Design and Implementation of a New Cuk-Based Step-Up DC–DC Converter
Abstract
:1. Introduction
2. Proposed Topology
2.1. Fundamental Concepts
2.2. Operational Modes
2.3. Average Values of the Voltage/Current of the Energy Storage Components
2.4. Voltage/Current Stresses of Semiconductor-Based Components
2.5. Current Ripple of Inductors and Voltage Ripple of Capacitors
3. Discontinuous Conduction Mode
4. The Non-Ideal Mode
4.1. The Non-Ideal Voltage Gain
4.2. Efficiency
5. Comparative Analysis with Other Topologies
5.1. Different Kinds of Power Losses
5.2. The Comparison of the Current/Voltage Stress of the Switches and Diodes at the Operating Point
5.3. The Comparison of the Component Numbers and Continuity of Input/Output Currents
6. Simulation Results
7. Experimental Results
8. Conclusions
Author Contributions
Funding
Conflicts of Interest
Appendix A
References
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Inductors Loss (W) | Switches Conduction Loss (W) | |
---|---|---|
proposed converters | ||
[10] | ||
[11] | ||
[12] | ||
[13] | ||
[14] | ||
[15] | ||
[16] | ||
[17] |
Switching Loss of Switches (W) | Diodes Loss (W) | Duty Cycle | ||
---|---|---|---|---|
proposed converters | 0.5 | 97.2 | ||
[10] | 0.63 | 97.1 | ||
[11] | 0.63 | 96.5 | ||
[12] | 0.63 | 96.1 | ||
[13] | 0.63 | 96.3 | ||
[14] | 0.63 | 96.4 | ||
[15] | 0.57 | 96.6 | ||
[16] | 0.57 | 97.7 | ||
[17] | 0.57 | 95.6 |
D | |||||
---|---|---|---|---|---|
proposed converter | 0.5 | ||||
[12] | = 0.82 | 1 | = 0.82 | = 1.6 | 0.63 |
[10] | = 0.82 | = 1.6 | = 0.82 | = 1.6 | 0.63 |
[11] | = 2.56 | = 1.6 | = 0.82 | = 1.6 | 0.63 |
[13] | = 0.82 | = 1.6 | = 0.82 | = 1.6 | 0.63 |
[14] | = 0.82 | = 1.6 | = 0.82 | = 1.6 | 0.63 |
[15] | = 0.75 | = 0.24 | = 0.75 | 1 | 0.57 |
[16] | = 0.75 | = 1.75 | = 0.75 | = 1.75 | 0.57 |
[17] | = 0.75 | 1 | = 0.75 | 1 | 0.57 |
D | ||||||
---|---|---|---|---|---|---|
proposed converter | 0.5 | |||||
[10] | 1 | = 0.59 | = 0.59 | = 0.33 | 0.63 | = 3 |
[11] | 1 | = 0.59 | = 0.59 | = 0.33 | 0.63 | = 3 |
[12] | 1 | = 0.41 | = 0.59 | = 0.33 | 0.63 | = 3 |
[13] | 1 | = 0.59 | = 0.59 | = 0.33 | 0.63 | = 3 |
[14] | 1 | = 0.59 | = 0.59 | = 0.33 | 0.63 | = 3 |
[15] | = 1.43 | = 0.43 | = 0.75 | = 0.33 | 0.57 | = 3 |
[16] | D = 0.57 | = 0.43 | 1-D = 0.43 | = 0.33 | 0.57 | = 3 |
[17] | 1 | = 0.57 | = 0.75 | = 0.33 | 0.57 | = 3 |
No. L | No. C | No. S | No. D | Total | Input Current | Output Current | Voltage Gain | |
---|---|---|---|---|---|---|---|---|
proposed | 3 | 3 | 2 | 2 | 10 | Continuous | Continuous | |
[10] | 2 | 2 | 2 | 2 | 8 | Discontinuous | Discontinuous | |
[11] | 3 | 3 | 2 | 2 | 10 | Continuous | Continuous | |
[12] | 3 | 3 | 2 | 2 | 10 | Continuous | Discontinuous | |
[13] | 2 | 2 | 2 | 2 | 8 | Discontinuous | Discontinuous | |
[14] | 3 | 3 | 2 | 2 | 10 | Continuous | Continuous | |
[15] | 3 | 3 | 2 | 2 | 10 | Continuous | Discontinuous | |
[16] | 3 | 3 | 2 | 2 | 10 | Continuous | Discontinuous | |
[17] | 2 | 2 | 2 | 2 | 8 | Continuous | Discontinuous |
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Gholizadeh, H.; Gorji, S.A.; Afjei, E.; Sera, D. Design and Implementation of a New Cuk-Based Step-Up DC–DC Converter. Energies 2021, 14, 6975. https://doi.org/10.3390/en14216975
Gholizadeh H, Gorji SA, Afjei E, Sera D. Design and Implementation of a New Cuk-Based Step-Up DC–DC Converter. Energies. 2021; 14(21):6975. https://doi.org/10.3390/en14216975
Chicago/Turabian StyleGholizadeh, Hossein, Saman A. Gorji, Ebrahim Afjei, and Dezso Sera. 2021. "Design and Implementation of a New Cuk-Based Step-Up DC–DC Converter" Energies 14, no. 21: 6975. https://doi.org/10.3390/en14216975
APA StyleGholizadeh, H., Gorji, S. A., Afjei, E., & Sera, D. (2021). Design and Implementation of a New Cuk-Based Step-Up DC–DC Converter. Energies, 14(21), 6975. https://doi.org/10.3390/en14216975