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Identifying system-wide early warning signs of instability in stochastic power systems

机译:识别系统范围内的随机电力系统不稳定预警信号

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Prior research has shown that spectral decomposition of the reduced power flow Jacobian (RPFJ) can yield participation factors that describe the extent to which particular buses contribute to particular spectral components of a power system. Research has also shown that both variance and autocorrelation of time series voltage data tend to increase as a power system with stochastically fluctuating loads approaches certain critical transitions. This paper presents evidence suggesting that a system's participation factors predict the relative bus voltage variance values for all nodes in a system. As a result, these participation factors can be used to filter, weight, and combine real time PMU data from various locations dispersed throughout a power network in order to develop coherent measures of global voltage stability. This paper first describes the method of computing the participation factors. Next, two potential uses of the participation factors are given: (1) predicting the relative bus voltage variance magnitudes, and (2) locating generators at which the autocorrelation of voltage measurements clearly indicate proximity to critical transitions. The methods are tested using both analytical and numerical results from a dynamic model of a 2383-bus test case.
机译:先前的研究表明,降低功率流的雅可比行列式(RPFJ)的频谱分解会产生参与因子,该因子描述特定总线对电力系统中特定频谱成分的贡献程度。研究还表明,随着负载随机波动的电力系统接近某些临界过渡,时间序列电压数据的方差和自相关都趋于增加。本文提供的证据表明,系统的参与因子可预测系统中所有节点的相对总线电压方差值。结果,这些参与因子可用于过滤,加权和组合来自分散在整个电网中的各个位置的实时PMU数据,以便开发全局电压稳定性的连贯度量。本文首先介绍了计算参与因子的方法。接下来,给出了参与因子的两种潜在用途:(1)预测相对母线电压方差幅度,以及(2)定位发电机,在这些发电机处,电压测量值的自相关清楚地表明接近临界转变。使用2383总线测试用例的动态模型的分析结果和数值结果对这些方法进行了测试。

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