Parameter tuning of PI control for speed regulation of a PMSM using bio-inspired algorithms

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Abstract

This article focuses on the optimal gain selection for Proportional Integral (PI) controllers comprising a speed control scheme for the Permanent Magnet Synchronous Motor (PMSM). The gains calculation is performed by means of different algorithms inspired by nature, which allows improvement of the system performance in speed regulation tasks. For the tuning of the control parameters, five optimization algorithms are chosen: Bat Algorithm (BA), Biogeography-Based Optimization (BBO), Cuckoo Search Algorithm (CSA), Flower Pollination Algorithm (FPA) and Sine-Cosine Algorithm (SCA). Finally, for purposes of efficiency assessment, two reference speed profiles are introduced, where an acceptable PMSM performance is attained by using the proposed PI controllers tuned by nature inspired algorithms.

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Templos-Santos, J. L., Aguilar-Mejia, O., Peralta-Sanchez, E., & Sosa-Cortez, R. (2019). Parameter tuning of PI control for speed regulation of a PMSM using bio-inspired algorithms. Algorithms, 12(3). https://doi.org/10.3390/A12030054

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