DocumentCode :
3602426
Title :
Nonminimum Phase Compensation in VSC-HVDC Systems for Fast Direct Voltage Control
Author :
Campos-Gaona, David ; Pena-Alzola, Rafael ; Ordonez, Martin
Author_Institution :
Electr. Eng. Dept., Univ. of British Columbia, Vancouver, BC, Canada
Volume :
30
Issue :
6
fYear :
2015
Firstpage :
2535
Lastpage :
2543
Abstract :
Newly developed VSC-HVDC systems are reaching power levels of up to 1000 MW. At this power level, the nonminimum phase behavior of the VSC-HVDC systems´ dc plant becomes a threat to the stability of the direct voltage for fast dc control-loop dynamics. This paper presents a novel compensation scheme, called RHP-zero shifting+damping, designed to deal with the nonminimum phase dynamics of the dc plant by adding additional compensation loops to the current controller of the VSC-HVDC system. The compensation scheme can work along with linear controllers and allows the closed-loop bandwidth of the direct voltage controller to be increased without affecting the direct voltage stability of high-power VSC-HVDC systems. As a result, the direct voltage variations are significantly reduced during power changes in the ac or dc network. The performance of the compensation scheme is evaluated through simulations and corroborated in a 1-kW experimental test bed.
Keywords :
HVDC power convertors; HVDC power transmission; closed loop systems; electric current control; power transmission control; voltage control; RHP-zero shifting-damping; ac network; closed-loop bandwidth; compensation loop; compensation scheme; current controller; dc network; direct voltage controller; direct voltage stability; direct voltage variations; experimental test bed; fast DC control-loop dynamics; fast direct voltage control; high-power VSC-HVDC systems; linear controllers; nonminimum phase compensation; nonminimum phase dynamics; power 1 kW; power change; power level; Bandwidth; Closed loop systems; Damping; HVDC transmission; Power conversion; Voltage control; Direct voltage control; HVDC transmission; VSC-HVDC systems; nonminimum phase;
fLanguage :
English
Journal_Title :
Power Delivery, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8977
Type :
jour
DOI :
10.1109/TPWRD.2015.2436386
Filename :
7111331
Link To Document :
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