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Direct Model Predictive Control strategy for multi-phase thyristor matrix converters

机译:多相晶闸管矩阵变换器的直接模型预测控制策略

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Model Predictive Control (MPC) is a very powerful and increasing popular control method. Due to increasing calculation power of state-of-the-art control hardware platforms and computationally efficient MPC approaches, MPC is already feasible for processes with small time constants as they are common in converter and drive control. In this paper, a 27-to-3-phase thyristor matrix converter (also known as cycloconverter) is considered. Such a converter can be controlled with the standard control angle approach. However the full available system performance cannot be utilized using this standard method, since each of the grid phases is separately controlled. Compared to the standard method, the MPC as a multi-variable control algorithm considers the whole coupled overall system. Due to this, all 273 = 19683 switching states are considered. Besides the proof of the function of a Direct MPC for the 27-to-3-phase thyristor matrix converter, this paper also demonstrates that the commutation frequency can be distinctly reduced by the use of the MPC. Since the switching losses mainly depend on the switching frequency, the converter losses will be significantly reduced by this method.
机译:模型预测控制(MPC)是一种非常强大且日益流行的控制方法。由于先进的控制硬件平台的计算能力不断提高,并且计算效率高,因此MPC方法已经在转换器和驱动控制中很常见,对于时间常数较小的过程而言,MPC已经可行。本文考虑了27相至3相晶闸管矩阵转换器(也称为循环转换器)。可以使用标准控制角方法来控制此类转换器。但是,由于每个电网阶段都是独立控制的,因此无法使用此标准方法来利用全部可用的系统性能。与标准方法相比,MPC作为多变量控制算法考虑了整个耦合的整个系统。因此,考虑了所有273 = 19683个开关状态。除了证明直接MPC在27到3相晶闸管矩阵转换器中的功能外,本文还证明了通过使用MPC可以明显降低换向频率。由于开关损耗主要取决于开关频率,因此该方法将显着降低转换器损耗。

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