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Model Predictive Control of Six-Phase Electric Drives Including ARX Disturbance Estimator

机译:六相电动驱动器模型预测控制,包括ARX扰动估计

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摘要

Finite-control-set model predictive control (MPC) including virtual/synthetic voltage vectors (VVs) has been recently proposed for the high-performance regulation of multiphase induction motor drives. However, the performance of VV-MPC still deteriorates when the predictive model presents inaccuracies due to simplifying assumptions or erroneous machine parameters. Nonmodeled effects act as disturbances for the control and ultimately reduce the drive performance. From a different perspective, autoregressive with exogenous variable (ARX) models can be used to predict the future state of the drive based on past values of the system without using a physical model. ARX models are included in this article within the VV-MPC scheme to further enhance the predictive capability and control performance by accounting for model mismatches and disturbances. Experimental results confirm that the proposed VV-ARX-MPC can successfully improve the current tracking, reduce the stator copper losses and provide the drive with further robustness against machine parameter variations.
机译:最近已经提出了包括虚拟/合成电压矢量(VVS)的有限控制设定的模型预测控制(MPC),用于多相感应电动机驱动器的高性能调节。然而,当预测模型引起的由于简化假设或错误的机器参数而呈现不准确性时,VV-MPC的性能仍然恶化。非修改效应充当控制的干扰,最终降低了驱动性能。从不同的角度来看,具有外源变量(ARX)模型的自回归可用于基于系统的过去值而不使用物理模型来预测驱动器的未来状态。 ARX模型包含在VV-MPC方案中的本文中,以进一步提高预测能力和控制性能,以满足模型不匹配和干扰。实验结果证实,所提出的VV-ARX-MPC可以成功地改善电流跟踪,减少定子铜损耗,并提供对机器参数变化的进一步稳健性的驱动器。

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