Modeling of grid-connected inverter using grid-forming technology

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Authors

  • Nguyen Quang Minh Hanoi University of Science and Technology
  • Cao Thanh Trung (Corresponding Author) Hanoi University of Science and Technology
  • Hoang Anh Hanoi University of Science and Technology

DOI:

https://doi.org/10.54939/1859-1043.j.mst.FEE.2024.51-57

Keywords:

Grid-forming; Droop control; State-space model; Power system stability.

Abstract

Currently, grid-forming inverter technology is attracting attention and research investment worldwide, as it represents a critical step toward achieving a society powered entirely by renewable energy. However, foundational knowledge on this technology remains limited. This paper presents the control system structure for a grid-forming inverter with a simple design approach. First, a general state-space model of the system is developed to assess stability. Then, the system’s operational parameters are verified, and simulations are conducted on PSCAD software for further analysis. The results clarify the key concepts and structure of grid-forming technology, propose a method for stability assessment, and provide guidance on utilizing simulation tools for this system.

References

[1]. J. Rocabert, A. Luna, F. Blaabjerg and P. Rodríguez, “Control of Power Converters in AC Microgrids,” IEEE Transactions on Power Electronics, vol. 27, no. 11, pp. 4734-4749, (2012). DOI: https://doi.org/10.1109/TPEL.2012.2199334

[2]. B. Pawar, E. I. Batzelis, S. Chakrabarti and B. C. Pal, “Grid-Forming Control for Solar PV Systems With Power Reserves,” IEEE Transactions on Sustainable Energy, vol. 12, no. 4, pp. 1947-1959, (2021). DOI: https://doi.org/10.1109/TSTE.2021.3074066

[3]. H. Zhang, W. Xiang, W. Lin and J. Wen, “Grid Forming Converters in Renewable Energy Sources Dominated Power Grid: Control Strategy, Stability, Application, and Challenges,” Journal of Modern Power Systems and Clean Energy, vol. 9, no. 6, pp. 1239-1256, (2021). DOI: https://doi.org/10.35833/MPCE.2021.000257

[4]. Rathnayake, D. B., Akrami, M., Phurailatpam, C., Me, S. P., Hadavi, S., Jayasinghe, G., Zabihi, S., & Bahrani, B., “Grid Forming Inverter Modeling, Control, and Applications,” IEEE Access, vol. PP, pp. 1-1, (2021). DOI: https://doi.org/10.1109/ACCESS.2021.3104617

[5]. P. Piya, M. Ebrahimi, M. Karimi-Ghartemani and S. A. Khajehoddin, “Fault Ride-Through Capability of Voltage-Controlled Inverters,” IEEE Transactions on Industrial Electronics, vol. 65, no. 10, pp. 7933-7943, (2018). DOI: https://doi.org/10.1109/TIE.2018.2803765

[6]. Qoria Taoufik, Quentin Cossart, Chuanyue Li, François Gruson, Frédéric Colas, Xavier Kestelyn, Xavier Guillaud, “D3.2 - Local control and simulation tools for large transmission systems,” (2018).

[7]. Q. -C. Zhong and G. Weiss, “Synchronverters: Inverters That Mimic Synchronous Generators,” IEEE Transactions on Industrial Electronics, vol. 58, no. 4, pp. 1259-1267, (2011). DOI: https://doi.org/10.1109/TIE.2010.2048839

Published

06-12-2024

How to Cite

Nguyễn Quang Minh, Cao Thành Trung, and Hoàng Anh. “Modeling of Grid-Connected Inverter Using Grid-Forming Technology”. Journal of Military Science and Technology, no. FEE, Dec. 2024, pp. 51-57, doi:10.54939/1859-1043.j.mst.FEE.2024.51-57.

Issue

Section

Control – Automation