A review of Direct Power Control Technologies for Three-Phase Voltage PWM Rectifiers

Authors

  • Zihan Liu

DOI:

https://doi.org/10.61173/h3f6e192

Keywords:

PWM, DPC, Virtual flux, Model predictive, Dual-switch table

Abstract

This article reviews the direct power control methods of three-phase voltage-type PWM rectifiers, including those based on virtual flux linkage (VF-DPC), model prediction (MP-DPC), and dual switch table. First, the basic topology of the three-phase voltage-type PWM rectifier is introduced, and its key role in the energy conversion process is explained. Subsequently, the implementation mechanisms, advantages and disadvantages of various direct power control strategies and their performance in practical applications are comparatively analyzed. Finally, the article looks forward to future development trends in three-phase voltage-type PWM rectifier direct power control technology, and points out directions for further research, including algorithm optimization, hardware implementation, and broader application promotion.

References

[1] Green, A., Boys, J., & Gates, G. (1988). 3-phase voltage sourced reversible rectifier. IEE Proceedings B Electric Power Applications, 135(6), 362-370.

[2] Zhou, Z., Song, J., Yu, Y., Xu, Q., & Zhou, X. (2023). Research on High-Quality Control Technology for Three-Phase PWM Rectifier. Electronics (Switzerland), 12(11). https://doi. org/10.3390/electronics12112417

[3] Hu, J., Shang, L., He, Y., & Zhu, Z. Q. (2011). Direct active and reactive power regulation of grid-connected DC/ AC converters using sliding mode control approach. IEEE Transactions on Power Electronics, 26(1). https://doi. org/10.1109/TPEL.2010.2057518

[4] Liu, F., Xia, Y., Yang, L., & Zhang, B. (2024). Feedback Linearization Sliding Mode Control Strategy for Three-Phase Voltage PWM Rectifier Based on New Variable Speed Reaching Law. Electronics (Switzerland), 13(5). https://doi.org/10.3390/ electronics13050960

[5] Farnesi, S., Marchesoni, M., Passalacqua, M., & Vaccaro, L. (2019). Soft-switching cells for Modular Multilevel Converters for efficient grid integration of renewable sources. AIMS Energy, 7(3). https://doi.org/10.3934/energy.2019.3.246

[6] Wu, F., Zhao, J., Liu, Y., Zhou, D., & Luo, H. (2018). Primary Source Inductive Energy Analysis Based Real-Time Multiple Open-Circuit Fault Diagnosis in Two-Level Three- Phase PWM Boost Rectifier. IEEE Transactions on Power Electronics, 33(4). https://doi.org/10.1109/TPEL.2017.2704589

[7] Sivamani, S., & Mohan, V. (2022). A Three-Phase Reduced Switch Count Multilevel Inverter Topology. International Transactions on Electrical Energy Systems, 2022. https://doi. org/10.1155/2022/6193731

[8] Hou, B., Qi, J., & Li, H. (2024). Robust Direct Power Control of Three-Phase PWM Rectifier with Mismatched Disturbances. IEEE Transactions on Power Electronics, 13(8). https://doi.org/10.3390/electronics13081476

[9] Malinowski, M., Kazmierkowski, M. & Trzynadlowski, A. (2003). A comparative study of control techniques for PWM rectifiers in AC adjustable speed drives. IEEE Transactions on Power Electronics, 18(6), 1390-1396.

[10] Wang, J. & Li, H. (2005). A new direct power control strategy of three phase boost type PWM rectifiers. CSEE, 25(16),47-52.

[11] Arif, B., Tarisciotti, L., Zanchetta, P. (2015). Grid parameter estimation using model predictive direct power control. IEEE Transactions on Industry Applications, 51(6), 4614-4622.

[12] Tang, N., Xiao, X. (2013). Direct power control for sliding mode variable structure of permanent-magnet direct drive wind power generator. Guangdong Electric Power, 26(12), 64-69.

[13] Li, H., Lin, M., Yin, M., Ai, J., & Le, W. (2019). Three- Vector-Based Low-Complexity Model Predictive Direct Power Control Strategy for PWM Rectifier Without Voltage Sensors. IEEE Journal of Emerging and Selected Topics in Power Electronics, 7(1). https://doi.org/10.1109/JESTPE.2018.2871332

Downloads

Published

2024-06-06