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Binary Capacitor Voltage Control-based MMC with a Hybrid Arm Design for Low Nominal DC Voltage Applications

机译:基于二元电容电压控制的MMC,具有用于低标称直流电压应用的混合臂设计

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The main technical challenge of multilevel converters for low nominal voltage is to abate hardware and control complexity and concomitantly aggrandize DC-AC power- conversion quality and efficiency. In the modular multilevel converter (MMC), the half- or full-bridge sub-modules with the arm inductor can derive various sub-module capacitor voltage control approaches. This paper proposes a new MMC concept utilizing the above MMC’s advantage to address the challenge effectively. The proposed binary capacitor voltage control and circulating current control regulate the sub-module capacitor voltages at the power-of-two reference values and the converterarm voltages at the multilevel reference values through a Lyapunov stability-based cost-function optimization approach exploiting the binary numeral system and the proposed hybrid arm design. Therefore, the proposed MMC improves the DC-AC power conversion quality and efficiency by synthesizing a sinusoidal AC voltage with a significantly large number of voltage levels while extensively reducing hardware and control complexity for low nominal DC voltage applications. A simulation study is presented to demonstrate the steady-state and dynamic performance of the proposed MMC under several conditions.
机译:低标称电压的多级转换器的主要技术挑战是减轻硬件和控制复杂性,并伴随着直流电源转换质量和效率。在模块化多电平转换器(MMC)中,具有臂电感器的半或全桥子模块可以导出各种子模块电容器电压控制方法。本文提出了一种利用上述MMC的优势来解决挑战的新MMC概念。所提出的二进制电容电压控制和循环电流控制通过利用二进制数字的Lyapunov稳定性的成本优化方法,在多级参考值下调节两个电流的参考值和转换器臂电压下的子模块电容电压。利用二进制数字系统和提出的混合臂设计。因此,该提议的MMC通过合成正弦AC电压,通过合成具有显着大量电压电平的正弦交流电压来提高DC-AC电力转换质量和效率,同时广泛地减少硬件并控制低标称直流电压应用的复杂性。提出了一种仿真研究以证明在若干条件下提出的MMC的稳态和动态性能。

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