A Comprehensive Loss Model and Comparison of AC and DC Boost Converters
Abstract
:1. Introduction and Motivation
1.1. AC and DC Converters
1.2. Boost Converters
2. Deriving Conduction Loss Models
3. Conduction Loss Component Currents
3.1. Input and Duty Cycle
3.2. Inductor Current
3.3. Diode Bridge Current
3.4. Switch Current
3.5. Boost Diode Current
3.6. Capacitor Current
4. Switching Loss in the Switch (Q)
4.1. Hard-Switching Loss
- The gate driver charges . The gate voltage, , increases to the gate-threshold voltage, .
- The gate driver continues to charge . continues to increase as rises to .
- The gate driver now discharges . remains constant at the gate-plateau voltage, , as falls to near-zero.
- 4.
- The gate driver discharges . decreases to .
- 5.
- The gate driver charges . remains constant at as rises to .
- 6.
- The gate driver discharges . decreases to and falls to near-zero.
4.2. Output-Capacitance Loss
5. Switching Loss in the Diode (D)
5.1. Reverse Recovery Loss
5.2. Junction-Capacitance Loss
6. Model Validation
6.1. Simulation Validation
6.2. Experimental Validation
7. Efficiency Comparison of AC vs. DC
8. Conclusions and Future Work
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A
Appendix A.1. Model Equations
Appendix A.2. PX,cond: Conduction Loss
Parameter | AC PFC Model Formula | DC Model Formula |
---|---|---|
− | ||
Parameter | Model Formula |
---|---|
− | |
Parameter | Model Formula |
---|---|
− | |
Parameter | Model Formula |
---|---|
Appendix A.3. PQ,sw,hs and PQ,sw,c: Hard Switching and Output Capacitance Loss
Timing | Formula |
---|---|
Model | Average Loss Power |
---|---|
AC PFC (simple) | |
DC (simple) | |
AC PFC (ripple) | |
DC (ripple) |
Appendix A.4. PD,sw,hs and PD,sw,c: Diode Reverse Recovery and Junction Capacitance Loss
Model | Average Loss Power |
---|---|
AC PFC (simple) | |
DC (simple) | |
AC PFC (ripple) | |
DC (ripple) |
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Component | Identification Number |
---|---|
Inductor | Premo PFCA500-8H |
Diode Bridge | Diodes Inc. GBU804 |
Switch | STMicroelectronics STP9NK60Z |
Boost Diode | Power Integrations LQA08TC600 |
Capacitor (2×) | TDK Electronics B43544A6477M000 |
DC Power Supply | Chroma 62024P-600-8 |
Electronic Load | Chroma 63802 |
Revenue-Grade DC Meter | AccuEnergy AcuDC 243-600V-A1-P2-C-D |
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Gerber, D.L.; Musavi, F.; Ghatpande, O.A.; Frank, S.M.; Poon, J.; Brown, R.E.; Feng, W. A Comprehensive Loss Model and Comparison of AC and DC Boost Converters. Energies 2021, 14, 3131. https://doi.org/10.3390/en14113131
Gerber DL, Musavi F, Ghatpande OA, Frank SM, Poon J, Brown RE, Feng W. A Comprehensive Loss Model and Comparison of AC and DC Boost Converters. Energies. 2021; 14(11):3131. https://doi.org/10.3390/en14113131
Chicago/Turabian StyleGerber, Daniel L., Fariborz Musavi, Omkar A. Ghatpande, Stephen M. Frank, Jason Poon, Richard E. Brown, and Wei Feng. 2021. "A Comprehensive Loss Model and Comparison of AC and DC Boost Converters" Energies 14, no. 11: 3131. https://doi.org/10.3390/en14113131
APA StyleGerber, D. L., Musavi, F., Ghatpande, O. A., Frank, S. M., Poon, J., Brown, R. E., & Feng, W. (2021). A Comprehensive Loss Model and Comparison of AC and DC Boost Converters. Energies, 14(11), 3131. https://doi.org/10.3390/en14113131