An Isolated Three-Port Bidirectional DC-DC Converter with Enlarged ZVS Region for HESS Applications in DC Microgrids
Abstract
:1. Introduction
- (1)
- A new two-stage three-port isolated BDC topology is proposed to integrate SC and BA.
- (2)
- Methods to enlarge ZVS region and to reduce power circulation loss for three-port SR BDC under varying port voltages are first investigated.
- (3)
- A front-end converter in SC channel is introduced to keep input of full bridge constant. For BA channel, PWM-PHS control method is developed to improve the characteristics of the proposed three-port BDC.
- (4)
- By adopting the two-stage structure, all switches of SC and DC bus ports have realized ZVS with variable VSC. By applying the proposed PWM-PHS control method, two more switches of BA port realize ZVS even under the worst input voltage condition of MBA = 1.15.
2. Proposed System
2.1. Three-Port SR BDC
- (1)
- Three-port structure with transformer coupling reduces amount of power switches, increases power density.
- (2)
- Power flow between BA port and DC bus port, SC port and DC bus port are bidirectional.
- (3)
- Centralized control method of power flow by changing the direction and magnitude of the phase shift angles between three ports is applied.
- (4)
- Three-phase interleaved BDC is introduced in the SC channel to keep voltage gain MSC = 1, which guarantee best operating characteristics of SC channel of SR BDC.
- (5)
- PWM-PHS hybrid control strategy is proposed for the BA channel to increase the number of switches, which can achieve ZVS, under a variation voltage VBA.
2.2. Three-Phase Interleaved BDC
- (1)
- The structure is simple, and it combines a boost converter together with a buck converter connected in antiparallel.
- (2)
- Three-phase interleaved structure is adopted to reduce current ripple, improve power level and reduce current stress of the converter.
- (3)
- It works under DCM, which can reduce the inductance value.
- (4)
- Two MOSFETs of one phase-leg conduct complementarily, and the inductor operates under DCM condition, and thus ZVS of MOSFETs is achieved.
3. Operating Analysis
3.1. Operating Principle of Three-Port SR BDC
3.1.1. Operating Mode Analysis
3.1.2. Analysis for Voltage Source Load
3.1.3. Analysis for Resistive Load
3.2. Operating Principle of Three-Phase Interleaved BDC
4. ZVS Region Analysis and Proposed Method for Expanding ZVS Realization Range
4.1. ZVS Region and Current Stress Analysis of Single Channel SR BDC
- (1)
- For the SC channel, the voltage has a large variation range, and can’t get an ideal operating state only by reasonable parameters design. Therefore, a three-phase interleaved BDC is introduced between SC and port 1 of the three-phase SR BDC. The interleaved BDC is used to convert the widely fluctuating VSC to a fixed Vdc-link, and thus ensuring MSC = 1.
- (2)
- Since voltage variation scale is relatively small for the BA channel, it is not essential to add BDC converter as SC channel does. A new PWM-PHS control strategy is proposed for the BA channel. The newly proposed control method has two phase shift angles for modulation, and can increase number of MOSFETs which can realize ZVS.
4.2. Proposed PWM and Phase Shift Hybrid Control Strategy
4.3. Control Strategy of the Proposed Two-Stage Three-Port BDC
5. Experimental Results
5.1. SC and BA Charging Mode
5.2. SC and BA Discharging Mode
5.3. Proposed PWM-PHS Control Method
6. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Converter Parameter | Value |
---|---|
Resonant Inductor Lr1 and Lr2 | 15 μH |
Resonant Capacitors Cr1 and Cr2 | 141 nF |
Transformer turns ratio n13:n23:1 | 0.425:0.51:1 |
Port 1 voltage Vdc-link | 85 V |
Port 2 voltage VBA | 90 V–102 V |
Port 3 voltage Vbus | 200 V |
Voltage Gain MSC | 1 |
Voltage Gain MBA | 1–1.15 |
Super Capacitor Voltage VSC | 30 V–75 V |
Buck/Boost Inductor of BDC L | 15 μH |
Method | φ1 | φ2 |
---|---|---|
Theoretical Calculation | −19.1° | −19.1° |
Experiment | −18.5° | −20° |
Method | φ1 | φ2 |
---|---|---|
Theoretical Calculation | 19.8° | 13.6° |
Experiment | 18.2° | 13.4° |
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Wang, C.-S.; Li, W.; Wang, Y.-F.; Han, F.-Q.; Meng, Z.; Li, G.-D. An Isolated Three-Port Bidirectional DC-DC Converter with Enlarged ZVS Region for HESS Applications in DC Microgrids. Energies 2017, 10, 446. https://doi.org/10.3390/en10040446
Wang C-S, Li W, Wang Y-F, Han F-Q, Meng Z, Li G-D. An Isolated Three-Port Bidirectional DC-DC Converter with Enlarged ZVS Region for HESS Applications in DC Microgrids. Energies. 2017; 10(4):446. https://doi.org/10.3390/en10040446
Chicago/Turabian StyleWang, Cheng-Shan, Wei Li, Yi-Feng Wang, Fu-Qiang Han, Zhun Meng, and Guo-Dong Li. 2017. "An Isolated Three-Port Bidirectional DC-DC Converter with Enlarged ZVS Region for HESS Applications in DC Microgrids" Energies 10, no. 4: 446. https://doi.org/10.3390/en10040446
APA StyleWang, C. -S., Li, W., Wang, Y. -F., Han, F. -Q., Meng, Z., & Li, G. -D. (2017). An Isolated Three-Port Bidirectional DC-DC Converter with Enlarged ZVS Region for HESS Applications in DC Microgrids. Energies, 10(4), 446. https://doi.org/10.3390/en10040446