Circulating Current Reduction Strategy for Parallel-Connected Inverters Based IPT Systems
Abstract
:1. Introduction
2. Principle Description of the Parallel-Connected Inverter Topology
3. Analysis of the Fundamental Circulating Current
4. Analysis of a Current Decomposed Method and Control Diagram
4.1. Current Decomposition
4.2. Control Diagram
5. Experimental Results
6. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
Abbreviations
DC input voltage of each MOSFET inverter | |
DC input current of each MOSFET inverter | |
Resonant inductance of each unit in series | |
Resonant capacitance of each unit in series | |
Resonant inductance of each unit in parallel | |
Resonant capacitance of each unit in parallel | |
The connection inductance of each unit in parallel | |
The number of parallel units | |
The output voltage of each inverter | |
The output current of each inverter | |
The output fundamental voltage of each parallel unit | |
The branch current of each parallel unit | |
The compensation capacitance of the primary circuit | |
The current in the primary coil | |
The inductance of the primary coil | |
The mutual inductance between the primary and the secondary coils | |
The inductance of the secondary coil | |
The compensation capacitance of the secondary coil | |
The current in the secondary coil | |
The capacitance of the load-side DC filter | |
The equivalent load resistance | |
The output voltage across the load | |
The output current through the load |
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Parameters | Value |
---|---|
The resistance of R2, R3, R7, R8/kΩ | 10 |
The resistance of R1/Ω | 995.2 |
The resistance of R4, R6, R13, R15/kΩ | 2.16 |
The resistance of R5, R14/kΩ | 1.03 |
The resistance of R9, R10/kΩ | 2 |
The resistance of R11/kΩ | 1 |
The resistance of R12/kΩ | 4.7 |
The capacitance of C1/nF | 8 |
The capacitance of C2, C5/uF | 2.67 |
The capacitance of C3, C6/uF | 1 |
The capacitance of C4/uF | 10 |
Multiplier 1 and 2: MLT04 | |
Operational amplifier A1–A5: LM6142 |
Parameters | Value |
---|---|
Inverter frequency f/kHz | 20 |
Inductance of inverter 1 in series La1/μH | 445.0 |
Capacitance of inverter 1 in series Ca1/nF | 143.3 |
Inductance of inverter 1 in parallel Lb1/μH | 42.7 |
Capacitance of inverter 1 in parallel Cb1/nF | 1476.0 |
The connection inductance of inverter 1 Le1/μH | 60.9 |
Inductance of inverter 2 in series La2/μH | 432.8 |
Capacitance of inverter 2 in series Ca2/nF | 147.0 |
Inductance of inverter 2 in parallel Lb2/μH | 43.6 |
Capacitance of inverter 2 in parallel Cb2/nF | 1472.0 |
The connection inductance of inverter 2 Le2/μH | 39.2 |
Inductance of the primary coil LP/μH | 195.0 |
Capacitance of primary circuit CP/nF | 323.7 |
Mutual inductance M/μH | 60.0 |
The air gap of the primary and secondary coils d/cm | 12 |
Inductance of the secondary coil LS/μH | 507.34 |
Capacitance of secondary circuit CS/nF | 124.8 |
Equivalent resistance of the load RL/Ω | 10 |
MOSFET: IRF640N | |
RF: nRF24L01 |
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Share and Cite
Mai, R.; Lu, L.; Li, Y.; Lin, T.; He, Z. Circulating Current Reduction Strategy for Parallel-Connected Inverters Based IPT Systems. Energies 2017, 10, 261. https://doi.org/10.3390/en10030261
Mai R, Lu L, Li Y, Lin T, He Z. Circulating Current Reduction Strategy for Parallel-Connected Inverters Based IPT Systems. Energies. 2017; 10(3):261. https://doi.org/10.3390/en10030261
Chicago/Turabian StyleMai, Ruikun, Liwen Lu, Yong Li, Tianren Lin, and Zhengyou He. 2017. "Circulating Current Reduction Strategy for Parallel-Connected Inverters Based IPT Systems" Energies 10, no. 3: 261. https://doi.org/10.3390/en10030261
APA StyleMai, R., Lu, L., Li, Y., Lin, T., & He, Z. (2017). Circulating Current Reduction Strategy for Parallel-Connected Inverters Based IPT Systems. Energies, 10(3), 261. https://doi.org/10.3390/en10030261