Title :
Frequency domain techniques for modeling discrete switching events: EMT analysis
Author_Institution :
Electr. Dept., CINVESTAV-Guadalajara, Zapopan, Mexico
Abstract :
This paper reviews and compares three frequency domain techniques for the modeling of discrete switching events. The first one is based on the superposition principle where the open/closed states of the switch are represented by equivalent voltage/current sources. The underlying idea of the second technique is to partition the linear transformation matrix, given by the discrete Fourier transform, based on the switching-on and switching-off times. The third method uses the concept of a time-varying impedance/admittance function representing the switching operations. The impedance/admittance is expressed in the frequency domain as a Toeplitz-type matrix for performing the corresponding convolution with the switch voltage/current variable. Some examples are presented for the numerical comparison of the aforementioned methods.
Keywords :
Toeplitz matrices; discrete Fourier transforms; discrete event systems; frequency-domain analysis; power system faults; power system simulation; switched networks; EMT analysis; Toeplitz-type matrix; discrete Fourier transform; discrete switching events modeling; equivalent voltage-current sources; frequency domain techniques; linear transformation matrix; open-closed states; superposition principle; switch voltage-current variable; switching-off times; switching-on times; time-varying impedance-admittance function; Discrete Fourier transforms; Frequency-domain analysis; Impedance; Switches; Transient analysis; Transmission line matrix methods; Discrete Fourier transforms; Laplace transform; frequency domain analysis; switches; transient analysis;
Conference_Titel :
PES General Meeting | Conference & Exposition, 2014 IEEE
Conference_Location :
National Harbor, MD
DOI :
10.1109/PESGM.2014.6939254