TY - JOUR
T1 - PSS design for damping of inter-area power oscillations by coherency-based equivalent model
AU - Liu, Chun
AU - Yokoyama, Ryuichi
AU - Koyanagi, Kaoru
AU - Lee, Kwang Y.
PY - 2004/10
Y1 - 2004/10
N2 - In Japan, low-frequency oscillations have been observed on trunk transmission systems, and have been the subject for studies in fields of operation, control, and devices by many power system utilities. Power system stabilizers (PSS) are very effective controllers in enhancing the damping of low-frequency oscillations, since the controllers can increase damping torque for inter area modes by introducing additional signals into the excitation controllers already equipped with generators. To analyze and solve the problem of long-term poor damping oscillation phenomena, a method is presented to find the best allocation and to design PSS for damping inter-area power oscillations. The method is based on the single-machine-infinite-bus models derived from the multi-machine power system by coherency-based reduction technique. Dynamic simulations using a 10-machine power system model are presented in order to show the effectiveness of the PSS designed according to the proposed method.
AB - In Japan, low-frequency oscillations have been observed on trunk transmission systems, and have been the subject for studies in fields of operation, control, and devices by many power system utilities. Power system stabilizers (PSS) are very effective controllers in enhancing the damping of low-frequency oscillations, since the controllers can increase damping torque for inter area modes by introducing additional signals into the excitation controllers already equipped with generators. To analyze and solve the problem of long-term poor damping oscillation phenomena, a method is presented to find the best allocation and to design PSS for damping inter-area power oscillations. The method is based on the single-machine-infinite-bus models derived from the multi-machine power system by coherency-based reduction technique. Dynamic simulations using a 10-machine power system model are presented in order to show the effectiveness of the PSS designed according to the proposed method.
KW - Coherence
KW - Frequency response method
KW - Heffron-Phillips model
KW - Low-frequency oscillation
KW - Power system stabilizer
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U2 - 10.1016/j.ijepes.2004.01.007
DO - 10.1016/j.ijepes.2004.01.007
M3 - Article
AN - SCOPUS:1842831172
SN - 0142-0615
VL - 26
SP - 539
EP - 548
JO - International Journal of Electrical Power and Energy Systems
JF - International Journal of Electrical Power and Energy Systems
IS - 7
ER -