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Fast Finite-Set Model Predictive Control for Three-Phase Four-Arm Active Front End Modular Multilevel Converters Under Unbalanced and Distorted Network Conditions

机译:三相四臂主动前端模块化多级转换器的快速有限设定模型预测控制在不平衡和扭曲的网络条件下

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This paper focuses on a fast finite-set model predictive control (FFS-MPC) for three-phase four-arm active front end modular multilevel converters (AFE-MMCs) under unbalanced and distorted network conditions. The main aim of this paper is to enhance the steady-state performance of the whole system while remaining computationally feasible. Firstly, a novel topology, which has a good potential to improve the fault tolerance ability of MMCs, is presented in this literature. Secondly, in order to enhance the steady-state control performance, a new FFS-MPC methodology is proposed to serve this purpose. Specifically, the philosophy behind the proposed solution is to formulate a user-predefined cost function formula by embedding a power compensation term and an integral error term at the same time, which improves the power quality under normal and under abnormal conditions. However, it is important to notice that the computational complexity will be increased while applying the proposed solution to the control of three-phase four-arm AFE-MMCs. To solve this issue, a fast MPC is introduced into the proposed methodology to improve the computational efficiency, making it suitable for multilevel converters control. Finally, the effectiveness and feasibility of the proposed FFS-MPC methodology can be validated by the comprehensive results for regulated three-phase four-arm AFE-MMCs.
机译:本文侧重于在不平衡和扭曲的网络条件下为三相四臂主动前端模块化多电平转换器(AFE-MMC)的快速有限设定的模型预测控制(FFS-MPC)。本文的主要目的是增强整个系统的稳态性能,同时剩下计算可行。首先,在本文中提出了一种新颖的拓扑,其具有改善MMCs的容错能力的良好潜力。其次,为了提高稳态控制性能,提出了一种新的FFS-MPC方法来满足该目的。具体而言,所提出的解决方案背后的哲学是通过在同一时间嵌入功率补偿项和积分误差术语来制定用户预定义的成本函数公式,这提高了正常情况下的功率质量。然而,重要的是要注意到计算复杂性,同时将所提出的解决方案应用于三相四臂AFE-MMCS的控制。为解决此问题,将快速MPC引入所提出的方法,以提高计算效率,使其适用于多级转换器控制。最后,可以通过监管的三相四臂AFE-MMCs的综合结果验证所提出的FFS-MPC方法的有效性和可行性。

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