Novel High-Efficiency High Step-Up DC–DC Converter with Soft Switching and Low Component Voltage Stress for Photovoltaic System
Abstract
:1. Introduction
2. Literature Review
3. Circuit Architecture and Principle of Operation
- (1)
- The parasitic effect and internal resistance, which occur at high frequencies, are absent.
- (2)
- The switches and parasitic diodes of the switches are ideal, and the parasitic capacitance is considered.
- (3)
- The capacitance of C1, C2, Ci, Co, and Cm is infinite.
- (4)
- The leakage inductance values Llk1, Llk2, and Llk3 are much lower than the magnetizing inductance Lm.
- (1)
- Mode I (t0–t1)
- (2)
- Mode II (t1–t2)
- (3)
- Mode III (t2–t3)
- (4)
- Mode IV (t3–t4)
- (5)
- Mode V (t4–t5)
- (6)
- Mode VI (t5–t6)
- (7)
- Mode VII (t6–t7)
- (8)
- Mode VIII (t7–t8)
- (9)
- Mode IX (t8–t9)
- (10)
- Mode X (t9–t10)
4. Steady-State Analysis
- (1)
- All components are ideal, and the internal resistance and parasitic effects are absent.
- (2)
- The capacitance of all capacitors is infinite, making the voltage of the capacitors constant.
- (3)
- The leakage inductance of the winging inductor is absent.
- (4)
- To make calculations easier, the ideal transformer is represented by , and N is defined as the turns ratio of a transformer.
4.1. Voltage Gain Ratio
4.2. Voltage Stress Analysis of Components
4.3. Literature Comparison
5. Experiential Results
5.1. Experimental Waveforms
5.2. Measured Efficiency
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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References | Proposed Paper | Reference [10] | Reference [11] |
---|---|---|---|
Input voltage | 48 V | 24 V | 40 V |
Output voltage | 380 V | 365 V | 200 V |
Output power | 500 W | 200 W | 300 W |
Number of switches | 2 | 1 | 1 |
Number of diodes | 2 | 5 | 3 |
Number of inductors | 0 | 3 | 1 |
Number of coupled inductors | 1 | 0 | 1 |
Voltage gain | |||
Voltage stress on switch | |||
Turn ratio | 4 | 0.5 | |
Maximum conversion efficiency | 98% | 92.8% | 84.8% |
Soft switching | Yes | No | No |
References | Proposed Paper | Reference [12] | Reference [13] |
---|---|---|---|
Input voltage | 48 V | 25 V | 25 V |
Output voltage | 380 V | 400 V | 400 V |
Output power | 500 W | 300 W | 300 W |
Number of switches | 2 | 1 | 1 |
Number of diodes | 2 | 4 | 4 |
Number of inductors | 0 | 0 | 1 |
Number of coupled inductors | 1 | 2 | 1 |
Turn ratio | 4 | 2.9 | 3.8 |
Voltage gain | |||
Voltage stress on switch | |||
Maximum conversion efficiency | 98% | 95.6% | 93% |
Soft switching | Yes | No | No |
Parameter | Specification |
---|---|
Input DC Voltage Vin | 48 V |
Output DC Voltage Vo | 380 V |
Maximum output power Po | 500 W |
Switching frequency fs | 50 kHz |
Coupled inductors turns ratio | N1: N2: N3 = 1:1:4 |
Component | Model | Specification |
---|---|---|
S1, S2 | IRFP4768 | 250 V/93 A |
Cin | Electrolytic Capacitor | 220 μF/250 V |
Co | Electrolytic Capacitor | 220 μF/450 V |
C1, C2 | MPP Film Capacitor | 9.4 μF/250 V |
Cm | MPP Film Capacitor | 4.7 μF/250 V |
Lm, LK1, LK2 | MPP Ring core | 120 μH/2 μH/4 μH |
D1, D2 | BYC10-600 | 600 V/10 A |
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Wu, Y.-E.; Wang, J.-W. Novel High-Efficiency High Step-Up DC–DC Converter with Soft Switching and Low Component Voltage Stress for Photovoltaic System. Processes 2021, 9, 1112. https://doi.org/10.3390/pr9071112
Wu Y-E, Wang J-W. Novel High-Efficiency High Step-Up DC–DC Converter with Soft Switching and Low Component Voltage Stress for Photovoltaic System. Processes. 2021; 9(7):1112. https://doi.org/10.3390/pr9071112
Chicago/Turabian StyleWu, Yu-En, and Jyun-Wei Wang. 2021. "Novel High-Efficiency High Step-Up DC–DC Converter with Soft Switching and Low Component Voltage Stress for Photovoltaic System" Processes 9, no. 7: 1112. https://doi.org/10.3390/pr9071112
APA StyleWu, Y.-E., & Wang, J.-W. (2021). Novel High-Efficiency High Step-Up DC–DC Converter with Soft Switching and Low Component Voltage Stress for Photovoltaic System. Processes, 9(7), 1112. https://doi.org/10.3390/pr9071112