Comparative study on power decoupling technology based on double frequency disturbance suppression of single-phase photovoltaic inverter

Authors

  • Xinjie Chen

DOI:

https://doi.org/10.54097/11s12b79

Keywords:

Single-phase photovoltaic inverter, power decoupling, circuit topology.

Abstract

During the grid connection process, single-phase photovoltaic inverters frequently encounter the issue of instantaneous power imbalance between the AC and DC sides. This results in twice the line frequency disturbance power being transmitted to the DC side, severely affecting the system's stability and performance, especially maximum power point tracking efficiency. To address this problem, research in photovoltaic grid-connected technology is now focusing on power decoupling technology to suppress double-frequency disturbances, referred to as power decoupling. This article covers the three main approaches to power decoupling—passive, active, and composite—and focuses on analyzing the circuit topology of the latter two approaches applied to single-phase photovoltaic inverters. The advantages and disadvantages of different power decoupling circuit topologies are discussed in detail, and a comparison is made in this article. Detailed discussions on current power decoupling technology trends and potential future directions, as well as recommendations for further refining grid-connected PV technology, are provided.

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References

Huang, K. P., Wang, Y. and Wai, R. J., Design of power decoupling strategy for single-phase grid-connected inverter under nonideal power grid, IEEE Transactions on Power Electronics, 34(3), 2938-2955 (2018).

Yang, Z., Zeng, J., Zhang, Q., Zhang, Z. and Winstead, V., Yu, D., A composite power decoupling method for a PV inverter with optimized energy buffer, IEEE Transactions on Industry Applications, 57(4), 3877-3887 (2021).

Hanchao, Z., & Daolian, C. (2017, October). A single-stage isolated charging/discharging DC-AC converter with second harmonic current suppression in distributed generation systems. In IECON 2017-43rd Annual Conference of the IEEE Industrial Electronics Society (pp. 4427-4432). IEEE.

Liyun, Z., Research on power decoupling based on single-phase photovoltaic grid-connected inverter, https://link.cnki.net/doi/10.27276/d.cnki.gsdgc.2022.000776 (2022).

Sun, H., Wang, H., & Qi, W., Automatic power decoupling controller of dependent power decoupling circuit for enhanced transient performance. IEEE Transactions on Industrial Electronics, 66(3), 1820-1831 (2018)

Meiqing, M., Zhenyu, S. and Liuchen, Z., A new power decoupling topology to improve the power density of single-phase photovoltaic grid-connected inverters, Acta Energiate Solaris Sinica, 43(6): 33, 2022.

Jiang, J., Pan, S., Zha, X., & Hao, L. (2019, June). A new single-phase single-stage photovoltaic grid-tied inverter with leakage current eliminating and power decoupling. In 2019 IEEE 10th International Symposium on Power Electronics for Distributed Generation Systems (PEDG) (pp. 560-564). IEEE.

Zeng, J., Zhao, J., & Kim, T. (2018, September). Modeling and control for a photovoltaic inverter with power decoupling on the AC side. In 2018 IEEE Energy Conversion Congress and Exposition (ECCE) (pp. 991-997). IEEE.

Kangjie, L., Photovoltaic grid-connected micro-inverter with power decoupling, Electric Engineering, (7), 75-78 (2023).

Yang, Z., Zeng, J., Zhang, Q., Zhang, Z., Winstead, V., & Yu, D. (2021). A composite power decoupling method for a PV inverter with optimized energy buffer. IEEE Transactions on Industry Applications, 57(4), 3877-3887.

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Published

28-05-2024

How to Cite

Chen, X. (2024). Comparative study on power decoupling technology based on double frequency disturbance suppression of single-phase photovoltaic inverter. Highlights in Science, Engineering and Technology, 97, 333-339. https://doi.org/10.54097/11s12b79