Title :
Shrinking stability regions and voltage collapse in power systems
Author :
Vu, Khoi T. ; Liu, Chen-Ching
Author_Institution :
Dept. of Electr. & Comput. Eng., Clemson Univ., SC, USA
fDate :
4/1/1992 12:00:00 AM
Abstract :
The dynamic process of voltage collapse is analyzed based on three mechanisms: on-load tap-changing, load dynamics, and generator excitation limiting. The interaction among these mechanisms and how the voltage collapse takes place are thoroughly investigated in a general interconnected network model under the assumption that system frequency remains unchanged. It is found that, so long as an equilibrium exists, there is a maximal equilibrium. It is also established that there is a region in the state space corresponding to a monotonic fall of system voltages. When the reactive capability of generator(s) is reached, this region expands, whereas the voltage stability region shrinks. The system trajectory may eventually exit the stability region, whereupon the voltage begins to drop monotonically. It is shown that locking the tap-changers at an appropriate time helps the system voltage to reach a steady state, and therefore avoid the collapse. Numerical examples for a realistic power system are given to illustrate the theory
Keywords :
load (electric); power system interconnection; reactive power; stability; state-space methods; dynamic process; generator excitation limiting; interconnected network model; load dynamics; maximal equilibrium; onload tap changing; power systems; reactive capability; stability region shrinkage; state space; steady state; system trajectory; voltage collapse; Integrated circuit interconnections; Power generation; Power system analysis computing; Power system dynamics; Power system interconnection; Power system modeling; Power system stability; Power systems; Steady-state; Voltage;
Journal_Title :
Circuits and Systems I: Fundamental Theory and Applications, IEEE Transactions on