Total Harmonic Distortion Analysis of a Seven-Level Inverter for Fuel Cell Applications †
Abstract
:1. Introduction
- To produce sinusoidal voltage using only fundamental frequency switching.
- To reduce the power components of the suggested topology.
- To minimize the total harmonic distortion (THD) of the suggested topology.
2. Suggested Topology
Modes of Operation
- In mode 1 operation, the capacitor discharges the energy to the load via S1, S5, S8, and D2 during the positive half cycle. The voltage response across the load is . The current direction is displayed in Figure 3.
- In mode 2 operation, the voltage across capacitors C1 and C2 is transmitted to the load through switches S1, S5, S8, S4, and D4, and the voltage response is . The current direction is displayed in Figure 4.
- In mode 3, the three capacitors’ (C1, C2, and C3) voltages are fed to the load via S1, S2, S5, and S8. The voltage response across the load is , and the corresponding current direction is displayed in Figure 5.
- In mode 4, during the negative half cycle capacitor C3 discharges the voltage to the load through switches D1, S7, S6, and S2. The voltage response across the load is , and its current direction is shown in Figure 6.
- In mode 5, capacitors C2 and C3 provide voltage to the load through switches D3, S3, S7, S6, and S2. The corresponding voltage across the terminal is and its current direction is displayed in Figure 7.
- In mode 6, all capacitors (C1, C2, and C3) produce voltage across the load as The current direction is displayed in Figure 8. During this mode of operation, the corresponding switches S1, S7, S6, and S2 are turned on.
3. Results and Discussion
4. Conclusions and Future Scope
- The suggested topology with the minimum active number of components can be easily extended to nine-level or higher output.
- Owing to switching frequency at 50 Hz, switching losses nearly equal zero.
- The seven-level response is generated using one H-bridge.
- The number of capacitors utilized in this suggested topology is lower compared to those used in a conventional cascaded H-bridge multilevel inverter.
- The THD can be still reduced by increasing the number of levels, and using advanced PWM techniques can reduce loss.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Voltage Response | S1 | S2 | S3 | S4 | S5 | S6 | S7 | S8 |
---|---|---|---|---|---|---|---|---|
1/3 Vdc | ON | OFF | OFF | OFF | ON | OFF | OFF | ON |
2/3 Vdc | ON | OFF | OFF | ON | ON | OFF | OFF | ON |
Vdc | ON | ON | OFF | OFF | ON | OFF | OFF | ON |
−1/3 Vdc | OFF | ON | OFF | OFF | OFF | ON | ON | OFF |
−2/3 Vdc | OFF | ON | ON | OFF | OFF | ON | ON | OFF |
Vdc | ON | ON | OFF | OFF | OFF | ON | ON | OFF |
0 | OFF | OFF | OFF | OFF | ON | OFF | ON | OFF |
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Veerendra, A.S.; Chavali, P.S.; Shivarudraswamy, R.; Nagaraja Kumari, C.H.; Janamala, V. Total Harmonic Distortion Analysis of a Seven-Level Inverter for Fuel Cell Applications. Eng. Proc. 2023, 59, 130. https://doi.org/10.3390/engproc2023059130
Veerendra AS, Chavali PS, Shivarudraswamy R, Nagaraja Kumari CH, Janamala V. Total Harmonic Distortion Analysis of a Seven-Level Inverter for Fuel Cell Applications. Engineering Proceedings. 2023; 59(1):130. https://doi.org/10.3390/engproc2023059130
Chicago/Turabian StyleVeerendra, A. S., Punya Sekhar Chavali, R. Shivarudraswamy, C. H. Nagaraja Kumari, and Varaprasad Janamala. 2023. "Total Harmonic Distortion Analysis of a Seven-Level Inverter for Fuel Cell Applications" Engineering Proceedings 59, no. 1: 130. https://doi.org/10.3390/engproc2023059130
APA StyleVeerendra, A. S., Chavali, P. S., Shivarudraswamy, R., Nagaraja Kumari, C. H., & Janamala, V. (2023). Total Harmonic Distortion Analysis of a Seven-Level Inverter for Fuel Cell Applications. Engineering Proceedings, 59(1), 130. https://doi.org/10.3390/engproc2023059130