Quadratic Polynomial-Based APSD PWM Technique for Dual Three-Phase Inverters
DOI:
https://doi.org/10.47134/jte.v1i4.3957Keywords:
Dual Three-Phase Inverter, Quadratic Polynomial Fitting, Alternate Phase Shifted Disposition PWM,, Power Conversion EfficiencyAbstract
Three-phase inverters are widely used in industrial applications, including motor drives, renewable energy systems, and electric vehicles. One significant issue in these systems is harmonic distortion, which lowers power efficiency and degrades output voltage quality. To address this, the study proposes a quadratic polynomial fitting technique to optimize Pulse Width Modulation (PWM) signals, aiming to reduce harmonics and improve power quality. This research focuses on a dual three-phase inverter configuration, which provides better current distribution, reduced power losses, and increased resilience to electrical disturbances. The use of quadratic polynomial fitting allows for more precise PWM waveform generation, resulting in lower Total Harmonic Distortion (THDi). The methodology involves mathematical modeling, simulation using MATLAB/Simulink, and experimental validation with a prototype inverter. Results indicate that the technique significantly reduces THDi, especially at optimal modulation indices. Additionally, implementing an LC filter further improves harmonic suppression, producing a cleaner and more stable output. This approach enhances power conversion performance and is highly suitable for industrial and renewable energy applications where efficiency and power quality are critical
References
Ben-Ari, M. (2022). Solving Quadratic Equations BT - Mathematical Surprises (M. Ben-Ari (ed.); pp. 73–87). Springer International Publishing. https://doi.org/10.1007/978-3-031-13566-8_7
Cagliari, G. A., Femia, A., Vancini, L., Sala, G., Rizzoli, G., Mancini, M., & Nuzzo, S. (2024). On Control of the Auxiliary Current Space Vector of Dual Three-Phase Permanent Magnet Motors. 2024 IEEE International Conference on Electrical Systems for Aircraft, Railway, Ship Propulsion and Road Vehicles & International Transportation Electrification Conference (ESARS-ITEC), 1–6. https://doi.org/10.1109/ESARS-ITEC60450.2024.10819844
Cosmas, O. C. (2023). Optimizing Energy Efficiency in Electrical Power Systems. International Journal of Latest Technology in Engineering, Management & Applied Science, XII(XI), 01–07. https://doi.org/10.51583/ijltemas.2023.121101
Li, C., Gao, H., Gong, L., Dong, X., & Dai, J. (2023). Research on Open Circuit Fault Location and Fault Tolerant Control of Inverter Power Transistor. Journal of Physics: Conference Series, 2527(1). https://doi.org/10.1088/1742-6596/2527/1/012045
Liu, A., Wang, Y., Zhu, Y., & Park, S.-J. (2024). Research on power quality improvement system based on dynamic voltage restorer. IET Power Electronics, 17(11), 1399–1410. https://doi.org/10.1049/pel2.12696
LIU, C. (2023). Electrical Power Quality, Availability, and Energy Efficiency. Engineering and Technology Journal, 08(06), 2311–2315. https://doi.org/10.47191/etj/v8i6.02
Odeh, C. I., Lewicki, A., Morawiec, M., & Jąderko, A. (2022). Integrated Three-Level Dual-Phase Inverter. Energies, 15(8), 2897. https://doi.org/10.3390/en15082897
Palanisamy, R., Santhakumari, V. T., Venkatarajan, S., Hemalatha, S., Hepzibah, A. A., Ramkumar, R., & Sugavanam, V. (2024). Space vector pulse width modulation realization for three-phase voltage source inverter. Indonesian Journal of Electrical Engineering and Computer Science, 36(3), 1976–1984. https://doi.org/10.11591/ijeecs.v36.i3.pp1976-1984
Popa, G. N. (2022). Electric Power Quality through Analysis and Experiment. Energies, 15(21). https://doi.org/10.3390/en15217947
R., S. A. D. S.-S. Y. A. U.-N. F. H. V.-T. M. (2024). View of Analysis of Harmonic Contamination at the Output of a 3kVA Hybrid Inverter.pdf.
Shneen, S. W., Abdullah, Z. B., & Dakheel, H. S. (2024). Design and Implementation of Voltage Source Inverter Using Sinusoidal Pulse Width Modulation Technique to Drive A Single-Phase Induction Motor. International Journal of Robotics and Control Systems, 4(4), 1527–1546. https://doi.org/10.31763/ijrcs.v4i3.1541
Stonier, A. A., Murugesan, S., Samikannu, R., Venkatachary, S. K., Kumar, S. S., & Arumugam, P. (2020). Power Quality Improvement in Solar Fed Cascaded Multilevel Inverter With Output Voltage Regulation Techniques. IEEE Access, 8, 178360–178371. https://doi.org/10.1109/ACCESS.2020.3027784
Testa, A., Chang, G., & Verde, P. (2023). Editorial Special Section on “Power Quality in the Energy Transition: Selected Papers From ICHQP 2022.” IEEE Open Access Journal of Power and Energy, 10, 349–350. https://doi.org/10.1109/OAJPE.2023.3276548
Wang, Y., & Baba, J. (2024). An Inflection Point Polynomial Fitting Based Estimation Method for Center of Inertia Frequency and Its Rates of Change Using Single Machine Measurements. 2024 IEEE Power & Energy Society General Meeting (PESGM), 1–5. https://doi.org/10.1109/PESGM51994.2024.10688858
Wiryajati, I. K., Giriantari, I. A. D., Kumara, I. N. S., & Jasa, L. (2018). Simple carrier based Space Vector PWM schemes of dual-inverter fed three-phase open-end winding motor drives with equal DC-link voltage. 2018 International Conference on Smart Green Technology in Electrical and Information Systems (ICSGTEIS), 65–70. https://doi.org/10.1109/ICSGTEIS.2018.8709104
Wiryajati, I. K., Giriantari, I. A. D., Kumara, I. N. S., & Jasa, L. (2021). The performance analysis of dual-inverter three phase fed induction motor with open-end winding using various PWM schemes. Wireless Networks, 27(2), 871–880. https://doi.org/10.1007/s11276-019-02182-5
Zhang, C., Takongmo, M., & Salmon, J. (2022). High-Quality PWM Scheme for High-Speed Electric Drives. IEEE Transactions on Power Electronics, 37(2), 1228–1233. https://doi.org/10.1109/TPEL.2021.3108667
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