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The influence of topology changes on inter-area oscillation modes and mode shapes

机译:拓扑变化对区域间振荡模式和模式形状的影​​响

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The topology of a power grid network is a piece of critical information for power grid operations. Different power grid topologies can change grid characteristics, inter-area oscillation modes, mode shapes, and even the robustness of the power system. This paper presents some preliminary study results, based on an approved WECC operating case and a modified low damping WECC system, to show the impact of topology changes resulting from N-1 contingencies on power system modes and mode shapes. The results show that topology changes can have very different impact on modal properties in a power system: some result in an unstable situation, while others can improve small signal stability. For the former, the studies show about a 4.5% damping reduction, so a 5% damping margin would be required to ensure the system can sustain the contingencies. For the latter, those topology changes could be used as a control method to improve small signal stability. Mode shapes normally do not change when there is an N-1 topology change. These observations suggest that the inclusion of topological information is useful for improving the accuracy and effectiveness of power system control schemes.
机译:电网网络的拓扑结构是电网运行的关键信息。不同的电网拓扑可以更改电网特性,区域间振荡模式,模式形状,甚至电源系统的鲁棒性。本文基于已批准的WECC操作案例和改进的低阻尼WECC系统,提供了一些初步的研究结果,以显示N-1偶发事件引起的拓扑变化对电力系统模式和模式形状的影​​响。结果表明,拓扑变化对电力系统的模态特性可能有非常不同的影响:有些会导致不稳定的情况,而另一些会改善小信号的稳定性。对于前者,研究表明阻尼降低了4.5%,因此需要5%的阻尼裕度以确保系统能够承受意外情况。对于后者,可以将那些拓扑更改用作改善小信号稳定性的控制方法。当N-1拓扑更改时,模式形状通常不会更改。这些观察结果表明,包含拓扑信息对于提高电力系统控制方案的准确性和有效性很有用。

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