An Improved Deadbeat Predictive Current Control of PMSM Drives Based on the Ultra-local Model

IF 3.5 Q1 Engineering
Yongchang Zhang;Wenjia Shen;Haitao Yang
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引用次数: 0

Abstract

Deadbeat predictive current control (DPCC) has been widely applied in permanent magnet synchronous motor (PMSM) drives due to its fast dynamic response and good steady-state performance. However, the control accuracy of DPCC is dependent on the machine parameters' accuracy. In practical applications, the machine parameters may vary with working conditions due to temperature, saturation, skin effect, and so on. As a result, the performance of DPCC may degrade when there are parameter mismatches between the actual value and the one used in the controller. To solve the problem of parameter dependence for DPCC, this study proposes an improved model-free predictive current control method for PMSM drives. The accurate model of the PMSM is replaced by a first-order ultra-local model. This model is dynamically updated by online estimation of the gain of the input voltage and the other parts describing the system dynamics. After obtaining this ultra-local model from the information on the measured stator currents and applied stator voltages in past control periods, the reference voltage value can be calculated based on the principle of DPCC, which is subsequently synthesized by space vector modulation (SVM). This method is compared with conventional DPCC and field-oriented control (FOC), and its superiority is verified by the presented experimental results.
基于超局部模型的永磁同步电机无差拍预测电流控制
无差拍预测电流控制(DPCC)由于其快速的动态响应和良好的稳态性能,在永磁同步电机驱动中得到了广泛的应用。然而,DPCC的控制精度取决于机床参数的精度。在实际应用中,由于温度、饱和度、趋肤效应等因素,机器参数可能会随着工作条件的变化而变化。因此,当实际值与控制器中使用的参数不匹配时,DPCC的性能可能会下降。为解决DPCC的参数依赖问题,提出了一种改进的无模型预测电流控制方法。用一阶超局部模型代替了永磁同步电机的精确模型。该模型通过在线估计输入电压增益和描述系统动态的其他部分来动态更新。从过去控制周期的定子电流和外加电压的测量信息中得到该超局部模型后,根据DPCC原理计算出参考电压值,然后通过空间矢量调制(SVM)进行合成。将该方法与传统的DPCC和场定向控制(FOC)进行了比较,实验结果验证了该方法的优越性。
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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来源期刊
Chinese Journal of Electrical Engineering
Chinese Journal of Electrical Engineering Energy-Energy Engineering and Power Technology
CiteScore
7.80
自引率
0.00%
发文量
621
审稿时长
12 weeks
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