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Full-bridge MMC DC fault ride-through and STATCOM operation in multi-terminal HVDC grids

机译:多端子HVDC电网中的全桥MMC DC故障穿越和STATCOM操作

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This paper investigates a control structure to enhance the DC fault ride-through capability of a full-bridge modular multilevel converter (MMC) station, while ensuring a stable controlled operation as a STATCOM during DC faults without the need for fault isolation. Taking advantage of the switching states of a full-bridge submodule, a DC current controller is proposed, which provides the DC voltage reference for the modulation when a DC fault is detected. By changing the outer controllers strategy from DC voltage or active power control to converter energy control during a fault, the decoupling of the converter operation from the DC side dynamics is realized. In this paper, the focus is on the control methodology at all times of operation and the evaluation of the STATCOM control during a fault. To this end, extensive simulations were performed on a three-terminal high voltage direct current (HVDC) grid in radial configuration and a pole-to-pole DC fault case was investigated. The results showed that the AC voltage and current were controlled within limits at all times, while the full-bridge MMC was able to provide reactive power support to the AC grid. Moreover, using the proposed control methodology, the transients at the operation transition points between STATCOM and inverter/rectifier operation were minimized and the stations were able to safely ride through the fault.
机译:本文研究了一种控制结构,以增强全桥模块化多电平换流器(MMC)站的直流故障穿越能力,同时确保在发生直流故障期间作为STATCOM的稳定受控操作而无需故障隔离。利用全桥子模块的开关状态,提出了一种直流电流控制器,该控制器可在检测到直流故障时为调制提供直流电压参考。通过将外部控制器策略从直流电压或有功功率控制更改为故障期间的转换器能量控制,可以实现转换器操作与直流侧动态特性的解耦。在本文中,重点是在所有操作期间的控制方法以及在故障期间对STATCOM控制的评估。为此,在径向配置的三端高压直流(HVDC)电网上进行了广泛的仿真,并研究了极间直流故障情况。结果表明,交流电压和电流始终都控制在极限范围内,而全桥MMC能够为交流电网提供无功功率支持。此外,使用所提出的控制方法,STATCOM和逆变器/整流器操作之间的操作转换点的瞬变被最小化,并且站点能够安全地穿越故障。

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