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Control of Parallel-Connected Modular Multilevel Converters

机译:并联模块式多电平转换器的控制

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The modular multilevel converter (MMC) is an emerging and highly attractive multilevel converter topology for high-voltage and high-power applications. This paper proposes the control method of parallel-connected modular multilevel converters (parallel-MMCs), which assumes that the multiple MMCs are directly connected at both ac and dc sides to effectively enhance the power rating as expected. Two key problems were first solved for the parallel-MMCs under the normal operation conditions: voltage balancing of submodules and mitigation of circulating currents, where the novel transformed third-order harmonic resonant controller in the synchronous reference frame was employed to mitigate the dominant second-order and fourth-order circulating currents and a sixth-order harmonic resonant controller is used to attenuate the zero-sequence sixth-order circulating current existed in all phase currents per MMC. Considering the high risk of switches fault in the parallel-MMCs, the fault-tolerant operation schemes were then proposed in this paper to address the major concerns of open-circuit and short-circuit switch fault in a submodule, respectively. Carefully controlling the healthy submodules and the corresponding phase arms, the parallel-MMCs can successfully maintain their balanced capacitor voltages and mitigate the circulating currents with the qualified output waveform obtained. In addition, the parallel configuration of MMCs provides the unique solution for the short-circuit switch fault operation which was seldom discussed in the published literature works with respect to the MMC fault-tolerant operation schemes. MATLAB simulations and the constructed experimental prototype have verified the performance of the proposed control strategy.
机译:模块化多电平转换器(MMC)是一种新兴的,有吸引力的多电平转换器拓扑,适用于高压和大功率应用。本文提出了一种并行连接的模块化多电平转换器(parallel-MMCs)的控制方法,该方法假设多个MMC在AC和DC侧直接连接以有效地提高额定功率。在正常工作条件下,并联MMC首先解决了两个关键问题:子模块的电压平衡和循环电流的缓解,其中在同步参考系中采用新颖的变换三阶谐波谐振控制器来减轻主要的二次谐波。每阶MMC使用一阶和四阶循环电流以及六阶谐波谐振控制器来衰减存在于所有相电流中的零序六阶循环电流。考虑到并联MMC中开关故障的高风险,提出了一种容错操作方案,分别解决了子模块中开路和短路开关故障的主要问题。仔细控制健康的子模块和相应的相臂,并联MMC可以成功获得其合格的输出波形,从而成功地维持其平衡的电容器电压并缓解循环电流。此外,MMC的并行配置为短路开关故障操作提供了独特的解决方案,这在已发表的文献中很少针对MMC容错操作方案进行讨论。 MATLAB仿真和所构建的实验原型已经验证了所提出的控制策略的性能。

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