高电平模块化多电平变换器的精确加速稳态模型

R. K. Subroto, Y. Chen, K. Lian, C. Chu
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引用次数: 1

摘要

与传统的双电平电压源变换器(VSCs)相比,多电平电压源变换器(MVSCs)具有更低的共模电压、更小的电源开关电压应力、更低的dv/dt比和更好的谐波含量。在现有的MVSCs中,模块化多电平VSCs特别适用于高压直流(HVDC)输电系统。然而,对于高压直流系统,MMC终端的每个阶段可能由数百个子模块(SMs)组成。这在稳态模拟和建模方面提出了特别具有挑战性的问题。在确定MMC控制器设计的工作点和预测谐波在电网中的传播时,通常需要进行稳态建模。本文提出了一种高效、精确的高电平MMC系统稳态模型。该模型基于最近提出的一种模型约简技术,即自适应剩余时间重新启动Krylov子空间(ARTRKS)方法。正如本文所示,所提出的方法能够对各种MMC系统进行建模。该模型的计算结果与PSCAD/EMTDC的计算结果非常吻合。此外,所提出的方法还可以大大减少获得稳态解的计算时间。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Accurate Accelerated Steady-State Model For Modular Multilevel Converters With Very High Voltage Levels
Compared with the conventional two-level voltage source converters (VSCs), multilevel VSCs (MVSCs) have lower common mode voltage, lower voltage stress on power switches, lower dv/dt ratio, and better harmonic content. Among the available MVSCs, modular multilevel VSCs are particularly suitable for an high voltage direct current (HVDC) transmission system. Nevertheless, for an HVDC system, each phase of the MMC terminal may consist of several hundreds of submodules (SMs). This imposes a particularly challenging in terms of steady-state simulation and modeling. Steady-state modeling is usually needed for determining the operating point for the MMC controller design and for predicting harmonics propagation in a power network. In this paper, a highly efficient and accurate steady-state model for an MMC system with high voltage levels is proposed. The model is based on a model reduction technique recently proposed, which is named Adaptive Residual-Time Restarting Krylov Subspace (ARTRKS) method. As will be shown in the paper, the proposed method is able to model various MMC systems. The results obtained from the proposed model are highly agreeable with those from PSCAD/EMTDC. Moreover, it will also be shown that proposed method can drastically reduce the computation time for obtaining steady state solutions.
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