Highly Efficient Transformerless Inverter with Flying-Capacitor Buck–Boost for Single-Phase Grid-Connected PV Systems
Abstract
:1. Introduction
2. Proposed Topology and Principle of Operation
2.1. Buck–Boost Converter
2.2. Common-Ground Flying Capacitor
2.3. Proposed Inverter Topology
3. Operating Modes of the Proposed Inverter
3.1. Positive Cycle (Active)
3.2. Positive Cycle (Zero State)
3.3. Negative Cycle (Active)
3.4. Negative Cycle (Zero State)
4. Design Guidelines and Loss Analysis
4.1. Buck–Boost Components Selection
4.2. Inverter Compoenents Selection
4.3. Power Loss Analysis
5. Simulation Results and Discussion
6. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Leakage Current (mA) | Fault Discontinuity Time (ms) |
---|---|
30 | 300 |
60 | 150 |
100 | 40 |
Inverter Topology in [27] | Inverter Topology in [23] | The Proposed Inverter |
---|---|---|
Two switches in series carry the load current during the active states of the positive and negative power cycles. | Only one switch carries the load current during the active states of the positive and negative power cycles. | Only one switch carries the load current during the active states of the positive and negative power cycles. |
It does not charge the flying capacitor during the active state of the negative power cycle. | It does not charge the flying capacitor during active states. | It charges the flying capacitor during all operating states. |
No RB-IGBT required. | It required two switches with bipolar voltage-blocking capability, such as RB-IGBT. | No RB-IGBT required. |
No proposed way to control or reduce the inrush current during the charging of the flying capacitor | The inrush current during the charging of the flying capacitor cannot be fully controlled; it ranges from 2 Iac, max to 5 Iac, max | In the proposed inverter, the flying capacitor charging current can be controlled using the buck–boost inverter because the capacitor charges through the inductor. Based on the nature of the inductor, in that it tries to oppose the current change, the slope of the current can be controlled. where is the output current of the buck–boost inverter, in this case , D the duty cycle, and r the ripple ratio. Hence, the maximum current can be controlled by inductor value because |
Parameters | Value |
---|---|
DC Bus Input Voltage | 400 Vdc |
Grid Voltage | 220 Vac |
Grid Frequency | 60 Hz |
Switching Frequency | 60 kHz |
PV Array Parasitic Capacitance | 80 nF |
Rated Power | 2 kW |
Output Current (peak) | 12.86 A |
Flying Capacitor | 330 µF |
Buck–Boost Inductor | 870 µH |
Inverter Side Filter | 860 µH |
Grid Side Filter | 280 µH |
Filter Capacitor | 4.7 µF |
Switches | C3M0021120K |
Diodes | C4D20120A |
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Salem, A.; Sedraoui, K. Highly Efficient Transformerless Inverter with Flying-Capacitor Buck–Boost for Single-Phase Grid-Connected PV Systems. Appl. Sci. 2021, 11, 10841. https://doi.org/10.3390/app112210841
Salem A, Sedraoui K. Highly Efficient Transformerless Inverter with Flying-Capacitor Buck–Boost for Single-Phase Grid-Connected PV Systems. Applied Sciences. 2021; 11(22):10841. https://doi.org/10.3390/app112210841
Chicago/Turabian StyleSalem, Ali, and Khaled Sedraoui. 2021. "Highly Efficient Transformerless Inverter with Flying-Capacitor Buck–Boost for Single-Phase Grid-Connected PV Systems" Applied Sciences 11, no. 22: 10841. https://doi.org/10.3390/app112210841
APA StyleSalem, A., & Sedraoui, K. (2021). Highly Efficient Transformerless Inverter with Flying-Capacitor Buck–Boost for Single-Phase Grid-Connected PV Systems. Applied Sciences, 11(22), 10841. https://doi.org/10.3390/app112210841