DocumentCode
19240
Title
Optimization-Based Voltage Support in Traction Networks Using Active Line-Side Converters
Author
Bahrani, Behrooz ; Rufer, Alfred
Author_Institution
Ind. Electron. Lab., Ecole Polytech. Fed. de Lausanne, Lausanne, Switzerland
Volume
28
Issue
2
fYear
2013
fDate
Feb. 2013
Firstpage
673
Lastpage
685
Abstract
Low system voltage in traction networks, mainly caused by active power absorption of locomotives, adversely affects the performance of the locomotives and also the power transmission capability of the catenary line. This paper introduces a voltage support scheme to compensate for the adverse effects of low system voltage. The proposed method is based on the injection of reactive power through the current-controlled line-side converter of locomotives. Comparing the catenary voltage with its reference value, the error is fed to a high-order controller. The controller generates the quadrature (q)-axis reference value of a current control strategy, which is responsible for the reactive power injection. To design the high-order controller, adopting the nonparametric models of the system at various locations, an optimization-based loop-shaping approach is used. The loop shaping guarantees the stability and the acceptable performance of the closed-loop system for various locomotive positions in the network. The performance of the proposed control strategy is evaluated based on simulation results in MATLAB/PLECS environment. Moreover, implementing a scaled-down laboratory setup, the performance of the proposed scheme is experimentally evaluated.
Keywords
closed loop systems; control system synthesis; electric current control; electric locomotives; optimisation; power convertors; reactive power control; stability; traction; transport control; MATLAB-PLECS environment; adverse effect compensation; catenary line; closed-loop system; current-controlled line-side converter; high-order controller; locomotive active power absorption; low system voltage; nonparametric model; optimization-based loop-shaping approach; optimization-based voltage support scheme; power transmission capability; quadrature (q)-axis reference value; reactive power injection; stability; traction network; Current control; Inductance; Reactive power; Resistance; Substations; Transfer functions; Voltage control; AC–DC power converter; current control; optimization; railway engineering; reactive power; traction power supplies; vector control; voltage control;
fLanguage
English
Journal_Title
Power Electronics, IEEE Transactions on
Publisher
ieee
ISSN
0885-8993
Type
jour
DOI
10.1109/TPEL.2012.2205163
Filename
6220265
Link To Document