Title :
An improved method of including detailed synchronous machine representations in large power system models for fault analysis
Author :
Halpin, S.M. ; Gross, C.A. ; Grigsby, L.L.
Author_Institution :
Dept. of Electr. Eng., Auburn Univ., AL, USA
fDate :
12/1/1993 12:00:00 AM
Abstract :
An efficient approach for combining time- and frequency-domain analysis techniques to produce improved fault analysis results is presented in this paper. The developed approach is applied to fault analysis to determine the time-domain solutions for synchronous machine terminal variables while utilizing frequency-domian techniques to model the transmission network. In general, the transmission network is modeled using steady-state AC circuit theory to form a constant impedance network description, while the rotating machines are represented by sets of coupled differential equations. The interface between the time-domain machine models and the frequency-domain transmission network model transforms the differential equation solutions into the appropriate frequency-domain phasors using time series analysis to obtain least-square-error approximations of the phasor magnitudes and angles. The combination of time and frequency-domain analysis allows the total number of calculations required for a solution to be considerably less than the number required for a complete time-domain solution
Keywords :
differential equations; digital simulation; fault location; frequency-domain analysis; least squares approximations; machine theory; power system analysis computing; synchronous machines; time series; time-domain analysis; transmission networks; constant impedance network; coupled differential equations; digital simulation; fault analysis; frequency-domain analysis; frequency-domain phasors; least-square-error approximations; phasor angle; phasor magnitude; power system models; synchronous machine; time series analysis; time-domain analysis; transmission network; Circuit faults; Circuit theory; Coupling circuits; Differential equations; Frequency domain analysis; Impedance; Rotating machines; Steady-state; Synchronous machines; Time domain analysis;
Journal_Title :
Energy Conversion, IEEE Transactions on