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Research on optimization strategy of grid frequency modulation based on doubly-fed wind turbines

Authors :
Jianyuan Xu
Chao Wang
Liang Wang
Dan Song
Source :
International Journal of Low-Carbon Technologies. 16:229-239
Publication Year :
2020
Publisher :
Oxford University Press (OUP), 2020.

Abstract

The increasing global energy and environmental problems are encouraging to the development and utilization of renewable and clean energy in various countries. Wind power is one of the major source in large-scale renewable energy applications. However, the frequency regulation becomes a critical issue while the technology is spreading. Research on the frequency modulation (FM) technology of wind turbines and its control strategy for future power grids become significant. The paper proposes a novel coordinated frequency control strategy with the synchronous generator to solve the unmatched state between the output power of the doubly-fed wind turbines (doubly-fed induction generators) and the grid frequency, combined with the frequency response characteristics of the synchronous generator. The FM coordination strategy is formulated by the modulation coefficient from current wind speed and operation mode of each wind turbine. By coordinating the FM output of the doubly-fed wind turbine and the synchronous generator within the allowable range of frequency deviation, it will achieve the dual goal of reducing the frequency regulation pressure of the synchronous generator and indirectly reducing the abandoned wind volume of the wind turbine. The simulation is carried out on the MATLAB/SIMULINK platform. The results show that the presenting variable coefficient frequency modulation strategy could significant smooth the wind power fluctuation, and allow the reserve power of the doubly-fed wind turbine can fully engaged in frequency modulation which will reduces the frequency modulation pressure of the synchronous generator in the system.

Details

ISSN :
17481325
Volume :
16
Database :
OpenAIRE
Journal :
International Journal of Low-Carbon Technologies
Accession number :
edsair.doi...........35137f9b6dc6abb066a44f8324c1d0ed