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Impact of fault ride-through and dynamic reactive power support of photovoltaic systems on short-term voltage stability

机译:光伏系统的故障穿越和动态无功支持对短期电压稳定性的影响

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This paper investigates the impact of the Fault Ride-Through (FRT) capability and the dynamic reactive power support of large-scale PhotoVoltaic (PV) systems according to the newly proposed German Grid Code (GGC) on short-term voltage stability. The PV system is based on a generic model and realistic parameters are used that are determined in consultation with a manufacturer. In this context, improvements of the generic PV system model are stated. The GGC requirements are compared with several other control schemes for dynamic reactive power support, such as the adjusted control mode, i.e., the active and reactive current is calculated according to the grid impedance angle. The results show that the GGC requirements help the power system to avoid short-term voltage instability. Moreover, the requirements lead to an enhanced dynamic performance in terms of voltage support and recovery. Only the adjusted control mode shows a slightly better performance than the GGC. However, as this control scheme needs on-line information about the grid impedance angle, and therefore, additional infrastructure for the measurements, it is also more expensive. Hence, it can be concluded that the GGC requirements, with respect to FRT and dynamic reactive power support, are reasonable from a technical and economical point of view.
机译:本文根据最新提出的德国电网规范(GGC),研究了故障穿越(FRT)能力和大型光伏(PV)系统的动态无功功率支持对短期电压稳定性的影响。光伏系统基于通用模型,并使用实际参数,这些参数是与制造商协商确定的。在这种情况下,对通用光伏系统模型进行了改进。将GGC要求与其他几种支持动态无功功率的控制方案进行比较,例如调整后的控制模式,即根据电网阻抗角计算有功和无功电流。结果表明,GGC要求有助于电力系统避免短期电压不稳定。此外,这些要求导致在电压支持和恢复方面增强了动态性能。仅调整后的控制模式显示出比GGC更好的性能。但是,由于此控制方案需要有关电网阻抗角的在线信息,因此需要用于测量的其他基础结构,因此也更加昂贵。因此,可以得出结论,从技术和经济角度来看,关于FRT和动态无功功率支持的GGC要求是合理的。

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