Application of CSA Algorithm for the PMSM Speed Estimator of The FOC Control Method Using Extended Kalman Filter
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Vysoká škola báňská - Technická univerzita Ostrava
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Abstract
Nowadays, Permanent Magnet Syn-
chronous Motors (PMSM) are used more and more
widely due to their advantages over other types of
motors, such as high efficiency, constant torque, higher
power density, and wide speed range. Many studies on
this motor have been carried out in the industry. This
paper proposes an application for the PMSM motor
to estimate the speed of the motor rotor using an
extended Kalman filter (EKF). This also means that
the motor is controlled without using a speed sensor,
so the system has the advantages of reducing the cost
of manufacturing encoders, less damage, increased
reliability, and reduced size due to the absence of
moving mechanical parts of the sensor. The estimated
performance depends heavily on the parameters of
the covariance matrices in the filter. In the paper,
the filter parameters are optimized using the Cuckoo
Search Algorithm (CSA). The simulation results of
the proposed algorithm on the PMSM motor show its
advantages over traditional methods.
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Subject(s)
EKF, FOC control, CSA algorithm, PMSM, Speed estimation, Sensorless, MRAS, noise
Citation
Advances in electrical and electronic engineering. 2025, vol. 23, no. 4, pp. 313 – 322 : ill.