A novel efficient adaptive-neuro fuzzy interfaced system control based smart grid to enhance power quality

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Abstract

A novel adaptive-neuro fuzzy interfaced system (ANFIS) control algorithm-based smart grid to solve power quality issues is investigated in this paper. To improve the steady-state and transient response of the solar-wind and grid integrated system proposed ANFIS controller works very well. Fuzzy maximum power point tracking (MPPT) algorithm-based DC-DC converters are utilized to extract maximum power from solar. A permanent magnet synchronous generator (PMSG) is employed to get maximum power from wind. To maximize both power generations, back-to-back voltage source converters (VSC) are operated with an intelligent ANFIS controller. Optimal power converters are adopted this proposed methodology and improved the overall performance of the system to an acceptable limit. The simulation results are obtained for a different mode of smart grid and non-linear fault conditions and the proven proposed control algorithm works well.

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Sekhar, D. C., Rao, P. V. V. R., & Kiranmayi, R. (2022). A novel efficient adaptive-neuro fuzzy interfaced system control based smart grid to enhance power quality. International Journal of Electrical and Computer Engineering, 12(4), 3375–3387. https://doi.org/10.11591/ijece.v12i4.pp3375-3387

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