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Sensorless Control for a Switched Reluctance Wind Generator, Based on Current Slopes and Neural Networks.

, , , and . IEEE Trans. Ind. Electron., 56 (3): 817-825 (2009)

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Overview of control systems for the operation of DFIGs in wind energy applications., , and . IECON, page 88-95. IEEE, (2013)Improved Modular Multilevel Converter topology for low voltage variable speed drives., , , and . ICIT, page 837-842. IEEE, (2020)Stability Analysis of a Wind Energy Conversion System Based on a Doubly Fed Induction Generator Fed by a Matrix Converter., , , , , and . IEEE Trans. Ind. Electron., 56 (10): 4194-4206 (2009)Control of Wind Energy Conversion Systems Based on the Modular Multilevel Matrix Converter., , , , , , and . IEEE Trans. Ind. Electron., 64 (11): 8799-8810 (2017)Secondary Control Strategies for Frequency Restoration in Islanded Microgrids With Consideration of Communication Delays., , , and . IEEE Trans. Smart Grid, 7 (3): 1430-1441 (2016)Modelling and control of the Modular Multilevel Matrix Converter and its application to Wind Energy Conversion Systems., , , , and . IECON, page 5052-5057. IEEE, (2016)Control of modular multilevel cascade converters for offshore wind energy generation and transmission., , , , , , and . EVER, page 1-10. IEEE, (2018)Sensorless Control for a Switched Reluctance Wind Generator, Based on Current Slopes and Neural Networks., , , and . IEEE Trans. Ind. Electron., 56 (3): 817-825 (2009)Continuous Control Set Model Predictive Control of a Modular Multilevel Converter for Drive Applications., , , , , and . IEEE Trans. Ind. Electron., 70 (9): 8723-8733 (September 2023)Back To Back Modular Multilevel Converter with Dynamic Hybrid Link For High Performance Drive., , , , and . IECON, page 1-7. IEEE, (2021)