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Modular Multilevel Converter with Minimum Arm Inductance and Automatic Sub-module Voltage Balance - Y-Matrix Modulation and its Theoretical Proof of the Automatic Voltage Balance

机译:具有最小臂电感和自动子模块电压平衡的模块化多电平转换器-Y矩阵调制及其自动电压平衡的理论证明

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The modular multilevel converter (MMC) is one of the most promising topologies for high- and medium-voltage applications. However, the conventional MMC relies on large arm inductance and complicated feedback control to maintain submodule (SM) capacitor voltages balanced, which requires a large number of voltage sensors and complicated arm current control loops. In contrast to the conventional perspective, the MMC can be regarded as a derivative from the general multilevel topology based on switched-capacitor (SC) structure. The SC structure endows excellent properties to the MMC, such as minimum or no arm inductor and automatic SM capacitor voltage balancing capability. This MMC with minimum or no arm inductor is named as SC-MMC. Since the arm inductances are very small, the SM capacitor voltages can be balanced automatically. Small stray/parasitic inductance is enough to limit inrush current during SM's switching instants to the rated current level. To unleash the automatic SM capacitor voltage balancing capability of the SC-MMC, a Y-matrix modulation (YMM) has been proposed, which does not require closed loop control or any sensor, has no limitations on the number of SMs, and works for both half-bridge and full-bridge SMs. An unresolved issue of the emerging YMM is that, in the published literature, the existence of the Y matrix with full rank has not been proved theoretically beyond the observation for the SC-MMC when the number of SMs is large. In this paper, an analytical proof of the existence of the full rank Y matrix is provided, which implies the automatic voltage balance of SMs for the MMC with arbitrary number of SMs in each arm. Simulation results using the YMM on a 21-level SC-MMC with minimum arm inductance are provided to verify the voltage balance theory/observation of the SC-MMC using the YMM.
机译:模块化多电平转换器(MMC)是高电压和中压应用中最有前途的拓扑之一。但是,传统的MMC依靠较大的臂电感和复杂的反馈控制来保持子模块(SM)电容器电压平衡,这需要大量的电压传感器和复杂的臂电流控制环路。与传统观点相反,MMC可以看作是基于开关电容器(SC)结构的通用多级拓扑的派生类。 SC结构赋予MMC优异的性能,例如最小或无臂电感以及自动SM电容器电压平衡能力。带有最小或没有臂电感的MMC称为SC-MMC。由于臂电感非常小,因此SM电容器电压可以自动平衡。小的杂散/寄生电感足以将SM的开关瞬间内的浪涌电流限制在额定电流水平。为了释放SC-MMC的自动SM电容器电压平衡能力,提出了一种Y矩阵调制(YMM),它不需要闭环控制或任何传感器,对SM的数量没有限制,并且适用于半桥和全桥SM。新兴的YMM的一个未解决的问题是,在公开的文献中,当SM数量很大时,除了SC-MMC的观察,理论上还没有证明具有完整秩的Y矩阵的存在。本文提供了一个完整的Y矩阵存在的解析证明,这暗示着MMC中SM的自动电压平衡,每个臂中有任意数量的SM。提供了在具有最小臂电感的21级SC-MMC上使用YMM进行的仿真结果,以验证使用YMM的SC-MMC的电压平衡理论/观察结果。

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