Hunan Electric Power ›› 2026, Vol. 46 ›› Issue (2): 60-69.doi: 10.3969/j.issn.1008-0198.2026.02.008

• Power Grid Operation and Control • Previous Articles     Next Articles

Controlled islanding Strategy for High-impedance Cas‍ca‍ded Corridors Based on Slow Coherency Theory

WANG Xi1,2, BAi Jiayu1,2, QiU Tianrui3,4, CHEN Baorui1,2, YE Xi5, TANG fei3,4   

  1. 1. State Grid Sichuan Electric Power Company Limited Research institute, Chengdu 610041, China;
    2. Power System Security and Operation Key Laboratory of Sichuan, Chengdu 610041, China;
    3. School of Electrical Engineering and Automation, Wuhan University, Wuhan 430072, China;
    4. Hubei Province AC/DC intelligent Distribution Network Engineering Technology Research Center, Wuhan University, Wuhan 430072, China;
    5. State Grid Sichuan Electric Power Company Limited, Chengdu 610041, China
  • Received:2025-11-11 Revised:2025-12-03 Online:2026-04-25 Published:2026-05-09

Abstract: Large-scale high-impedance cascaded transmission corridors have been built in some regions of China, where traditional out-of-step islanding devices often underperform.This paper proposes ahigh-impedance cascaded corridorsislanding strategy based on slow coherency theory. firstly, based on slow coherency theory, the electrical connections of nodes are classified. Characteristics of high resistance cascade channel splitting are analyzed accordingly, and indicate that this type of channel has the problem of confusion in islanding division after the splitting device is activated due to edge nodes. Secondly, for the chain impedance structure of high impedance cascade channels, a slow coherency and islanding strategy suitable for high impedance cascade channels is proposed by combining natural breaking point method.finally, the IEEE 39 node standard calculation system is used to simulate and verify the proposed strategy with a provincial power grid in western China.Simulation results show that the proposed strategy can effectively search for the optimal solution section, and has good adaptability and effectiveness for power grids with high resistance cascade channels.

Key words: slow coherency theory, high-impedance cascaded corridors, natural breaking point method, islanding strategy

CLC Number: