Bidirectional Power Flow Control of a Multi Input Converter for Energy Storage System
Abstract
:1. Introduction
2. Circuit Configurations and Equivalent Models
2.1. Circuit Diagrams of the Proposed Bidirectional MIC
2.2. Analyzation of Different Equivalent Models
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- Mode I: The equivalent circuit of Mode I is shown in Figure 3a. In this mode, S1 and S2 are turned on while S3 and S4 are off. In the meantime, Vin1 and Vin2 are in series to charge the inductor, L. The demanded load energy is supplied from the capacitor, C.
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- Mode II: During this state, S1 and S4 conduct. S2 and S4 are off. Vin1 charges L and C by S1 and S4 as well as provide energy to the load, as shown in Figure 3b.
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- Mode III: The equivalent circuit of this mode is shown in Figure 3c. In this mode, S2 and S3 are turned on while S1 and S4 are turned off. Vin1 charges L whereas the load energy is supplied by C.
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- Mode IV: Figure 3d shows the equivalent circuit of Mode IV. Under this mode, Vin1 and Vin2 will not transfer energy due to the off state of S1 and S2. In the same time, S3 and S4 are turned on and the demanded load energy can be obtained from L and C.
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- Mode V: In this mode, S3 and S4 are turned on while S1 and S2 are turned off. L and C are charged by VDC, as shown in Figure 3e.
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- Mode VI: Figure 3f shows the equivalent circuit of Mode VI. Under this condition, S2 and S3 are off. VDC charges L, C and Vin1 in the same by S1 and S4.
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- Mode VII: Under this mode, S1 and S4 are off. VDC charges L, C and Vin2 in the same by S2 and S3. The equivalent circuit of Mode VII is shown in Figure 3g.
3. Circuit Operation Principles and the Proposed Bidirectional Power Flow Control
3.1. The Discharging Scenario
3.2. The Charging Scenario
3.2.1. The Charging Scenario A
3.2.2. The Charging Scenario B
4. Simulation and Experimental Validations
4.1. Simulation Results
4.2. Experimental Validations
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Parameters | Value or Type |
---|---|
Rated power | 500 W |
Inductance of L | 100 μH |
Capacitance of C | 470 μF |
Capacitance of Cin1 | 330 μF |
Capacitance of Cin2 | 470 μF |
Switches of S1, S2, S3 and S4 | MOSFET IRF640N |
Switching frequency | 50 kHz |
Gate driver IC for the switches | TLP250 |
System controller | TI DSP TMS320F28335 |
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Tang, C.-Y.; Lin, J.-T. Bidirectional Power Flow Control of a Multi Input Converter for Energy Storage System. Energies 2019, 12, 3756. https://doi.org/10.3390/en12193756
Tang C-Y, Lin J-T. Bidirectional Power Flow Control of a Multi Input Converter for Energy Storage System. Energies. 2019; 12(19):3756. https://doi.org/10.3390/en12193756
Chicago/Turabian StyleTang, Cheng-Yu, and Jun-Ting Lin. 2019. "Bidirectional Power Flow Control of a Multi Input Converter for Energy Storage System" Energies 12, no. 19: 3756. https://doi.org/10.3390/en12193756
APA StyleTang, C. -Y., & Lin, J. -T. (2019). Bidirectional Power Flow Control of a Multi Input Converter for Energy Storage System. Energies, 12(19), 3756. https://doi.org/10.3390/en12193756