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Investigation of SSR Characteristics of Hybrid Series Compensated Power System with SSSC
Author(s) -
R. Thirumalaivasan,
M. Janaki,
Nagesh Prabhu
Publication year - 2011
Publication title -
advances in power electronics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.106
H-Index - 12
eISSN - 2090-1828
pISSN - 2090-181X
DOI - 10.1155/2011/621818
Subject(s) - control theory (sociology) , transient (computer programming) , capacitor , series (stratigraphy) , thyristor , ac power , controller (irrigation) , electric power system , flexible ac transmission system , benchmark (surveying) , voltage , time domain , transmission line , computer science , electric power transmission , power (physics) , engineering , power flow , physics , control (management) , artificial intelligence , biology , operating system , paleontology , telecommunications , geodesy , quantum mechanics , agronomy , computer vision , electrical engineering , geography
The advent of series FACTS controllers, thyristor controlled series capacitor (TCSC) and static synchronous Series Compensator (SSSC) has made it possible not only for the fast control of power flow in a transmission line, but also for the mitigation of subsynchronous resonance (SSR) in the presence of fixed series capacitors. SSSC is an emerging controller and this paper presents SSR characteristics of a series compensated system with SSSC. The study system is adapted from IEEE first benchmark model (FBM). The active series compensation is provided by a three-level twenty four-pulse SSSC. The modeling and control details of a three level voltage source converter-(VSC)-based SSSC are discussed. The SSR characteristics of the combined system with constant reactive voltage control mode in SSSC has been investigated. It is shown that the constant reactive voltage control of SSSC has the effect of reducing the electrical resonance frequency, which detunes the SSR. The analysis of SSR with SSSC is carried out based on frequency domain method, eigenvalue analysis and transient simulation. While the eigenvalue and damping torque analysis are based on linearizing the D-Q model of SSSC, the transient simulation considers both D-Q and detailed three phase nonlinear system model using switching functions

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