Title :
Dynamic mechanism on electromechanical wave propagation in power systems
Author :
Delin Wang ; Yun Li ; Ningning Ma
Author_Institution :
Sch. of Electr. Eng., Southwest Jiaotong Univ., Chengdu, China
Abstract :
In order to grasp the influence mechanism of generator internal reactance to electromechanical disturbance propagation, based on continuum modeling for power systems, partial differential equation describing electromechanical wave propagation after generator internal reactance ignored is presented. Using the contour integration of inverse Laplace transform by a novel constructed function, the analytical expressions of electromechanical wave propagation under the excitation of impulse- and step-function are derived. Next, the correctness is validated by a discrete uniform chain power system model using the simulation technique. Furthermore, influence of generator internal reactance to electromechanical wave propagation is analyzed and compared between a uniform chain-and real-power system, respectively. What´s more, the key bus and key bus group are defined, and their importance to electromechanical wave propagation is also studied. The results show that electromechanical wave still propagates within a power system in the form of traveling wave after the effect of internal reactance is considered, but takes on nonlinear dispersion characteristics, and the waveform is also distorted.
Keywords :
Laplace transforms; inverse transforms; partial differential equations; power system faults; power system simulation; wave propagation; contour integration; discrete uniform chain power system model; electromechanical disturbance propagation; electromechanical wave propagation; generator internal reactance mechanism; impulse-function; inverse Laplace transform; key bus group; nonlinear dispersion characteristics; partial differential equation; simulation technique; step-function; traveling wave; uniform chain-and real-power system; Equations; Generators; Mathematical model; Power system dynamics; Power system stability; Propagation; electromechanical disturbance propagation; electromechanical dynamics; generator internal reactance; influence mechanism; power system;
Conference_Titel :
Power System Technology (POWERCON), 2014 International Conference on
Conference_Location :
Chengdu
DOI :
10.1109/POWERCON.2014.6993717