(3), 352. https://doi.org/10.3390/electronics11030352