Prediction-based ripple reduction in Direct Torque Control of an induction machine

J. Beerten, J. Verveckken, J. Driesen
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引用次数: 7

Abstract

In this paper, a new prediction technique is presented in order to minimize both torque and flux ripple in direct torque control (DTC) of an induction machine. When the classical DTC scheme is implemented on a discrete-time base using a digital controller, the choice of the appropriate voltage vector is based on calculated values of torque and flux corresponding to the previous sampling moment. This time delay causes a large fraction of the overall ripple when the hysteresis bands are small compared to the maximum torque and flux variations during one sampling period. This paper aims to present a predictive scheme to correct for this time delay. The technique is characterized by its computational simplicity since it only makes use of the calculated effects of voltage vectors during the previous sampling intervals. The scheme does not require additional motor parameters and therefore shows the same robustness towards parameter variations as the conventional DTC scheme. The prediction scheme can be extended to compensate for an additional time delay when the sampling frequency is raised but the overall process time remains unchanged. Simulations and experimental results show the effectiveness of the proposed prediction scheme to reduce both torque and flux ripple.
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感应电机直接转矩控制中基于预测的纹波减小
针对异步电机直接转矩控制(DTC)中转矩和磁链波动最小化的问题,提出了一种新的预测方法。当使用数字控制器在离散时间基上实现经典的直接转矩控制方案时,适当电压矢量的选择是基于先前采样矩对应的转矩和磁通的计算值。当滞后带与一个采样周期内的最大转矩和磁通变化相比较小时,这种时间延迟会导致总体纹波的很大一部分。本文旨在提出一种预测方案来纠正这种时间延迟。该技术的特点是计算简单,因为它只利用了前一个采样间隔内电压矢量的计算效应。该方案不需要额外的电机参数,因此对参数变化的鲁棒性与传统的DTC方案相同。当采样频率提高但整体处理时间不变时,该预测方案可以扩展以补偿额外的时间延迟。仿真和实验结果表明,所提出的预测方案能够有效地减小转矩和磁链波动。
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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