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Optimal controller design for a matrix converter based surface mounted PMSM drive system

机译:基于矩阵转换器的表面贴装PMSM驱动系统的最优控制器设计

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This paper proposes a new control algorithm for a matrix converter permanent magnet synchronous motor (PMSM) drive system. First, a new switching strategy, which applies a backpropagation neural network to adjust a pseudo DC bus voltage, is proposed to reduce the current harmonics of the permanent magnet synchronous motor. Next, a two-degree-of-freedom controller is proposed to improve the system performance. The parameters of this controller are obtained by using a frequency-domain optimization technique. The controller design algorithm can be applied in an adjustable speed control system and a position control system to obtain good transient responses and good load disturbance rejection abilities. The controller design procedures require only algebraic computation. The implementation of this kind of controller is only possible by using a high-speed digital signal processor. In this paper, all the control loops, including current-loop, speed-loop, and position-loop, are implemented by a 32-b TMS320C40 digital signal processor. The hardware, therefore, is very simple. Several experimental results are shown to validate the theoretical analysis.
机译:提出了一种新型的矩阵变换器永磁同步电动机(PMSM)驱动系统控制算法。首先,提出了一种新的切换策略,该策略应用反向传播神经网络来调整伪直流母线电压,以减少永磁同步电动机的电流谐波。接下来,提出了一种两自由度控制器以提高系统性能。该控制器的参数通过使用频域优化技术获得。该控制器设计算法可应用于可调速控制系统和位置控制系统,以获得良好的瞬态响应和良好的负载扰动抑制能力。控制器设计过程仅需要代数计算。只有使用高速数字信号处理器才能实现这种控制器。本文中的所有控制回路,包括电流回路,速度回路和位置回路,均由32位TMS320C40数字信号处理器实现。因此,硬件非常简单。显示了几个实验结果以验证理论分析。

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