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Robust higher order sliding mode control of grid‐forming converters with LCL filter in weak grid scenarios for fast frequency support

Authors :
Tuhin S. Das
Udaya D. Annakkage
Dharshana Muthumuni
In Kwon Park
Source :
IET Generation, Transmission & Distribution, Vol 18, Iss 23, Pp 3851-3862 (2024)
Publication Year :
2024
Publisher :
Wiley, 2024.

Abstract

Abstract This paper presents a nonlinear higher‐order sliding mode control (HO‐SMC) designed for a droop control‐based grid‐forming converter. In weak grid scenarios, where the rate of change of frequency is notably high, achieving a rapid frequency response becomes imperative. The stable operation of a grid‐forming converter using droop control, coupled with classical vector control that employs cascaded voltage and current loops (multiloop) with PI controllers, faces limitations when higher droop coefficients are applied. This constraint on the application of classical vector control in weak grid conditions necessitates alternative solutions. Operating as a grid‐forming converter, the grid‐connected converter with an LCL filter represents a second‐order system. HO‐SMC mitigates the switching challenges associated with conventional SMC by integrating robust feedback linearized control. A graphical method is proposed for designing the switching gain using Lyapunov's direct method to counteract the impact of a matched disturbance. The study demonstrates that the implementation of HO‐SMC in the grid‐forming converter enhances fast frequency response by increasing the gain margin of the power frequency (P--f) loop. Finally, it is illustrated that the proposed control method also improves the transient response of the converter.

Details

Language :
English
ISSN :
17518695 and 17518687
Volume :
18
Issue :
23
Database :
Directory of Open Access Journals
Journal :
IET Generation, Transmission & Distribution
Publication Type :
Academic Journal
Accession number :
edsdoj.0b9a8f2d80d7488782ef5ca4b3fb9ba5
Document Type :
article
Full Text :
https://doi.org/10.1049/gtd2.13263