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A Compact MMC Submodule Structure With Reduced Capacitor Size Using the Stacked Switched Capacitor Architecture

机译:使用堆叠式开关电容器架构的紧凑型MMC子模块结构,具有减小的电容器尺寸

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摘要

Modular multilevel converters (MMCs) are being developed for the grid connection of offshore wind or tidal farms. In order to reduce the construction and maintenance costs, it is desirable to reduce the weight and volume of the system. In current MMC submodule designs, the reservoir capacitor usually accounts for over 50% of the total volume and 80% of weight. This paper presents a new design concept and control principle for a submodule using the stacked switched capacitor (SSC) architecture that can significantly reduce the capacitor size in an MMC. Practical considerations for a high-voltage high-power SSC-based MMC submodule are presented in this paper, through the design of a 21-level, 40-kV (pole-pole dc), 19.1-MW, grid-connected system, and the concept is demonstrated experimenttally on a scaled-down 400-V, 12.3-Apeak laboratory prototype submodule. It is shown that with the proposed SSC architecture, the total volume of capacitors in each submodule can be reduced by more than 40% without significantly increasing the power loss.
机译:正在开发模块化多电平转换器(MMC),用于海上风电场或潮汐电站的并网。为了减少构造和维护成本,期望减小系统的重量和体积。在当前的MMC子模块设计中,储能电容器通常占总体积的50%以上和重量的80%。本文介绍了使用堆叠式开关电容器(SSC)架构的子模块的新设计概念和控制原理,该子模块可以显着减小MMC中的电容器尺寸。本文通过设计21级,40 kV(极-极直流),19.1 MW并网系统和设计了基于高压,大功率,基于SSC的MMC子模块的实际考虑因素。该概念已在缩小的400V,12.3Apeak实验室原型子模块上进行了实验验证。结果表明,采用提出的SSC体系结构,每个子模块中的电容器总体积可以减少40%以上,而不会显着增加功率损耗。

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