DocumentCode
2502864
Title
A novel SSR-damping scheme based on a single-phase SSSC
Author
Xiao, Xiangning ; Gao, Benfeng ; Zhao, Chengyong
Author_Institution
Key Lab. of Power Syst. Protection & Dynamic Security Monitoring & Control under Minist. of Educ., North China Electr. Power Univ., Beijing, China
fYear
2010
fDate
20-23 Dec. 2010
Firstpage
1
Lastpage
5
Abstract
A three-phase unbalanced system will reduce mechanical and electrical energy interaction and thus, to some extent, inhibit subsynchronous resonance (SSR). Based on this principle, a compensation method using a single-phase static synchronous series compensator (SSSC) is proposed. In this method, only one phase employs an SSSC to replace part of the fixed series capacitor, while the other two phases have fixed series compensation (FSC). By controlling the SSSC, the three-phase reactance at power frequency is balanced, while at sub-synchronous frequencies, the system is unbalanced and thus inhibits SSO. A single-phase SSSC model based on a cascaded H bridge topology is built for time-domain simulations. The damping effect and the minimum degree of compensation required from the SSSC are analyzed by transient simulations. Simulation results show the method can effectively restrain SSO and has little effect on the three-phase voltage unbalance factor. Compared with employing SSSC in all three phases, this method is more economical.
Keywords
cascade systems; damping; power system simulation; static VAr compensators; subsynchronous resonance; time-domain analysis; SSR-damping scheme; cascaded H bridge topology; fixed series compensation; single-phase SSSC control; single-phase static synchronous series compensator; subsynchronous resonance; three-phase reactance; three-phase unbalanced system; three-phase voltage unbalance factor; time-domain simulation; Capacitance; Damping; Generators; Power capacitors; Time domain analysis; Torque; Hybrid series compensator; SSR; SSSC; Three-phase unbalance; active damping controller;
fLanguage
English
Publisher
ieee
Conference_Titel
Power Electronics, Drives and Energy Systems (PEDES) & 2010 Power India, 2010 Joint International Conference on
Conference_Location
New Delhi
Print_ISBN
978-1-4244-7782-1
Type
conf
DOI
10.1109/PEDES.2010.5712428
Filename
5712428
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