Control of a Symmetrical Nine-phase PMSM with Highly Non-Sinusoidal Back-Electromotive Force Using Third harmonic Current Injection

M. Slunjski, Martin Jones, E. Levi
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引用次数: 9

Abstract

This paper investigates an enhanced field-oriented control method for a two-pole surface permanent magnet synchronous machine (PMSM) with a symmetrical nine-phase winding configuration and a single neutral point. Magnets on the rotor are shortened, reducing cost of the machine, but cause production of highly non-sinusoidal back-electromotive force (EMF). FFT analysis of the EMF reveals a high third harmonic component, which is almost equal in magnitude to the fundamental. By investigating possible torque improvements using FEM software simulations, it was shown previously that, if controlled under optimal third harmonic current injection, the electromagnetic torque of the studied PMSM can be improved by up to 36%. The optimal current harmonic injection ratio between the fundamental and the third harmonic is determined first in this paper, using the maximum torque-per-ampere method (MTPA). An enhanced high-performance field-oriented control (FOC) algorithm to control a nine-phase non-sinusoidal back-EMF PM synchronous machine is devised next. The developed improved control algorithm is verified using simulation studies and further validated using an experimental prototype.
三次谐波电流注入控制高非正弦反电动势对称九相永磁同步电机
研究了一种具有对称九相绕组结构和单中性点的两极表面永磁同步电机(PMSM)的增强磁场定向控制方法。转子上的磁体缩短,降低了机器成本,但会产生高度非正弦反电动势(EMF)。对电动势的FFT分析揭示了一个高三次谐波分量,其幅度几乎等于基波。通过有限元软件仿真研究可能的转矩改进,先前的研究表明,如果在最优三次谐波电流注入下进行控制,所研究的永磁同步电机的电磁转矩可提高36%。本文首先采用最大转矩/安培法(MTPA)确定了基次和三次谐波之间的最佳电流谐波注入比。然后设计了一种用于控制九相非正弦反电动势永磁同步电机的增强高性能场定向控制算法。所开发的改进控制算法通过仿真研究进行了验证,并进一步通过实验样机进行了验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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