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Novel Approach for Determination of Worst Loading Direction and Fast Prediction of Stability Margin in Power Systems

机译:电力系统最坏负载方向确定和稳定裕度快速预测的新方法

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Determination of the loadability margin for various security limits is of great importance to the secure operation of the power system as is proposing a reliable method for the fast determination of bifurcation points in the systems. Eigenvalue calculation is normally used for both actions. Whereas this method is computationally expensive, soft computing methods are employed to improve calculation time. In this paper a support vector machine (SVM) method is proposed to aid the fast classifying of bifurcation stability of the system. A novel approach based on particle swarm optimization (PSO) is also introduced to find the closest load ability margin and its corresponding loading direction. Three security limits are considered in this study: saddle-node bifurcation, limit-induced bifurcation, and Hopf bifurcation. The simulation results for two test systems demonstrate the effectiveness of the proposed methods.
机译:确定各种安全极限的负载能力裕度对于电力系统的安全运行至关重要,因为它提出了一种可靠的方法来快速确定系统中的分叉点。特征值计算通常用于两个动作。尽管该方法在计算上是昂贵的,但是采用软计算方法来改善计算时间。本文提出了一种支持向量机(SVM)方法,以帮助对系统的分叉稳定性进行快速分类。还介绍了一种基于粒子群优化(PSO)的新颖方法来找到最接近的载荷能力裕度及其对应的载荷方向。本研究考虑了三个安全限制:鞍节点分叉,限制引起的分叉和Hopf分叉。两个测试系统的仿真结果证明了所提出方法的有效性。

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