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Distributed Control for the Modular Multilevel Matrix Converter

机译:模块化多级矩阵转换器的分布式控制

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The modular multilevel matrix converter (M3C) is a direct ac/ac topology and is promising in the medium-voltage high-power application. However, the current M3C prototypes mainly adopt the centralized control structure that may hinder its modularity and flexibility. Based on the new distributed control architecture, the corresponding design principles for the M3C are proposed to realize both the distribution of control tasks and improve the expandability. And in order to reduce the dependence of a real-time communication network, a time-dimension decoupling strategy based on a voltage decoupling and current coupling control algorithm is employed, in which the voltage loop is divided into the input side, output side, and inner circulating decoupling models that are executed in the system controller, while the real-time current loop is established on the coupling abc coordinate frame in each local controller. In order to reduce the influence of communication delay, a novel scheme to replace the direct ac current reference with dc power value and double synchronization phase information is adopted. The controller parameters of the current loop are also designed carefully after frequency decomposition. Finally, an experimental prototype is constructed to verify the feasibility of the proposed control scheme after a series of tests in steady-state and dynamic operations.
机译:模块化多级矩阵转换器(M3C)是直接AC / AC拓扑,在中电压高功率应用中具有很有希望。然而,目前的M3C原型主要采用集中控制结构,可能阻碍其模块化和灵活性。基于新的分布式控制架构,提出了M3C的相应设计原理,以实现控制任务的分布并提高可扩展性。并且为了降低实时通信网络的依赖性,采用基于电压去耦和电流耦合控制算法的时间维解耦策略,其中电压环被分成输入侧,输出侧,以及在系统控制器中执行的内部循环去耦模型,而在每个本地控制器中的耦合ABC坐标帧上建立实时电流环。为了降低通信延迟的影响,采用了用DC功率值替换直接交流电流参考的新颖方案和双同步相位信息。电流回路的控制器参数也在频率分解之后仔细设计。最后,构建了一种实验原型,以验证在稳态和动态操作的一系列测试之后验证所提出的控制方案的可行性。

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