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A new method for power system contingency ranking using combination of neural network and data envelopment analysis

机译:一种使用神经网络和数据包络分析的组合电力系统应急排名方法

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In this paper, an integrated algorithm has been proposed for ranking contingencies in the deregulated network. The network security and economical indices should be considered when dealing with market environment. Locational marginal price and congestion cost indices are the best signals to completely illustrate the market operation. In this paper, voltage violation, line flow violation, locational marginal price and congestion cost indices have been simultaneously considered to rank the contingencies. This algorithm uses neural networks method to estimate the power system parameters (locational marginal price, bus voltage magnitudes and angles). The efficiency of each of contingencies was calculated using data envelopment analysis and this index was employed for ranking. The efficiency of each contingency shows its severity and indicates that it affects network security and economic indices concurrently. Considering the proposed formulation for data envelopment analysis, the efficiency of a contingency will be higher if the calculated indices for that contingency are higher. More efficiency leads to increased severity of the contingency and shows that the contingency has concurrently more affected network security and economic indices. The proposed algorithm has been tested on IEEE 30-bus test power system. Simulation results show the high efficiency of the algorithm.
机译:本文已经提出了一种用于排放网络中的突发事件的集成算法。在处理市场环境时,应考虑网络安全和经济指标。位置边际价格和拥塞成本指数是完全说明市场运行的最佳信号。在本文中,电压违规,线流违规,地点边际价格和拥塞成本指数已被同时考虑排列突发事件。该算法使用神经网络方法来估计电力系统参数(位置边缘价格,总线电压幅度和角度)。使用数据包络分析计算每种突发事件的效率,并且该指数用于排名。每个应变性的效率显示其严重性,并表示它同时影响网络安全和经济指数。考虑到拟议的数据包络分析配方,如果此次应急的计算指数更高,则应变的效率将更高。更高效率导致了不断的应变严重程度,并表明了应急同时影响了受影响的网络安全和经济指标。在IEEE 30总线测试电力系统上测试了该算法。仿真结果显示了算法的高效率。

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