论文标题
基于本地PMU测量的自适应MMC同步稳定性控制方法
An Adaptive MMC Synchronous Stability Control Method Based on Local PMU measurements
论文作者
论文摘要
减少电流是一种常见方法,可以确保当AC侧有短路故障时模块化多级转换器(MMC)的同步稳定性。但是,交流系统的故障位置的不确定性导致故障期间最大允许稳定工作电流的显着差异。本文提出了一种使用局部相量测量单元(PMU)测量的自适应MMC断层控制方法。基于系统的估计值同等(TE)参数,可以直接计算电流,以确保故障期间MMC的最大输出功率。此控制方法不依赖离线模拟,并适应各种断层条件。有效测量首先是通过电压阈值和参数约束选择的,这使我们能够处理由于系统侧的变化而导致的误差。提出的TE估计方法可以快速跟踪系统阻抗的变化,而无需依赖初始值,并且可以在发生大干扰后处理TE潜在的变化。模拟表明,TE估计可以在故障后准确跟踪TE参数,并且MMC故障期间的当前控制指令可以确保MMC的最大输出功率。
Reducing the current is a common method to ensure the synchronous stability of a modular multilevel converter (MMC) when there is a short-circuit fault at its AC side. However, the uncertainty of the fault location of the AC system leads to a significant difference in the maximum allowable stable operating current during the fault. This paper proposes an adaptive MMC fault-current control method using local phasor measurement unit (PMU) measurements. Based on the estimated Thevenin equivalent (TE) parameters of the system, the current can be directly calculated to ensure the maximum output power of the MMC during the fault. This control method does not rely on off-line simulation and adapts itself to various fault conditions. The effective measurements are firstly selected by the voltage threshold and parameter constraints, which allow us to handle the error due to the change on the system-side. The proposed TE estimation method can fast track the change of the system impedance without depending on the initial value and can deal with the TE potential changes after a large disturbance. The simulation shows that the TE estimation can accurately track the TE parameters after the fault, and the current control instruction during an MMC fault can ensure the maximum output power of the MMC.