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A Simplified Space Vector Pulse Width Modulation Implementation in Modular Multilevel Converters for Electric Ship Propulsion Systems

机译:电船推进系统模块化多级转换器中的简化空间矢量脉冲宽度调制实现

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摘要

The modularity, fault-tolerability, and voltage scalability features allow the modular multilevel converter (MMC) to be a promising topology for modern electric ship applications. Arm voltage and submodule (SM) capacitor voltage balancing controllers with conventional high-frequency modulation schemes are indispensable for reliable and stable operation of an MMC. This requires an additional external arm controller and the control complexity increases for an MMC with a large number of SMs. Alternatively, the space-vector pulse width modulation (SVPWM) schemes provide more freedom in selecting the voltage vectors to achieve multiple objectives, thus eliminating the arm voltage balancing controller. In this paper, a simplified SVPWM implementation f o r an n-level MMC is proposed. This scheme utilizes all the available switching states and calculates switching timings by mapping to a two-level space-vector structure. The computational burden of the proposed scheme is independent of converter voltage level, therefore it is computationally efficient and well suited to the MMC with any number of SMs. Experimental results are presented to show the performance of an MMC system using the proposed scheme under steady-state, rapid acceleration and speed-reversal conditions.
机译:模块化,容错性和电压可伸缩性功能允许模块化多级转换器(MMC)成为现代电船应用的有前途拓扑。具有传统高频调制方案的ARM电压和子模块(SM)电容器电压平衡控制器对于MMC的可靠和稳定运行是必不可少的。这需要额外的外部臂控制器,并且控制复杂性具有大量SMS的MMC增加。或者,空间 - 矢量脉冲宽度调制(SVPWM)方案在选择电压矢量方面提供更多自由度以实现多个目标,从而消除了臂电压平衡控制器。本文提出了一种简化的SVPWM实现,提出了N级MMC。该方案利用所有可用的交换状态,通过映射到两级空间矢量结构来计算切换定时。所提出的方案的计算负担与转换器电压电平无关,因此它是使用任何数量的SMS计算的高效且非常适合MMC。提出了实验结果以显示MMC系统在稳态,快速加速和速度逆转条件下使用所提出的方案的性能。

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