Title :
Research on active voltage stability of distribution network based on the bifurcation theory
Author :
Quanli Guo ; Shun Yuan ; Cailian Gu ; Zhigang Zhao
Author_Institution :
Sch. of Electr. Eng., Shenyang Univ. of Technol., Shenyang, China
Abstract :
Voltage control faces severe challenges owing to the access of the large number of distributed generation in the active power distribution network. The start and development process of voltage instability or collapse and related mathematical conditions were eager to know. Active distribution network is a typical nonlinear nonautonomous systems, Bifurcation theory one of the effective way solving the nonlinear dynamic system was adopted to do a study on voltage instability or collapse in the active power distribution network. Here, the influence of the filter reactor of the micro power interface and reactive load on voltage stability were analyzed, which provided help to understand voltage instability and its boundary conditions. Simulation analysis shows that under the given conditions, With the increase of the filter reactance value, the active power distribution network bifurcated; With the increase of reactive load, the public bus voltage reduced, then active power was in a state of voltage instability. The simulation results are consistent with theoretical analysis. Bifurcation theory can be also applyed in influence of other parameters in the active power distribution network upon voltage stability, its physical concept and the details are clear, the conclusion can provide reference for researchers engaged in the power grid stability.
Keywords :
bifurcation; distributed power generation; distribution networks; nonlinear dynamical systems; power distribution reliability; power filters; power system stability; voltage control; active power distribution network; active voltage stability; bifurcation theory; distributed generation; filter reactance value; filter reactor; mathematical condition; micropower interface; nonlinear dynamic system; nonlinear nonautonomous system; power grid stability; public bus voltage reduction; reactive load; voltage collapse; voltage control; voltage instability; Abstracts; Bifurcation; Irrigation; Load modeling; Stability analysis; Stators; Active power distribution network; Bifurcation theory; Nonlinear; Stability; Voltage boundary;
Conference_Titel :
Electricity Distribution (CICED), 2014 China International Conference on
Conference_Location :
Shenzhen
DOI :
10.1109/CICED.2014.6991866