Title :
Resistance influence on the synchronous and compensating reactances in a SMIB power system
Author :
EL-Sadik, Fayez Mohammed
Author_Institution :
Dept. of Electr. & Electron. Eng., Univ. of Khartoum, Khartoum, Sudan
Abstract :
This paper is concerned with conclusions that may be derived from algebraic formulation for the reactance-voltage relationship under stability limits of a single-machine infinite-bus SMIB system. The solution for the outstanding problem evolves in an equation for the necessary conditions referred to the receiving-end voltage VR with the sufficient conditions hence the complete solution being provided by a second relationship for the sending voltage E. The resulting high-order continuous stability function that simultaneously solves for the inductive and capacitive coupling reactance elements (in-waiting-for-E) is bound to embody equilibrium and singularity states that cannot be observed through equations without the resistance element. Whereas use is made in this paper of two such states in relation to the performance of SMIB and capacitor-compensated systems, it is envisaged that the algebraic closed-form solution will enable identification of additional states for which physical significance can be attached.
Keywords :
electric reactance; power system stability; synchronous machines; SMIB power system; capacitive coupling reactance element; compensating reactance; high-order continuous stability function; inductive coupling reactance element; reactance-voltage relationship; receiving-end voltage; single-machine infinite-bus system; synchronous reactance; Closed-form solution; Constraint optimization; Equations; Power system stability; Power systems; Stability analysis; Stability criteria; Sufficient conditions; Virtual reality; Voltage; Critical resistance; Maximum power; SSSL function; Singulrity states;
Conference_Titel :
Power Electronics Electrical Drives Automation and Motion (SPEEDAM), 2010 International Symposium on
Conference_Location :
Pisa
Print_ISBN :
978-1-4244-4986-6
Electronic_ISBN :
978-1-4244-7919-1
DOI :
10.1109/SPEEDAM.2010.5544785