3×5直接矩阵变换器控制五相永磁同步电动机的开关调节

M. Ishaq, Yanbo Che, K. Ullah
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引用次数: 2

摘要

矩阵变换器是一种由一组双向开关组成的交流-交流直接功率变换器。它不需要一个中间的直流链路,并允许正弦输出波形与不同的幅度和频率。这些双向开关的配置决定了矩阵变换器输入和输出的数量。本研究采用直接矩阵变换器(direct matrix converter, DMC)作为相变器件,将三相交流电压转换为5相交流电压。采用模型预测控制算法对DMC进行调制。DMC的输出被送入五相永磁同步电动机(PMSM)。通过建立输入滤波器和永磁电机作为负载的数学模型,实现了DMC的模型预测电流控制技术。DMC的预测控制使输出电流呈正弦,并使输出电流的频率变化成为可能。这种频率变化在控制连接到负载的电机的速度方面是有用的。控制好五相电机后,进行开关频率调节,观察其对电机定子电流波形的影响。开关频率调节有助于限制DMC不必要的开关。我们开发了一个基于matlab的Simulink模型来研究永磁同步电机,并给出了详细的结果。结果表明,开关调节可以在不影响电流波形质量的情况下显著降低开关频率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Switching Regulation in the Control of 5-Phase Permanent Magnet Synchronous Motor Fed by 3×5 Direct Matrix Converter
Matrix converter is an AC-AC direct power converter comprising of an array of bi-directional switches. It does not require an intermediate DC-link and allows sinusoidal output waveforms with varying amplitudes and frequencies. The configuration of these bi-directional switches decides the number of inputs and outputs of the matrix converter. This research uses a direct matrix converter (DMC) as a phase-changing device that can convert a three-phase AC voltage into a 5-phase AC voltage. The DMC is modulated with the model predictive control algorithm. The output of DMC is fed to a five-phase permanent magnet synchronous motor (PMSM). The model predictive current control technique for DMC is carried out by developing a mathematical model of an input filter and PM motor used as a load. The predictive control of DMC results in sinusoidal output current, and it also enables the frequency variation in the output current. This frequency variation is useful in controlling the speed of the motor connected to the load. After controlling the 5-phase motor, the switching frequency regulation is done to observe its effect on the motor's stator current waveforms. Switching frequency regulation helps to limit the unnecessary switching of DMC. We developed a MATLAB-based Simulink model to study PMSM, and detailed results are presented. The results show that switching regulation can significantly reduce the switching frequency without compromising the current waveform quality.
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