Sensorless Speed Control of PMSMs based on an Improved Particle Filter

H. Ren, Zi-Yuan Nan, Jie Li
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Abstract

Position sensors in permanent magnet synchronous motor (PMSM) are restrained in some applications because of the space restriction and the reliability of the system. A marginalized particle filter (MPF) can used to staminate the speed of the motor by combining a Kalman filter (KF) with a particle filter (PF). In the MPF algorithm, the rotor position of the permanent magnet synchronous motor (PMSM) is represented by a set of particles, and the rotor speed associated with each particle is estimated by using the KF. The PF here is used to handle the non-Gaussianity and nonlinearity of the system. In this paper, the uniform distribution of particles is proposed to replace the traditional Gaussian distribution of particles in the PF to get better performance at the low-speed range. The motor drive system prototype is built using a TMS320F28335 digital signal processor as a controller core. The proposed improved PF is used in the sensorless speed vector control PMSM system. The experimental results show that the proposed PF with a uniform distribution of initial particles enables more accurate speed estimation in the low-speed range compared to the conventional Gaussian distribution, while increasing number of particles also helps to improve the accuracy.
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基于改进粒子滤波的永磁同步电机无传感器速度控制
由于空间和系统可靠性的限制,永磁同步电机中的位置传感器在某些应用中受到了限制。将卡尔曼滤波(KF)与粒子滤波(PF)相结合,采用边缘粒子滤波(MPF)对电机进行速度抑制。在MPF算法中,永磁同步电机的转子位置由一组粒子表示,并利用KF估计与每个粒子相关联的转子转速。这里的PF用于处理系统的非高斯性和非线性。本文提出粒子均匀分布来取代传统的粒子高斯分布,从而在低速范围内获得更好的性能。电机驱动系统原型采用TMS320F28335数字信号处理器作为控制器核心。将改进的滤波器应用于无传感器速度矢量控制的永磁同步电动机系统中。实验结果表明,与传统的高斯分布相比,初始粒子均匀分布的PF可以在低速范围内更准确地估计速度,同时增加粒子数量也有助于提高精度。
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