Title :
A novel bus-type extended Continuation Power Flow considering remote voltage control
Author :
Jinquan Zhao ; Chao Zhou ; Gang Chen
Author_Institution :
Coll. of Energy & Electr. Eng., Hohai Univ., Nanjing, China
Abstract :
PV, PQ and Vθ are the conventional bus types for Continuation Power Flow (CPF) model. While calculating the voltage stability margins of power systems with remote voltage control, new bus types must be introduced, like PQV and P. Therefore, a bus-type extended continuation power flow (ECPF) model is proposed in this paper. It is utilized to compute the voltage stability critical point and identify the type of bifurcation with different remote voltage control modes such as one-to-one and multi-to-one. The double switching logic of the new bus types is also given to handle the reactive power limits of generators. Numerical simulations are conducted in IEEE 39-bus test system. The results show that the proposed model is effective in representing the characteristics of remote voltage control. It can be adopted to compute the voltage stability critical point and identify the type of bifurcation considering remote voltage control.
Keywords :
bifurcation; load flow; numerical analysis; power system stability; reactive power; voltage regulators; IEEE 39-bus test system; bifurcation; bus-type extended continuation power flow; double switching logic; numerical simulations; power systems; reactive power limits; remote voltage control; voltage stability critical point; voltage stability margins; Bifurcation; Generators; Load flow; Power system stability; Reactive power; Stability analysis; Voltage control; Bus-type Double Switching Logic; Bus-type Extended; Continuation Power Flow; Identification of Bifurcation; Voltage Stability Assessment;
Conference_Titel :
Power and Energy Society General Meeting (PES), 2013 IEEE
Conference_Location :
Vancouver, BC
DOI :
10.1109/PESMG.2013.6672362