Global Sensitivity Analysis of Uncertain Static Voltage Stability Based on Extended Affine Model
Le Jian1, Liao Xiaobing1, Li Ben2, Zhou Zhiheng3, Peng Xuelin3
1. School of Electrical Engineering and Automation Wuhan University Wuhan 430072 China; 2. State Grid Hubei Ezhou Power Supply Company Ezhou 436000 China; 3. State Grid Hubei Wuhan Power Supply Company Wuhan 430000 China
Abstract:The large-scale integration of volatile renewable energy into the grid has become new important uncertainty factors in power system, and accurate assessment of the impact of uncertainties on the static voltage stability of the power system is conducive to improving the safe and stable operation of system. Considering the uncertainties of renewable energy and load, this paper establishes the static voltage stability interval assessment model based on the L index using extended affine arithmetic, and uses the global sensitivity indices based on the analytical variance decomposition to identify the importance of the input variables that affect the static voltage stability. The simulation results of several IEEE examples show that the proposed method can suppress the interval expansion effect more effectively than the commonly used affine arithmetic, and the global sensitivity analysis method based on the analytical variance decomposition can quickly and efficiently identify the key factor that affects static voltage stability.
乐健, 廖小兵, 李奔, 周子恒, 彭学林. 基于扩展仿射模型的不确定性静态电压稳定性全局灵敏度分析[J]. 电工技术学报, 2021, 36(13): 2821-2831.
Le Jian, Liao Xiaobing, Li Ben, Zhou Zhiheng, Peng Xuelin. Global Sensitivity Analysis of Uncertain Static Voltage Stability Based on Extended Affine Model. Transactions of China Electrotechnical Society, 2021, 36(13): 2821-2831.
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