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Model Predictive Current Control for PMSM Drives With Parameter Robustness Improvement

机译:具有参数鲁棒性改进的PMSM驱动器模型预测电流控制

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摘要

In order to solve the parameter dependence problem in model predictive control, an improved model predictive current control (MPCC) method based on the incremental model for surface-mounted permanent-magnet synchronous motor drives is proposed in this paper. First, the parameter sensitivity of a conventional MPCC method is analyzed, which indicates that the parameter mismatches would cause prediction current error and inaccurate delay compensation. Therefore, an incremental prediction model is introduced in this paper to eliminate the use of permanent magnetic flux linkage in a prediction model. Among the parameter of the incremental prediction model, only inductance mismatch contributes to the prediction error, since the influence of resistance mismatch on the control performance is very small. Therefore, in order to improve the antiparameter-disturbance capability of the MPCC method, an inductance disturbance controller, which includes the inductance disturbance observer and inductance extraction algorithm, is presented to update accurate inductance information for the whole control system in real time. Finally, simulation and experimental results both show that the proposed method can effectively eliminate the influence of the parameter mismatches on the control performance and reduce the parameter sensitivity of the MPCC method.
机译:为了解决模型预测控制中的参数依赖问题,提出了一种基于增量模型的表面安装式永磁同步电动机驱动器模型改进电流预测方法。首先,分析了传统MPCC方法的参数敏感性,这表明参数不匹配会导致预测电流误差和不正确的延迟补偿。因此,本文引入了增量预测模型,以消除在预测模型中使用永久磁通链。在增量预测模型的参数中,只有电阻失配会导致预测误差,因为电阻失配对控制性能的影响非常小。因此,为了提高MPCC方法的抗参数扰动能力,提出了一种电感干扰控制器,该控制器包括电感干扰观测器和电感提取算法,可以实时更新整个控制系统的准确电感信息。最后,仿真和实验结果均表明,该方法能够有效消除参数不匹配对控制性能的影响,降低MPCC方法的参数灵敏度。

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