Based on the optimal current control principle, a fault-tolerant control strategy is proposed for a five-phase permanent magnet synchronous motor (PMSM) drive with a single open-circuit fault (OCF). The fast Fourier transformation and the concept of undisturbed rotating magnetomotive force are utilized to deduce the optimal phase currents under faulty conditions. Meanwhile, the obtained currents are applied in conjunction with the model predictive current control to preserve torque capacity and minimize torque ripples of faulty drive systems. To reduce the computational burden, only ten large voltage vectors and one zero vector are employed in the cost function optimization. Consequently, simulations and experiments are conducted to validate the effectiveness of the proposed control method.


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    Title :

    Open-Circuit Fault-Tolerant Control of Five-Phase PMSM Drives


    Contributors:
    Huang, Wentao (author) / Huang, Minjie (author) / Luo, Liyan (author) / Du, Jiachen (author) / Zhu, Xiaofeng (author)


    Publication date :

    2022-10-28


    Size :

    1069535 byte




    Type of media :

    Conference paper


    Type of material :

    Electronic Resource


    Language :

    English