Impact of Digital Signal Processing on FOC Current Feedback in High-Speed PMSM Drive

L. Jarzebowicz, M. Gutten
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引用次数: 1

Abstract

In applications where size and weight of the electric motor are among major design concerns, Permanent Magnet Synchronous Motors (PMSMs) with wide operational speed-range are commonly preferred. Due to limited inverter switching frequency, high-speed operation of a drive results in a low ratio between the switching frequency and the fundamental frequency of motor voltage. Such operating conditions have been recently identified as a source of errors in determining motor current feedback using the typical technique dedicated for microprocessor-based controllers. First, sampling the phase currents synchronously with the peaks of modulation carrier provides results of mean currents under an assumption of linear current changes in steady voltage intervals. This assumption is over-simplistic in high-speed drives. Second, transforming the phase currents into a rotating reference frame, required in Field Oriented Control (FOC), is carried out using discretized rotor angle. If rotor covers a substantial angular distance in the control cycle, such simplification distorts transformation results considered as mean values. This paper analyses the joint impact of both these oversimplifications on the errors of field-oriented current components derived in a microprocessor as a feedback to the control algorithm. The analysis was carried out for a highspeed PMSM drive operating at switching frequency of 5 kHz and maximal fundamental frequency of 350 Hz. Simulation results show that the considered oversimplifications lead to notable errors in digital processing of current feedback. The direct-axis current is affected by a notable offset, while the quadrature-axis current is supplemented with a high-frequency error component.
数字信号处理对高速永磁同步电机驱动FOC电流反馈的影响
在电动机的尺寸和重量是主要设计问题的应用中,具有宽运行速度范围的永磁同步电动机(pmms)通常是首选。由于变频器开关频率有限,驱动器高速运行导致开关频率与电机电压基频之比较低。这种操作条件最近被确定为使用专用于基于微处理器的控制器的典型技术确定电机电流反馈的错误来源。首先,在假设电流在稳定电压区间内线性变化的情况下,与调制载波的峰值同步采样相电流,得到平均电流的结果。这种假设在高速驱动器中过于简单。其次,采用转子角离散化的方法,将相电流转换为场定向控制(FOC)所需的旋转参考系。如果转子在控制周期内覆盖相当大的角距离,这种简化会使转换结果失真,将其视为平均值。本文分析了这两种过度简化对微处理器中导出的面向场电流分量误差的共同影响,作为对控制算法的反馈。以开关频率为5khz、最大基频为350hz的高速永磁同步电机驱动器为例进行了分析。仿真结果表明,所考虑的过度简化导致电流反馈的数字处理出现明显误差。直轴电流受显著的偏置影响,而正交轴电流则补充了高频误差分量。
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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