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Article

Feedforward Control Strategy of a DC-DC Converter for an Off-Grid Hydrogen Production System Based on a Linear Extended State Observer and Super-Twisting Sliding Mode Control

1
College of New Energy, China University of Petroleum (East China), No. 66, West Changjiang Road, Huangdao District, Qingdao 266580, China
2
Laboratory 12, Sinopec (Dalian) Petrochemical Research Institute Co., Dalian 116045, China
*
Author to whom correspondence should be addressed.
Electronics 2024, 13(19), 3934; https://doi.org/10.3390/electronics13193934
Submission received: 16 August 2024 / Revised: 2 October 2024 / Accepted: 3 October 2024 / Published: 4 October 2024

Abstract

With the large-scale integration of renewable energy into off-grid DC systems, the stability issues caused by their fluctuations have become increasingly prominent. The dual active bridge (DAB) converter, as a DC-DC converter suitable for high power and high voltage level off-grid DC systems, plays a crucial role in maintaining and regulating grid stability through its control methods. However, the existing control methods for DAB are inadequate: linear control fails to meet dynamic response requirements, while nonlinear control relies on detailed model structures and parameters, making the control design complex and less accurate. To address this issue, this paper proposes a feedforward control strategy for a DC-DC converter in an off-grid hydrogen production system based on a linear extended state observer (LESO) and super-twisting sliding mode control (STSMC). Firstly, a reduced-order simplified model of the DAB was constructed through the structure of DAB. Then, based on the reduced-order simplified model, a feedforward control based on LESO and STSMC was designed, and its stability was analyzed. Finally, a simulation comparison of PI, LESO + terminal sliding mode control (TSMC), and LESO + STSMC control methods was conducted in a DC off-grid hydrogen production system. The results verified the proposed control method’s enhancement of the DAB’s rapid dynamic response capability and the system’s transient stability.
Keywords: Dual Active Bridge (DAB); off-grid DC system; Linear Extended State Observer (LESO); Sliding Mode Control (SMC) Dual Active Bridge (DAB); off-grid DC system; Linear Extended State Observer (LESO); Sliding Mode Control (SMC)

Share and Cite

MDPI and ACS Style

Kang, Z.; Li, L.; Zhang, H. Feedforward Control Strategy of a DC-DC Converter for an Off-Grid Hydrogen Production System Based on a Linear Extended State Observer and Super-Twisting Sliding Mode Control. Electronics 2024, 13, 3934. https://doi.org/10.3390/electronics13193934

AMA Style

Kang Z, Li L, Zhang H. Feedforward Control Strategy of a DC-DC Converter for an Off-Grid Hydrogen Production System Based on a Linear Extended State Observer and Super-Twisting Sliding Mode Control. Electronics. 2024; 13(19):3934. https://doi.org/10.3390/electronics13193934

Chicago/Turabian Style

Kang, Zhongjian, Longchen Li, and Hongyang Zhang. 2024. "Feedforward Control Strategy of a DC-DC Converter for an Off-Grid Hydrogen Production System Based on a Linear Extended State Observer and Super-Twisting Sliding Mode Control" Electronics 13, no. 19: 3934. https://doi.org/10.3390/electronics13193934

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