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Article

Fault-Tolerant Three-Vector Model-Predictive-Control-Based Grid-Connected Control Strategy for Offshore Wind Farms

1
State Centre for Engineering Research, Ministry of Education for Renewable Energy Generation and Grid-Connected Control (Xinjiang University), Urumqi 830047, China
2
State Grid Xinjiang Integrated Energy Service Company Limited, Urumqi 830011, China
*
Author to whom correspondence should be addressed.
Electronics 2024, 13(12), 2316; https://doi.org/10.3390/electronics13122316
Submission received: 8 May 2024 / Revised: 4 June 2024 / Accepted: 12 June 2024 / Published: 13 June 2024

Abstract

In the conventional dual-loop vector control strategy of Voltage Source Converter-based High Voltage Direct Current (VSC-HVDC) systems employed in offshore wind farms, challenges such as complex PI parameter-tuning and slow response speed exist. Furthermore, a single-phase bridge-arm fault in the converter station can lead to a change in system parameters, resulting in the failure of the original control strategy. Hence, this paper proposes a fault-tolerant control strategy for grid-connected offshore wind farms, based on model predictive control (MPC). Firstly, the predictive models for both normal and fault-tolerant states of the grid-side converter station are established based on the system structure of the grid-side converter station and a super-local model. Subsequently, a cost function is constructed using the power error, with the optimization objective set as the value function. This approach allows for accurate prediction of the future switching states of the grid-tied inverter to track the reference power. Finally, a simulation model of the offshore wind power grid system is established in the MATLAB/Simulink (2022a) environment. The results demonstrate that the grid-side converter station can effectively operate in a fault-tolerant manner under the proposed control strategy, thereby enhancing the disturbance resistance and fault-recovery capabilities of the offshore wind VSC-HVDC system.
Keywords: offshore wind farm; VSC converter station; single-phase bridge-arm fault; model-free predictive control; fault-tolerant control offshore wind farm; VSC converter station; single-phase bridge-arm fault; model-free predictive control; fault-tolerant control

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MDPI and ACS Style

Wu, J.; Li, J.; Wang, H.; Li, G.; Ru, Y. Fault-Tolerant Three-Vector Model-Predictive-Control-Based Grid-Connected Control Strategy for Offshore Wind Farms. Electronics 2024, 13, 2316. https://doi.org/10.3390/electronics13122316

AMA Style

Wu J, Li J, Wang H, Li G, Ru Y. Fault-Tolerant Three-Vector Model-Predictive-Control-Based Grid-Connected Control Strategy for Offshore Wind Farms. Electronics. 2024; 13(12):2316. https://doi.org/10.3390/electronics13122316

Chicago/Turabian Style

Wu, Jiahui, Jiangyong Li, Haiyun Wang, Guodong Li, and Yalun Ru. 2024. "Fault-Tolerant Three-Vector Model-Predictive-Control-Based Grid-Connected Control Strategy for Offshore Wind Farms" Electronics 13, no. 12: 2316. https://doi.org/10.3390/electronics13122316

APA Style

Wu, J., Li, J., Wang, H., Li, G., & Ru, Y. (2024). Fault-Tolerant Three-Vector Model-Predictive-Control-Based Grid-Connected Control Strategy for Offshore Wind Farms. Electronics, 13(12), 2316. https://doi.org/10.3390/electronics13122316

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