Title :
Multiport Frequency-Dependent Network Equivalencing Based on Simulated Time-Domain Responses
Author :
Ubolli, Andrea ; Gustavsen, Bjørn
Author_Institution :
Dept. of Electr. Power Eng., Norwegian Univ. of Sci. & Technol., Trondheim, Norway
fDate :
4/1/2012 12:00:00 AM
Abstract :
This paper presents a multiport implementation of the time-domain-vector-fitting algorithm (TD-VF) for achieving a common-pole rational model approximation from simulated time-domain responses. Similar to the frequency-domain counterpart of the algorithm, a fast realization of TD-VF is achieved based on QR-factorization with consideration of sparsity. The computational speed is further increased by an adaptive downsampling procedure which removes rows from the system matrices. The required model order is reduced by low-pass filtering the input responses, giving a model that is essentially free of spurious Gibbs-like oscillations. The resulting model is directly compatible with Electromagnetic Transients Program-type simulation programs. The multiport TD-VF is applied for the calculation of a frequency-dependent network equivalent (FDNE) of two subnetworks: a 24-kV distribution system and a 145-kV regional transmission system. We show that the procedure offers advantages by achieving faster simulations and reduced memory requirements. In addition, the procedure often enables the use of a shorter time-step length than with the detailed subnetwork representation, thereby achieving further reductions in computational time.
Keywords :
EMTP; FIR filters; approximation theory; curve fitting; equivalent circuits; multiport networks; signal sampling; time-frequency analysis; FDNE; Gibbs like oscillation; QR factorization; adaptive downsampling procedure; common pole rational model approximation; distribution system; frequency dependent network equivalent; frequency-domain analysis; multiport TD-VF; regional transmission system; simulated time-domain response; time-domain vector fitting algorithm; voltage 145 kV; voltage 24 kV; Adaptation models; Computational modeling; Finite impulse response filter; Integrated circuit modeling; Time domain analysis; Time frequency analysis; Digital filtering; QR factorization; finite impulse response (FIR); frequency-dependent network equivalent (FDNE); macromodel; multiport formulation; rational approximation; time-domain vector fitting;
Journal_Title :
Power Delivery, IEEE Transactions on
DOI :
10.1109/TPWRD.2011.2173769