Extended Kalman Filter as the Prediction Model in Sensorless Predictive Control of Induction Motor

S. Alireza Davari, Shirin Azadi, Luca Tarisciotti, Cristian Garcia, Zhenbin Zhang, Fengxinag Wang, Jose Rodriguez

Producción científica: Contribución a los tipos de informe/libroContribución a la conferenciarevisión exhaustiva

Resumen

The accuracy and robustness of the prediction model are always critical issues in model predictive control (MPC). This is more serious in sensorless applications because there are more uncertain parameters in the control system. Extended Kalman filter (EKF) is known as one of the self-correction methods. It has been widely used in sensorless applications as the observer with the aim of speed estimation. In this research, a new prediction model based on EKF is proposed and studied. This study aims to investigate the effectiveness of the EKF-based prediction model in the presence of parameter mismatch in the sensorless application of the predictive method. The simulation results verify the validity of the proposed method.

Idioma originalInglés
Título de la publicación alojada2023 IEEE International Conference on Predictive Control of Electrical Drives and Power Electronics, PRECEDE 2023
EditorialInstitute of Electrical and Electronics Engineers Inc.
ISBN (versión digital)9798350396867
DOI
EstadoPublicada - 2023
Evento2023 IEEE International Conference on Predictive Control of Electrical Drives and Power Electronics, PRECEDE 2023 - Wuhan, China
Duración: 16 jun. 202319 jun. 2023

Serie de la publicación

Nombre2023 IEEE International Conference on Predictive Control of Electrical Drives and Power Electronics, PRECEDE 2023

Conferencia

Conferencia2023 IEEE International Conference on Predictive Control of Electrical Drives and Power Electronics, PRECEDE 2023
País/TerritorioChina
CiudadWuhan
Período16/06/2319/06/23

Áreas temáticas de ASJC Scopus

  • Control y optimización
  • Modelización y simulación
  • Ingeniería energética y tecnologías de la energía
  • Ingeniería eléctrica y electrónica
  • Ingeniería mecánica
  • Seguridad, riesgos, fiabilidad y calidad

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